{"id":593612,"date":"2023-01-03T06:49:32","date_gmt":"2023-01-03T12:49:32","guid":{"rendered":"https:\/\/news.sellorbuyhomefast.com\/index.php\/2023\/01\/03\/identification-of-patient-specific-cd4-and-cd8-t-cell-neoantigens-through-hla-unbiased-genetic-screens\/"},"modified":"2023-01-03T06:49:32","modified_gmt":"2023-01-03T12:49:32","slug":"identification-of-patient-specific-cd4-and-cd8-t-cell-neoantigens-through-hla-unbiased-genetic-screens","status":"publish","type":"post","link":"https:\/\/newsycanuse.com\/index.php\/2023\/01\/03\/identification-of-patient-specific-cd4-and-cd8-t-cell-neoantigens-through-hla-unbiased-genetic-screens\/","title":{"rendered":"Identification of patient-specific CD4<sup>+<\/sup> and CD8<sup>+<\/sup> T cell neoantigens through HLA-unbiased genetic screens"},"content":{"rendered":"<p>Science &#038; Nature <\/p>\n<div>\n<div id=\"Sec1-section\" data-title=\"Main\">\n<h2 id=\"Sec1\">Main<\/h2>\n<div id=\"Sec1-content\">\n<p>Cancer immunotherapies that aim to harness the antitumor activity of T cells have shown impressive clinical results in a subset of patients with cancer, and accumulating evidence suggests that the efficacy of these therapies is driven largely by T cells that recognize cancer neoantigens that result from patient-specific nonsynonymous tumor mutations<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 1\" title=\"Schumacher, T. N., Scheper, W. &#038; Kvistborg, P. Cancer neoantigens. Annu. Rev. Immunol. 37, 173\u2013200 (2018).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR1\" id=\"ref-link-section-d311915e589\">1<\/a><\/sup>. Consequently, there is a strong interest in developing approaches to specifically boost the number or activity of neoantigen-reactive T cells in individual patients. However, identification of T cell-recognized neoantigens is challenging due to their patient-specific nature<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\" title=\"Schumacher, T. N. &#038; Schreiber, R. D. Neoantigens in cancer immunotherapy. Science 348, 69\u201374 (2015).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR2\" id=\"ref-link-section-d311915e593\">2<\/a><\/sup>. Previous antigen discovery methods have been limited by relying on the use of single or selected HLA alleles<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Bentzen, A. K. et al. Large-scale detection of antigen-specific T cells using peptide-MHC-I multimers labeled with DNA barcodes. Nat. Biotechnol. 34, 1037\u20131045 (2016).\" href=\"http:\/\/www.nature.com\/#ref-CR3\" id=\"ref-link-section-d311915e597\">3<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Lu, Y. C. et al. Efficient identification of mutated cancer antigens recognized by T cells associated with durable tumor regressions. Clin. Cancer Res. 20, 3401\u20133410 (2014).\" href=\"http:\/\/www.nature.com\/#ref-CR4\" id=\"ref-link-section-d311915e597_1\">4<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Kula, T. et al. T-Scan: a genome-wide method for the systematic discovery of T cell epitopes. Cell 178, 1016\u20131028.e13 (2019).\" href=\"http:\/\/www.nature.com\/#ref-CR5\" id=\"ref-link-section-d311915e597_2\">5<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Joglekar, A. V. et al. T cell antigen discovery via signaling and antigen-presenting bifunctional receptors. Nat. Methods 16, 191\u2013198 (2019).\" href=\"http:\/\/www.nature.com\/#ref-CR6\" id=\"ref-link-section-d311915e597_3\">6<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\" title=\"Li, G. et al. T cell antigen discovery via trogocytosis. Nat. Methods 16, 183\u2013190 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR7\" id=\"ref-link-section-d311915e600\">7<\/a><\/sup> and are therefore not straightforwardly compatible with identifying T cell (neo)antigens across the complete HLA haplotypes of individual patients with cancer. Moreover, while CD4<sup>+<\/sup> T cells have important roles in tumor control and response to immunotherapy<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Alspach, E. et al. MHC-II neoantigens shape tumour immunity and response to immunotherapy. Nature 574, 696\u2013701 (2019).\" href=\"http:\/\/www.nature.com\/#ref-CR8\" id=\"ref-link-section-d311915e606\">8<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Borst, J., Ahrends, T., Babala, N., Melief, C. J. M. &#038; Kastenmuller, W. CD4+ T cell help in cancer immunology and immunotherapy. Nat. Rev. Immunol. 18, 635\u2013647 (2018).\" href=\"http:\/\/www.nature.com\/#ref-CR9\" id=\"ref-link-section-d311915e606_1\">9<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Oh, D. Y. et al. Intratumoral CD4+ T cells mediate anti-tumor cytotoxicity in human bladder cancer. Cell 181, 1612\u20131625.e13 (2020).\" href=\"http:\/\/www.nature.com\/#ref-CR10\" id=\"ref-link-section-d311915e606_2\">10<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 11\" title=\"Tran, E. et al. Cancer immunotherapy based on mutation-specific CD4+ T cells in a patient with epithelial cancer. Science 344, 641\u2013645 (2014).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR11\" id=\"ref-link-section-d311915e609\">11<\/a><\/sup>, previous methods have focused primarily on the identification of CD8<sup>+<\/sup> T cell-recognized neoantigens. Thus, experimental tools are required to enable the routine and HLA-unbiased identification of CD4<sup>+<\/sup> and CD8<sup>+<\/sup> T cell-recognized neoantigens in individual patients.<\/p>\n<p>Here, we present a high-throughput genetic system for the personalized identification of CD4<sup>+<\/sup> and CD8<sup>+<\/sup> T cell-recognized (neo)antigens (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig1\">1a<\/a>). In this method, termed <i>HANSolo<\/i> (HLA-Agnostic Neoantigen Screening), patient-matched, Bcl-6\/xL-immortalized B cell lines are engineered to express large libraries of minigenes that encode candidate T cell antigens. As the resulting B cells are fully MHC class\u2009I and class\u2009II proficient, this enables the unbiased screening of T cell specificities across the complete MHC class\u2009I and class\u2009II genotypes of individual patients using T cell pools as selective pressure. To this purpose, antigen library-expressing B cells are coincubated with patient T cell populations of interest (for example, tumor-infiltrating lymphocytes (TIL) or T cells engineered to express patient-derived T cell receptors (TCRs)<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 12\" title=\"Scheper, W. et al. Low and variable tumor reactivity of the intratumoral TCR repertoire in human cancers. Nat. Med. 25, 89\u201394 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR12\" id=\"ref-link-section-d311915e633\">12<\/a><\/sup>), and antigen hits are identified by next-generation sequencing to measure the depletion of those B cells that express T cell-recognized epitopes.<\/p>\n<div data-test=\"figure\" data-container-section=\"figure\" id=\"figure-1\" data-title=\"Overview and validation of neoantigen discovery technology.\">\n<figure><figcaption><b id=\"Fig1\" data-test=\"figure-caption-text\">Fig. 1: Overview and validation of neoantigen discovery technology.<\/b><\/figcaption><div>\n<div><a data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0\/figures\/1\" rel=\"nofollow\"><picture><source type=\"image\/webp\" ><img decoding=\"async\" aria-describedby=\"Fig1\" src=\"http:\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1038%2Fs41587-022-01547-0\/MediaObjects\/41587_2022_1547_Fig1_HTML.png\" alt=\"Science &amp; Nature figure 1\" loading=\"lazy\" width=\"685\" height=\"445\"><\/picture><\/a><\/div>\n<p><b>a<\/b>, Schematic overview of the methodology. <b>b<\/b>, Antigen discovery screen of CD8<sup>+<\/sup> TCR #53 T cells against immortalized HLA-A*02:01<sup>+<\/sup> B cells transduced with a model antigen library of <i>n<\/i>\u2009=\u20094,764 minigenes. Dots represent individual minigenes. Fold change, defined as the relative abundance of minigenes in the presence of TCR #53 T cells compared with mock T cells, and mean normalized read counts are plotted for each individual minigene. Minigenes encoding the model CDK4 mutant and WT epitopes are highlighted. CDK4<sub>R24L<\/sub> minigenes: <i>P<\/i>\u2009=\u20099.4\u2009\u00d7\u200910<sup>\u221243<\/sup>, <i>P<\/i>\u2009=\u20091.5\u2009\u00d7\u200910<sup>\u22129<\/sup>. <i>P<\/i> values were generated using the DESeq2 Wald test (one-sided) and adjusted for several comparisons. <b>c<\/b>, Antigen screen using CD8<sup>+<\/sup> T cells expressing either the DMF4 (left panel) or DMF5 (right panel) TCR against model library-expressing HLA-A*02:01<sup>+<\/sup> B cells. Data are plotted as in <b>b<\/b> with fold change showing relative minigene abundance when exposed to either DMF4 or DMF5 TCR T cells as compared with mock T cells. DMF4 MART1-ELA minigenes: <i>P<\/i>\u2009=\u20091.9\u2009\u00d7\u200910<sup>\u221212<\/sup>, <i>P<\/i>\u2009=\u20091.7\u2009\u00d7\u200910<sup>\u22129<\/sup>; DMF5 MART1-ELA minigenes: <i>P<\/i>\u2009=\u20094.1\u2009\u00d7\u200910<sup>\u221214<\/sup>, <i>P<\/i>\u2009=\u20098.8\u2009\u00d7\u200910<sup>\u22127<\/sup>. <i>P<\/i> values were generated as in <b>b<\/b>. <b>d<\/b>, Antigen screen using CD4<sup>+<\/sup> T cells expressing patient-derived TCRs specific for the MHC class II-restricted SNORD73A<sub>R>W<\/sub> and MANSC1<sub>D>H<\/sub> against patient-matched immortalized B cells transduced with the CD74 signal-fused model library. Data are plotted as in <b>b<\/b> with fold change showing relative minigene abundance in the presence of CD4<sup>+<\/sup> SNORD73A TCR or MANSC1 TCR T cells relative to mock T cells. SNORD73A<sub>R>W<\/sub>: <i>P<\/i>\u2009=\u20092.1\u2009\u00d7\u200910<sup>\u221253<\/sup>; <i>P<\/i>\u2009=\u20092.5\u2009\u00d7\u200910<sup>\u221244<\/sup>; MANSC1<sub>D>H<\/sub>: <i>P<\/i>\u2009=\u20092.1\u2009\u00d7\u200910<sup>\u221226<\/sup>, <i>P<\/i>\u2009=\u20093.2\u2009\u00d7\u200910<sup>\u22128<\/sup>. <i>P<\/i> values were generated as in <b>b<\/b>.<\/p>\n<\/div>\n<p xmlns:xlink=\"http:\/\/www.w3.org\/1999\/xlink\"><a data-test=\"article-link\" data-track=\"click\" data-track-label=\"button\" data-track-action=\"view figure\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0\/figures\/1\" data-track-dest=\"link:Figure1 Full size image\" aria-label=\"Full size image figure 1\" rel=\"nofollow\"><span>Full size image<\/span><\/a><\/p>\n<\/figure>\n<\/div>\n<p>To first evaluate the feasibility and sensitivity of our method, we took advantage of well-described HLA-A*02:01-restricted TCRs specific for either the CDK4<sub>R24L<\/sub> neoantigen (TCR #53)<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 13\" title=\"Stronen, E. et al. Targeting of cancer neoantigens with donor-derived T cell receptor repertoires. Science 352, 1337\u20131341 (2016).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR13\" id=\"ref-link-section-d311915e777\">13<\/a><\/sup> or for the melanocyte differentiation antigen-derived MART1<sub>26-35<\/sub> epitope (TCRs DMF4 and DMF5)<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 14\" title=\"Johnson, L. A. et al. Gene transfer of tumor-reactive TCR confers both high avidity and tumor reactivity to nonreactive peripheral blood mononuclear cells and tumor-infiltrating lymphocytes. J. Immunol. 177, 6548\u20136559 (2006).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR14\" id=\"ref-link-section-d311915e783\">14<\/a><\/sup> (Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">1<\/a>). Activity of the CDK4<sub>R24L<\/sub> neoantigen-specific TCR should result in strong depletion of B cells expressing the mutant, but not the wild-type (WT), CDK4 sequence. TCR DMF4 has an affinity towards the MART1 self antigen that is around fivefold lower as compared with the DMF5 TCR<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 14\" title=\"Johnson, L. A. et al. Gene transfer of tumor-reactive TCR confers both high avidity and tumor reactivity to nonreactive peripheral blood mononuclear cells and tumor-infiltrating lymphocytes. J. Immunol. 177, 6548\u20136559 (2006).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR14\" id=\"ref-link-section-d311915e793\">14<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Borbulevych, O. Y., Santhanagopolan, S. M., Hossain, M. &#038; Baker, B. M. TCRs used in cancer gene therapy cross-react with MART-1\/Melan-A tumor antigens via distinct mechanisms. J. Immunol. 187, 2453\u20132463 (2011).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR15\" id=\"ref-link-section-d311915e796\">15<\/a><\/sup>, providing a means to assess the sensitivity of the method in the context of weak T cell\u2013target cell interactions. Furthermore, the use of the parental MART1 epitope as well as a previously identified variant with increased affinity for MHC-I<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\"00 title=\"Valmori, D. et al. Vaccination with a Melan-A peptide selects an oligoclonal T cell population with increased functional avidity and tumor reactivity. J. Immunol. 168, 4231\u20134240 (2002).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR16\" id=\"ref-link-section-d311915e800\">16<\/a><\/sup> (here referred to as MART1-ELA) should allow one to determine whether the level of epitope presentation can be gauged from screening data. To provide first proof-of-concept, we designed a model antigen library with a complexity (4,764 minigenes) that would be sufficient to enable the screening of the entire mutational repertoire of human tumors with the highest mutational burden, such as melanomas, lung tumors and microsatellite-instable tumors<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\"11 title=\"Chalmers, Z. R. et al. Analysis of 100,000 human cancer genomes reveals the landscape of tumor mutational burden. Genome Med. 9, 34 (2017).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR17\" id=\"ref-link-section-d311915e804\">17<\/a><\/sup>. Individual MHC class\u2009I-restricted antigens, including the CDK4<sub>R24L<\/sub> and MART1 antigens and immunodominant epitopes of EBV, CMV and influenza, as well as MHC class\u2009II-restricted neoantigens (Supplementary Table <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM3\">1<\/a>) were expressed as minigenes, each coupled to two unique barcode identifiers to provide internal replicate measurements. Subsequently, HLA-A*02:01-positive immortalized B cells were created and modified to express the epitope library.<\/p>\n<p>Following optimization of conditions to ensure maximal sensitivity of antigen screens (Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">2<\/a>), screening of this proof-of-concept library with T cells expressing the CDK4<sub>R24L<\/sub>-specific TCR resulted in clear depletion of CDK4<sub>R24L<\/sub>-expressing B cells, but crucially not B cells expressing the WT CDK4 minigene (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig1\">1b<\/a>). Furthermore, B cells expressing the MART1-ELA epitope showed substantial depletion after exposure to T cells transduced with the MART1-specific DMF4 or DMF5 TCRs (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig1\">1c<\/a>). Notably, the level of depletion mediated by the low affinity DMF4 TCR was comparable with that of the DMF5 TCR. Moreover, when using the high affinity 1D3 TCR<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\"22 title=\"Jorritsma, A. et al. Selecting highly affine and well-expressed TCRs for gene therapy of melanoma. Blood 110, 3564\u20133572 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR18\" id=\"ref-link-section-d311915e830\">18<\/a><\/sup>, depletion was observed for both MART1 epitopes but was substantially stronger for the MART1-ELA epitope (Supplementary Figs. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">1<\/a> and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">3<\/a>). Next, to test whether this system allows the profiling of the antigen-specificities of T cell populations in which T cells specific for a given antigen make up only a minority of the total T cell pool (such as patient TIL cultures, or donor T cells expressing libraries of patient-derived TCRs), we mixed T cells expressing either the DMF4, DMF5 or 1D3 TCR with mock-transduced T cells, such that MART1-specific T cells represented 10%, 1%, 0.3% or 0.1% of total T cells. Analysis of epitope abundance after exposure to these different T cell populations demonstrated that the MART1-ELA epitope was robustly identified when cognate TCR-expressing T cells comprised as little as 0.1\u20130.3% of all T cells (Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">3<\/a>). Depletion of the native MART1 epitope was detected only when using the high affinity 1D3 TCR. Together, these data demonstrate that our genetic screening methodology allows the efficient discovery of MHC class\u2009I-restricted T cell (neo)antigens from large antigen libraries. Furthermore, the technology allows one to distinguish high and low avidity TCR-pMHC interactions and genetic screens may be performed with clonally diverse T cell populations.<\/p>\n<p>A substantial fraction of T cell-recognized cancer neoantigens is restricted by MHC class\u2009II molecules, and CD4<sup>+<\/sup> T cells recognizing such MHC class\u2009II-restricted neoantigens contribute to tumor control<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Alspach, E. et al. MHC-II neoantigens shape tumour immunity and response to immunotherapy. Nature 574, 696\u2013701 (2019).\" href=\"http:\/\/www.nature.com\/#ref-CR8\" id=\"ref-link-section-d311915e849\">8<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Borst, J., Ahrends, T., Babala, N., Melief, C. J. M. &#038; Kastenmuller, W. CD4+ T cell help in cancer immunology and immunotherapy. Nat. Rev. Immunol. 18, 635\u2013647 (2018).\" href=\"http:\/\/www.nature.com\/#ref-CR9\" id=\"ref-link-section-d311915e849_1\">9<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Oh, D. Y. et al. Intratumoral CD4+ T cells mediate anti-tumor cytotoxicity in human bladder cancer. Cell 181, 1612\u20131625.e13 (2020).\" href=\"http:\/\/www.nature.com\/#ref-CR10\" id=\"ref-link-section-d311915e849_2\">10<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\"33 title=\"Tran, E. et al. Cancer immunotherapy based on mutation-specific CD4+ T cells in a patient with epithelial cancer. Science 344, 641\u2013645 (2014).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR11\" id=\"ref-link-section-d311915e852\">11<\/a><\/sup>. To test the suitability of HANSolo for the discovery of MHC class\u2009II-restricted neoantigens, we explored a previously established engineering method that routes individual minigene products through both the MHC class\u2009I and class\u2009II presentation pathways. In line with expectations, fusion of neoantigen-encoding minigenes to the sorting signal of the invariant chain (CD74) resulted in robust activation of both CD4<sup>+<\/sup> and CD8<sup>+<\/sup> neoantigen-specific T cells (Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">4<\/a>), and this universal antigen expression system was therefore selected for further use. We next took advantage of two MHC class\u2009II-restricted neoantigen-specific TCRs that were isolated from tumor-infiltrating T cells of a melanoma patient (Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">4<\/a>), transduced both TCRs into donor CD4<sup>+<\/sup> T cells and expressed the model antigen library in patient-matched immortalized B cells. Screening of library-expressing B cells with T cells expressing either MHC class\u2009II-restricted TCR resulted in the notable depletion of B cells that expressed the cognate neoantigen, but not its WT counterpart (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig1\">1d<\/a>). Furthermore, the use of CD4<sup>+<\/sup> T cell populations in which T cells expressing either of the MHC-II-restricted neoantigen-specific TCRs were present at low frequency demonstrated clear depletion of the relevant neoantigens at antigen-specific CD4<sup>+<\/sup> T cell frequencies as low as 0.3\u20131% (Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">5<\/a>).<\/p>\n<p>As compared with previously developed genetic screening technologies, HANSolo has the advantage of allowing the identification of T cell epitopes restricted by any of the class\u2009I or II alleles of an individual patient. To demonstrate the utility of such unbiased screening, we first focused on analysis of neoantigen reactivity among intratumoral T cells in a patient with metastatic melanoma (patient NKIRTIL063). CD4<sup>+<\/sup> and CD8<sup>+<\/sup> T cell cultures were generated by in vitro expansion of TIL, and both resulting T cell populations possessed cytotoxic potential, as measured by degranulation potential upon polyclonal stimulation (Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">6<\/a>). In parallel, nonsynonymous mutations in protein-coding genes were identified by exome and RNA sequencing, yielding 685 nonsynonymous expressed tumor variants, and a library of 2,762 minigenes that encoded all identified tumor mutations, as well as their corresponding WT sequences, was generated and expressed in autologous immortalized B cells. Screening of this patient mutanome library with in vitro-expanded CD8<sup>+<\/sup> TIL revealed TIL reactivity towards four neoantigens (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig2\">2a<\/a>). Importantly, no reactivity against the corresponding WT minigenes in the library was detected. Furthermore, screening the same neoantigen library with CD4<sup>+<\/sup> TIL yielded reactivity against six neoantigens (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig2\">2b<\/a>). Both minigenes encoding the tumor variant MYLK<sub>D>N<\/sub> showed reproducible low-level depletion after coculture with CD4<sup>+<\/sup> TIL, and this variant was therefore considered a putative screen hit. Recognition of screen-identified neoantigens, but not WT counterpart sequences, was subsequently validated upon expression of the individual sequences in patient B cells, resulting in confirmed CD4<sup>+<\/sup> and CD8<sup>+<\/sup> TIL reactivity towards 10 out of 11 identified screen hits (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig2\">2c,d<\/a> and Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">6<\/a>). Notably, three neoantigens\u2014GFPT2<sub>A>V<\/sub>, TNFAIP2<sub>P>A<\/sub> and CCSER2<sub>P>L<\/sub>\u2014were recognized by both CD8<sup>+<\/sup> and CD4<sup>+<\/sup> TIL of this patient.<\/p>\n<div data-test=\"figure\" data-container-section=\"figure\" id=\"figure-2\" data-title=\"Personalized and HLA-agnostic neoantigen screening of patient-derived CD4+ and CD8+ T cells.\">\n<figure><figcaption><b id=\"Fig2\" data-test=\"figure-caption-text\">Fig. 2: Personalized and HLA-agnostic neoantigen screening of patient-derived CD4<sup>+<\/sup> and CD8<sup>+<\/sup> T cells.<\/b><\/figcaption><div>\n<div><a data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0\/figures\/2\" rel=\"nofollow\"><picture><source type=\"image\/webp\" ><img decoding=\"async\" aria-describedby=\"Fig2\" src=\"http:\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1038%2Fs41587-022-01547-0\/MediaObjects\/41587_2022_1547_Fig2_HTML.png\" alt=\"Science &amp; Nature figure 2\" loading=\"lazy\" width=\"685\" height=\"1110\"><\/picture><\/a><\/div>\n<p><b>a<\/b>,<b>b<\/b>, Nonsynonymous tumor mutations of patient NKIRTIL063 were identified by exome and RNA sequencing and used to design a personalized mutanome minigene library consisting of <i>n<\/i>\u2009=\u20092,762 unique minigenes. Patient B cells were immortalized, transduced with the mutanome library and screened with in vitro-expanded tumor-infiltrating CD8<sup>+<\/sup> (<b>a<\/b>) and CD4<sup>+<\/sup> (<b>b<\/b>) T cells. Fold change represents relative minigene abundance in cultures with or without patient T cells. Screen hits were defined as outlined in <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"section anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Sec2\">Methods<\/a> and are marked by colored dots. <b>c<\/b>,<b>d<\/b>, Validation of neoantigen hits identified in <b>a<\/b> and <b>b<\/b> by incubating patient CD8<sup>+<\/sup> (<b>c<\/b>) or CD4<sup>+<\/sup> (<b>d<\/b>) with autologous B cells expressing either neoantigen hits (mut) or respective WT sequences as single minigenes. T cell activation was assessed by measuring IFN\u03b3 levels in supernatants. Dots represent technical replicates. <b>e<\/b>, NKIRTIL063 CD8<sup>+<\/sup> and CD4<sup>+<\/sup> T cells were incubated with patient B cells expressing indicated TMG constructs, followed by measuring IFN\u03b3 concentrations in culture supernatants. Asterisks indicate TMG constructs that encode a neoantigen identified using the antigen screens in <b>a<\/b>\u2013<b>d<\/b>. Dots represent technical replicates. <b>f<\/b>, Summary of NKIRTIL063 neoantigens identified using the HANSolo screens and TMG approach. <b>g<\/b>,<b>h<\/b>, Patient NKIRTIL027 immortalized B cells were transduced with the patient mutanome library (<i>n<\/i>\u2009=\u20092,586 minigenes) and screened using in vitro-expanded NKIRTIL027 CD8<sup>+<\/sup> (<b>g<\/b>) and CD4<sup>+<\/sup> (<b>h<\/b>) tumor-infiltrating T cells. Fold change depicts relative minigene abundance in cultures with or without patient T cells. Screen hits are marked by colored dots. <b>i<\/b>,<b>j<\/b>, NKIRTIL027 CD8<sup>+<\/sup> TIL screen hits were validated by incubating patient T cells with matched B cells expressing the single mutant or corresponding WT sequences, and measuring IFN\u03b3 levels in supernatants (<b>i<\/b>) or killing of transduced B cells after exposure to patient T cells at indicated effector:target (E:T) ratios (<b>j<\/b>). Dots represent technical replicates. N\/A, not available. <b>k<\/b>, The NKIRTIL027 CD4<sup>+<\/sup> T cell screen hit was validated as in <b>i<\/b>. <b>l<\/b>,<b>m<\/b>, Neoantigen specificities of patient ITO34 CD8<sup>+<\/sup> TIL were screened against the patient mutatome library (<i>n<\/i>\u2009=\u2009952 minigenes) and validated as in <b>g<\/b> and <b>i<\/b>.<\/p>\n<\/div>\n<p xmlns:xlink=\"http:\/\/www.w3.org\/1999\/xlink\"><a data-test=\"article-link\" data-track=\"click\" data-track-label=\"button\" data-track-action=\"view figure\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0\/figures\/2\" data-track-dest=\"link:Figure2 Full size image\" aria-label=\"Reference 2\"44 rel=\"nofollow\"><span>Full size image<\/span><\/a><\/p>\n<\/figure>\n<\/div>\n<p>To assess the sensitivity of our method in comparison with other available neoantigen discovery methods, we next analyzed neoantigen reactivity among CD4<sup>+<\/sup> and CD8<sup>+<\/sup> TIL of patient NKIRTIL063 using the previously established tandem minigene (TMG) approach<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\"55 title=\"Lu, Y. C. et al. Efficient identification of mutated cancer antigens recognized by T cells associated with durable tumor regressions. Clin. Cancer Res. 20, 3401\u20133410 (2014).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR4\" id=\"ref-link-section-d311915e1082\">4<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\"66 title=\"Tran, E. et al. Immunogenicity of somatic mutations in human gastrointestinal cancers. Science 350, 1387\u20131390 (2015).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR19\" id=\"ref-link-section-d311915e1085\">19<\/a><\/sup>, in which generally ten minigenes are concatenated and expressed as a single transgene in separate pools of antigen-presenting cells. To screen neoantigen specificities of patient NKIRTIL063 CD4<sup>+<\/sup> and CD8<sup>+<\/sup> TIL using TMGs within a reasonable timeframe, 200 of the 685 mutations were selected on the basis of expression level and mutation clonality and used to generate 20 pools of patient B cells. Incubation of these cell pools with either CD4<sup>+<\/sup> or CD8<sup>+<\/sup> TIL of patient NKIRTIL063 revealed notable reactivity of CD4<sup>+<\/sup> TIL to three TMGs (#6, #9 and #13) and reactivity of CD8<sup>+<\/sup> TIL to four TMGs (#8, #11, #15 and #16) (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig2\">2e<\/a>). Recognition of six out of seven TMGs was mediated by neoantigens identified before using the genetic library screens, as demonstrated by a subsequent deconvolution step (Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">6<\/a>). TMG#9 did not encode a neoantigen hit from our screens but did elicit low-level reactivity of CD4<sup>+<\/sup> TIL. Conversely, the TMG screen failed to identify four CD4<sup>+<\/sup> TIL-recognized neoantigens that were detected using the HANSolo screens (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig2\">2f<\/a>), demonstrating the potential of the method to mine patient neoantigens with increased depth compared with existing methodologies.<\/p>\n<p>Next, to assess the value of the developed system for the routine discovery of neoantigens across patients with cancer, we mapped neoantigen specificities in three additional patient samples. Tumor mutations were identified in an additional melanoma tumor (NKIRTIL027; 660 nonsynonymous expressed mutations) and used to construct a patient mutanome library of 2,562 minigenes. Screening the neoantigen specificities of CD4<sup>+<\/sup> and CD8<sup>+<\/sup> TIL resulted in six putative CD8<sup>+<\/sup> TIL-recognized neoantigens (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig2\">2g<\/a>) and one neoantigen recognized by CD4<sup>+<\/sup> TIL (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig2\">2h<\/a>), and recognition of these epitopes was confirmed for five out of seven neoantigens (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig2\">2i\u2013k<\/a> and Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">7<\/a>). In addition, as observed in genetic screens using model antigens and TCRs, the level of epitope depletion in this patient screen correlated with the capacity of patient T cells to produce interferon gamma (IFN\u03b3) in response to minigene-expressing B cells and kill such cells (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig2\">2i,j<\/a>). We next analyzed neoantigen specificities of intratumoral CD4<sup>+<\/sup> and CD8<sup>+<\/sup> T cells in a nonsmall cell lung tumor (patient ITO34; 231 mutations), resulting in the detection of CD8<sup>+<\/sup> TIL reactivity against one neoantigen (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig2\">2l,m<\/a> and Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">8<\/a>). Recently, strategies that enrich T cell populations for tumor-specific T cells by culture with patient tumor organoids<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\"77 title=\"Cattaneo, C. M. et al. Tumor organoid\u2013T-cell coculture systems. Nat. Protoc. 15, 15\u201339 (2020).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR20\" id=\"ref-link-section-d311915e1156\">20<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\"88 title=\"Dijkstra, K. K. et al. Generation of tumor-reactive T cells by co-culture of peripheral blood lymphocytes and tumor organoids. Cell 174, 1586\u20131598.e12 (2018).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR21\" id=\"ref-link-section-d311915e1159\">21<\/a><\/sup> or antigen-expressing APCs<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\"99 title=\"Arnaud, M. et al. Sensitive identification of neoantigens and cognate TCRs in human solid tumors. Nat. Biotechnol. 40, 656\u2013660 (2022).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR22\" id=\"ref-link-section-d311915e1163\">22<\/a><\/sup> have been reported. To assess whether such strategies may complement our methodology, for instance, in settings where fresh tumor material for the generation of TIL cultures is unavailable, we applied our screening method to a microsatellite-instable colorectal tumor (ITO66; 1,834 mutations). For this purpose, the patient mutanome was screened using a CD8<sup>+<\/sup> T cell product that was generated by ex vivo culture of patient peripheral blood mononuclear cells (PBMCs) with matched tumor organoids, resulting in the identification of two CD8<sup>+<\/sup> T cell-recognized neoantigens (Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">9<\/a>). Thus, the use of our screening methodology enabled the successful identification of patient neoantigens in all four tested patients.<\/p>\n<p>Collectively, these data demonstrate the feasibility of personalized and HLA-agnostic discovery of CD4<sup>+<\/sup> and CD8<sup>+<\/sup> T cell neoantigens from large genetic libraries. Benchmarking against the existing TMG method demonstrated enhanced sensitivity of our approach, in particular for the discovery of CD4<sup>+<\/sup> T cell-recognized neoantigens, while enabling substantially improved throughput. From a translational perspective, identified neoantigens may be used to select TCRs for use in next-generation TCR gene therapies or may be utilized in patient-specific cancer vaccines<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Arnaud, M. et al. Sensitive identification of neoantigens and cognate TCRs in human solid tumors. Nat. Biotechnol. 40, 656\u2013660 (2022).\" href=\"http:\/\/www.nature.com\/#ref-CR22\" id=\"ref-link-section-d311915e1184\">22<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Sahin, U. et al. Personalized RNA mutanome vaccines mobilize poly-specific therapeutic immunity against cancer. Nature 547, 222\u2013226 (2017).\" href=\"http:\/\/www.nature.com\/#ref-CR23\" id=\"ref-link-section-d311915e1184_1\">23<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Ott, P. A. et al. An immunogenic personal neoantigen vaccine for patients with melanoma. Nature 547, 217\u2013221 (2017).\" href=\"http:\/\/www.nature.com\/#ref-CR24\" id=\"ref-link-section-d311915e1184_2\">24<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Hilf, N. et al. Publisher correction: Actively personalized vaccination trial for newly diagnosed glioblastoma. Nature 566, E13\u2013E13 (2019).\" href=\"http:\/\/www.nature.com\/#ref-CR25\" id=\"ref-link-section-d311915e1184_3\">25<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\"00 title=\"Keskin, D. B. et al. Neoantigen vaccine generates intratumoral T cell responses in phase Ib glioblastoma trial. Nature 565, 234\u2013239 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR26\" id=\"ref-link-section-d311915e1187\">26<\/a><\/sup>. Of note, state-of-the-art algorithms that predict the immunogenicity of tumor mutations for use in personalized neoantigen vaccines ranked only 3 out of all 14 identified patient neoantigens as actionable vaccination targets (Supplementary Table <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM3\">2<\/a>), underlining the value of approaches that allow the unbiased and functional identification of patient neoantigens. With the current next-generation sequencing and DNA synthesis technologies and dedicated screening workflows, our system enables patient neoantigen discovery within 10\u2009weeks (Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">10<\/a>), a timespan that is compatible with the production of personalized immunotherapies<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\"11 title=\"Ott, P. A. et al. An immunogenic personal neoantigen vaccine for patients with melanoma. Nature 547, 217\u2013221 (2017).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR24\" id=\"ref-link-section-d311915e1198\">24<\/a><\/sup>.<\/p>\n<\/div>\n<\/div>\n<div id=\"Sec2-section\" data-title=\"Methods\">\n<h2 id=\"Sec2\">Methods<\/h2>\n<div id=\"Sec2-content\">\n<h3 id=\"Sec3\">Antibodies<\/h3>\n<p>The following antibodies were used for flow cytometry: CD3-PerCP-Cy5.5 (clone SK7; eBioscience; used 1:20); CD4-FITC (clone RPA-T4; BD Biosciences; used 1:20), CD4-APC (clone RPA-T4; BD Biosciences; used 1:30), CD4-BV421 (clone SK3, Biolegend; used 1:100), CD8-BV421 (clone RPA-T8; BD Biosciences; used 1:50), CD14-APC-H7 (clone MoP9, BD Biosciences; used 1:100), CD16-APC-H7 (clone 3G8, BD Biosciences; used 1:100), CD19-FITC (clone 4G7, BD Biosciences; used 1:30), CD137-BV421 (clone 4B4-1; Biolegend; used 1:200), CD137-APC (clone 4B4-1; BD Biosciences; used 1:30), OX40-PE-Cy7 (clone Ber-ACT35, Biolegend), CD107-PE (clone H4A3, BD Biosciences; used 1:150) and PE-conjugated anti-mouse TCR\u03b2 constant domain (clone H57-597; BD Biosciences; used 1:150). The viability stain IR-Dye (Thermo Fisher, used 1:2,000) was used to identify live cells.<\/p>\n<h3 id=\"Sec4\">Generation of patient T cell products, Bcl-6\/Bcl-xL-immortalized B cells and tumor organoids<\/h3>\n<p>Tumor tissue and PBMCs were collected from patients treated at the Netherlands Cancer Institute\u2014Antoni van Leeuwenhoek Hospital (NKI-AVL) with written informed consent and in accordance with guidelines of the Medical Ethical Committee. The study protocol was approved by the Medical Ethical Committee of the NKI-AVL. Fresh tumor tissue obtained by surgical resection was mechanically disrupted and digested overnight in RPMI 1640 medium (Life Technologies) supplemented with 1\u2009mg\u2009ml<sup>\u22121<\/sup> collagenase type IV (BD Biosciences), penicillin-streptomycin (Roche) and 0.01\u2009mg\u2009ml<sup>\u22121<\/sup> pulmozyme (Roche).<\/p>\n<p>For patients NKIRTIL027, NKIRTIL063 and ITO34, TIL cultures were generated by culturing tumor digest suspensions in T cell medium (RPMI 1640 medium supplemented with 10% human AB serum (Life Technologies), penicillin-streptomycin, <span>l<\/span>-glutamine (Life Technologies)), supplemented with 6,000 U\u2009ml<sup>\u22121<\/sup> IL-2 (Proleukin, Novartis) for 2\u20134 weeks. Obtained TIL cultures were subsequently stained with IR-Dye and antibodies against CD3, CD4 and CD8, and single CD3<sup>+<\/sup>CD4<sup>+<\/sup> and CD3<sup>+<\/sup>CD8<sup>+<\/sup> T cells were sorted using a FACSAria Fusion cell sorter (BD Biosciences). Isolated CD4<sup>+<\/sup> and CD8<sup>+<\/sup> T cells were expanded using the rapid expansion protocol (REP), using 30\u2009ng\u2009ml<sup>\u22121<\/sup> anti-CD3 antibody (clone OKT-3; eBioscience) and 3,000 U\u2009ml<sup>\u22121<\/sup> IL-2 in a 1:1 mixture of RPMI 1640 and AIM-V medium (Gibco) supplemented with 5% human AB serum, in the presence of irradiated (40\u2009Gy) allogeneic PBMCs (200:1 feeder\/T cell ratio). After 7\u2009days of REP culture, medium was refreshed with medium and IL-2 every 2\u2009days. Purity of the resultant CD4<sup>+<\/sup> and CD8<sup>+<\/sup> T cell populations was confirmed by flow cytometry at day\u200914 after start of REP (routinely >99%), and cells were subsequently either used directly in antigen discovery screens or cryopreserved in liquid nitrogen. Data from flow cytometry experiments was acquired using FACSDiva software and analyzed using Flowjo (BD Biosciences).<\/p>\n<p>Immortalized patient B cell lines were generated by retroviral transduction with Bcl-6\/Bcl-xL<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\"22 title=\"Kwakkenbos, M. J. et al. Generation of stable monoclonal antibody\u2013producing B cell receptor\u2013positive human memory B cells by genetic programming. Nat. Med. 16, 123\u2013128 (2010).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR27\" id=\"ref-link-section-d311915e1259\">27<\/a><\/sup>. Patient PBMCs were isolated from peripheral blood by Ficoll-Paque density gradient separation and stained with IR-Dye and antibodies against CD3, CD14, CD16 and CD19. Single IR-Dye<sup>\u2212<\/sup>CD3<sup>\u2212<\/sup>CD14<sup>\u2212<\/sup>CD16<sup>\u2212<\/sup>CD19<sup>+<\/sup> cells were sorted using a FACSAria Fusion cell sorter and stimulated for 36\u2009h with irradiated (55\u2009Gy) CD40L<sup>+<\/sup> mouse L cells in B cell medium (IMDM medium (Gibco) supplemented with penicillin-streptomycin, 10% heat-inactivated fetal bovine serum (Sigma-Aldrich) and 50\u2009ng\u2009ml<sup>\u22121<\/sup> IL-21 (Peprotech)), followed by retroviral transduction of Bcl-6 and Bcl-xL. The Bcl-6\/Bcl-xL-encoding vector also encodes GFP to allow evaluation of transduction efficiency. Bcl-6\/Bcl-xL-immortalized (GFP<sup>+<\/sup>) B cells were cultured in B cell medium and were stimulated every week by addition of irradiated CD40L<sup>+<\/sup> L cells. Medium and IL-21 were refreshed every 3\u20134\u2009days.<\/p>\n<p>For patient ITO66, tumor organoids were established<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\"33 title=\"Cattaneo, C. M. et al. Tumor organoid\u2013T-cell coculture systems. Nat. Protoc. 15, 15\u201339 (2020).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR20\" id=\"ref-link-section-d311915e1285\">20<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\"44 title=\"Dijkstra, K. K. et al. Generation of tumor-reactive T cells by co-culture of peripheral blood lymphocytes and tumor organoids. Cell 174, 1586\u20131598.e12 (2018).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR21\" id=\"ref-link-section-d311915e1288\">21<\/a><\/sup>. Tumor-reactive patient T cells were generated by coculturing PBMCs and tumor organoids as follows. Following incubation with 200\u2009ng\u2009ml<sup>\u22121<\/sup> IFN\u03b3 (Peprotech) for 24\u2009h, tumor organoids were dissociated into single-cell suspensions using TripLE Express (Gibco). Tumor organoid cells were mixed with patient PBMCs (20:1 PBMC\/tumor cell ratio) and 1\u2009\u00d7\u200910<sup>5<\/sup> PBMC were seeded in each well of a U-bottom 96-well plate precoated with 5\u2009\u03bcg\u2009ml<sup>\u22121<\/sup> anti-CD28 antibody (clone CD28.2; eBioscience). Coculture medium consisted of T cell medium supplemented with 150\u2009U\u2009ml<sup>\u22121<\/sup> IL-2 and 20\u2009\u00b5g\u2009ml<sup>\u22121<\/sup> anti-PD1 blocking antibody (clone 5C4; kindly provided by Merus). Coculture medium was refreshed every 2\u20133\u2009days. PBMCs were harvested and restimulated every 7\u2009days by replating with fresh tumor organoid cells.<\/p>\n<h3 id=\"Sec5\">Retroviral transduction of TCRs<\/h3>\n<p>Codon-optimized TCR \u03b1 and \u03b2 variable sequences (encompassing V-CDR3-J domains) of selected TCRs were gene-synthesized (Twist Biosciences) and subcloned into a modified pMP71 retroviral vector<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\"55 title=\"Scheper, W. et al. Low and variable tumor reactivity of the intratumoral TCR repertoire in human cancers. Nat. Med. 25, 89\u201394 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR12\" id=\"ref-link-section-d311915e1311\">12<\/a><\/sup>. This vector contains mouse TCR constant regions to reduce mispairing of introduced and endogenous TCR chains, as well as the puromycin N-acetyltransferase resistance gene. Retrovirus was produced by transfecting FLY-RD18 packaging cells with pMP71-TCR plasmid DNA using Xtremegene 9 transfection reagent (Roche). In parallel, healthy donor PBMCs (Sanquin Blood Bank) were separated into CD8<sup>+<\/sup> and CD8<sup>\u2212<\/sup> (for transduction with MHC class\u2009I- and MHC class\u2009II-restricted TCRs, respectively) cells using the CD8<sup>+<\/sup> T Cell Isolation Kit (Miltenyi Biotec). Isolated cell fractions were stimulated with CD3\/CD28 Dynabeads (Life Technologies) in T cell medium with 150\u2009U\u2009ml<sup>\u22121<\/sup> IL-2. After 48\u2009h, retroviral supernatants were collected and used to infect prestimulated CD8<sup>\u2212<\/sup>\/CD8<sup>+<\/sup> PBMCs by spinoculation (2,000 <i>g<\/i> for 90\u2009min) in Retronectin (Takara)-coated plates. Transduction efficiency was measured 72\u2009h later by staining with an anti-mouse TCR\u03b2 constant domain antibody and analysis by flow cytometry. TCR-transduced T cells were then selected with 2.5\u2009\u00b5g\u2009ml<sup>\u22121<\/sup> puromycin (Gibco) for 48\u2009h and received fresh medium and IL-2 every 3\u20134\u2009days. After 12\u201314\u2009days of culture, transduced T cells were expanded using the REP as described above.<\/p>\n<h3 id=\"Sec6\">T cell activation assays<\/h3>\n<p>Reactivity of TCR-transduced donor T cells was determined by coincubating T cells and target cells for 18\u201324\u2009h in U-bottom 96-well plates (1:1\u2009T cell\/target cell ratio) in T cell medium. Incubation of T cells without target cells, and in the presence of 50\u2009ng\u2009ml<sup>\u22121<\/sup> phorbol 12-myristate 13-acetate (Sigma-Aldrich) and 1\u2009\u00b5g\u2009ml<sup>\u22121<\/sup> ionomycin (Sigma-Aldrich) served as negative and positive controls, respectively. Following incubation, cells were stained with IR-Dye and antibodies against CD3, CD4, CD8 and the activation markers CD137 or OX40 and analyzed by flow cytometry. When T cell reactivity towards tumor organoids was tested, IFN\u03b3-pretreated organoids were incubated with T cells in the presence of 20\u2009\u00b5g\u2009ml<sup>\u22121<\/sup> anti-PD1 blocking antibody (Merus) in anti-CD28 antibody precoated plates.<\/p>\n<p>The cytotoxic capacity of T cells was assessed by coincubating T cells and target cells for 72\u2009h in 96-well plates at a T cell\/target cell ratio of 5:1, unless indicated otherwise. Target cells cultured in the absence of T cells served as negative control. Following incubation, 7.46\u2009\u00b5m AccuCount blank counting beads (Spherotech) were added to individual cultures to enable quantification of remaining live target cells. Cells were subsequently harvested, stained with 4,6-diamidino-2-phenylindole and anti-CD3 antibody, and measured by flow cytometry. When cytotoxicity against tumor organoids was assessed, IFN\u03b3-pretreated organoids were incubated with T cells in the presence of 20\u2009\u00b5g\u2009ml<sup>\u22121<\/sup> anti-PD1 blocking antibody (Merus) and 10\u2009\u00b5M Y-27632 in anti-CD28 antibody precoated 96-well plates. Where indicated, target cells were incubated with 50\u2009\u00b5g\u2009ml<sup>\u22121<\/sup> MHC class I blocking antibody (clone W6\/32) for 30\u2009min at 37\u2009\u00b0C before incubation with T cells. Data from functional T cell assay was analyzed using Graphpad Prism v.9.<\/p>\n<h3 id=\"Sec7\">Exome and RNA sequencing<\/h3>\n<p>Tumor genomic DNA and RNA was extracted from formalin-fixed paraffin embedded tumor material using the AllPrep DNA\/RNA kit (Qiagen). For patient ITO66, genomic DNA and RNA were isolated from tumor organoids. Genomic DNA of patient PBMCs was extracted using the DNeasy Blood &#038; Tissue kit (Qiagen). Exome enrichment was performed using the SureSelect XT2 Human All Exon V6 kit (Agilent) and strand-specific libraries were generated using the TruSeq Stranded mRNA sample preparation kit (Illumina) according to the manufacturer\u2019s instructions. Resulting libraries were sequenced on HiSeq 2500 or NovaSeq 6000 DNA analyzers (Illumina). Whole-exome and RNA sequencing was processed using bcbio-nextgen. Briefly, DNA reads were mapped against GRCh38 using Burrows\u2013Wheeler aligner (BWA), duplicates were marked with Picard MarkDuplicates and low complexity regions were excluded. Somatic and germline mutations were identified using Mutect2 and HaplotypeCaller, respectively, followed by annotation by SnpSift. RNA reads were quality filtered and mapped with STAR or TopHat2, transcript-level expression was quantified by Salmon and gene fusions were determined by Arriba<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\"66 title=\"Scheper, W. et al. Low and variable tumor reactivity of the intratumoral TCR repertoire in human cancers. Nat. Med. 25, 89\u201394 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR12\" id=\"ref-link-section-d311915e1363\">12<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\"77 title=\"Dijkstra, K. K. et al. Generation of tumor-reactive T cells by co-culture of peripheral blood lymphocytes and tumor organoids. Cell 174, 1586\u20131598.e12 (2018).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR21\" id=\"ref-link-section-d311915e1366\">21<\/a><\/sup>.<\/p>\n<h3 id=\"Sec8\">Antigen library design<\/h3>\n<p>To design the model antigen library used to validate the screening system, protein sequences of genes encoding known human nonmutated cancer regression antigens, as well as selected immunodominant epitope-encoding genes of Epstein-Barr virus, cytomegalovirus and influenza, were collected from the Uniprot database (<a href=\"https:\/\/www.uniprot.org\/\">https:\/\/www.uniprot.org\/<\/a>) (Supplementary Table <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM3\">1<\/a>). Protein sequences were reverse-translated and codon-optimized, and resulting nucleotide sequences were segmented into 93\u2009nucleotide (nt) minigenes with 45\u2009nt overlap between neighboring minigenes. In addition, a set of previously characterized neoantigens was included, all encoded by 93\u2009nt minigenes in which the mutant codon was flanked on either side by 45\u2009nt of the relevant nonmutant gene sequence. Minigene sequences encoding the corresponding nonmutated peptides were included for each model neoantigen. A stop codon was added directly following each minigene sequence, and internal <i>Bbs<\/i>I recognition sites were removed without altering the encoded peptide sequences. Each 93\u2009nt sequence was duplicated for a total of 4,764 sequences, and a unique 12\u2009nt barcode sequence was incorporated into each minigene sequence following the stop codon. The resulting sequences were flanked by sequences to enable PCR amplification and subcloning using <i>Bbs<\/i>I (New England Biolabs) into a pMSCV retroviral vector that also encodes the puromycin N-acetyltransferase resistance gene and mCherry (pMSCV-puroR-mCherry).<\/p>\n<p>To design NKIRTIL027 and NKIRTIL063 patient mutanome libraries, all single nucleotide variants (SNVs) and frameshifting indels with confirmed RNA expression within tumor cells were encoded as 93\u2009nt minigenes. RNA sequencing data of tumor ITO34 was unavailable, and the library was designed without taking RNA expression of tumor variants into account. For SNVs, minigenes were designed that encoded peptides in which the mutant codon was flanked on either side by 45\u2009nt of the relevant nonmutant gene sequence. In the case of frameshifting indels, or when SNVs resulted in loss of a stop codon, the newly formed open reading frame was segmented in 93\u2009nt minigenes with 45\u2009nt overlap between adjacent minigenes. Minigenes encoding corresponding WT sequences were included for all tumor variant minigenes. Minigenes encoding the MART1<sub>26\u201335<\/sub> and CDK4<sub>R24L<\/sub> epitopes were included in all libraries as internal controls. Internal <i>Bbs<\/i>I recognition sites were removed without altering encoded peptide sequences, and minigenes were flanked by sequences for PCR amplification and subcloning as described above. For patient ITO66, the mutanome library was designed to encode tumor variants as 63\u2009nt minigenes, and no corresponding WT minigenes were included. All minigene libraries were synthesized by Twist Biosciences.<\/p>\n<h3 id=\"Sec9\">Generation of a universal antigen expression vector<\/h3>\n<p>To establish a library expression system that enables the concurrent processing and presentation of minigene products through both the MHC class\u2009I and class\u2009II pathways, constructs were designed in which a TMG encoding two previously identified neoantigens recognized by either CD4<sup>+<\/sup> or CD8<sup>+<\/sup> TIL of patient NKIRTIL027 (LEMD2<sub>P>L<\/sub> (ref. <sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\"88 title=\"Linnemann, C. et al. High-throughput epitope discovery reveals frequent recognition of neo-antigens by CD4+ T cells in human melanoma. Nat. Med. 21, 81\u201385 (2015).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR28\" id=\"ref-link-section-d311915e1418\">28<\/a><\/sup>) and TTC37<sub>A>V<\/sub> (unpublished data), respectively) was either fused or not fused to the signal sequence of CD74 (Supplementary Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM1\">4<\/a>)<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\"99 title=\"Bonehill, A. et al. Messenger RNA-electroporated dendritic cells presenting MAGE-A3 simultaneously in HLA class I and class II molecules. J. Immunol. 172, 6649\u20136657 (2004).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR29\" id=\"ref-link-section-d311915e1428\">29<\/a><\/sup>. Codon-optimized constructs were synthesized (Twist Biosciences) and subcloned into the retroviral pMSCV-puroR-mCherry vector. NKIRTIL027 immortalized B cells were transduced with TMG constructs, selected to over 90% purity (by measuring mCherry expression) with 5\u2009\u03bcg\u2009ml<sup>\u22121<\/sup> puromycin and incubated with NKIRTIL027 CD4<sup>+<\/sup> or CD8<sup>+<\/sup> TIL at a ratio of 1:1 for 48\u2009h in T cell medium with 30\u2009U\u2009ml<sup>\u22121<\/sup> IL-2. T cell activation was subsequently assessed by measuring IFN\u03b3 levels in the culture supernatant using the Cytometric Bead Array kit (BD Biosciences), following the manufacturer\u2019s instructions.<\/p>\n<h3 id=\"Sec10\">Library cloning and transduction<\/h3>\n<p>Oligonucleotide libraries were amplified by 12 cycles of PCR using Phusion High-Fidelity DNA Polymerase (New England Biolabs) and primers Preamp Forward (5\u2032-ACTGTCAGAAGACTGCAAGC-3\u2032) and Preamp Reverse (5\u2032-TGACAGCGAAGACCATAGTG-3\u2032). For first proof-of-concept screening experiments using MHC class\u2009I-restricted TCRs, the amplified model antigen library was cloned by Golden Gate assembly using <i>Bbs<\/i>I into the pMSCV-puroR-mCherry retroviral vector. For all other screens, amplified libraries were cloned into the pMSCV-puroR-mCherry vector modified to include the sorting sequence of CD74. Subcloned libraries were amplified using Endura electrocompetent cells (Lucigen) and library DNA was extracted using the PureLink HiPure Maxiprep kit (Invitrogen). During all cloning steps, a library representation of at least 100\u00d7 was maintained.<\/p>\n<p>Libraries were retrovirally transduced in duplicate into immortalized B cell lines, as described above. To ensure single retroviral integrations, B cells were transduced at an infection rate of less than 10%. One day after transduction, B cells were transferred to B cell medium in the presence of irradiated CD40L<sup>+<\/sup> L cells. Transduction efficiency was assessed 3\u2009days post-transduction by measuring mCherry expression by flow cytometry, followed by selection with 5\u2009\u00b5g\u2009ml<sup>\u22121<\/sup> puromycin for 2\u2009days and expansion of the B cell cultures until used in screens.<\/p>\n<h3 id=\"Sec11\">Antigen discovery screens<\/h3>\n<p>For proof-of-concept screens using MHC class\u2009I-restricted TCRs, the antigen library encoding known cancer regression antigens was transduced into a previously immortalized HLA-A*02:01<sup>+<\/sup> patient B cell line (OVC21)<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 11\"00 title=\"Scheper, W. et al. Low and variable tumor reactivity of the intratumoral TCR repertoire in human cancers. Nat. Med. 25, 89\u201394 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR12\" id=\"ref-link-section-d311915e1468\">12<\/a><\/sup>. Library-expressing B cells were coincubated in duplicate with donor CD8<sup>+<\/sup> T cells transduced with the CDK4<sub>R24L<\/sub>-specific TCR #53 or MART<sub>26\u201335<\/sub>-specific TCRs DMF4, DMF5 or 1D3 (all HLA-A*02:01-restricted) in T cell medium with 25\u2009U\u2009ml<sup>\u22121<\/sup> IL-2 at a T cell:B cell ratio of 5:1 and at a density of 2\u2009\u00d7\u200910<sup>6<\/sup> total cells\u2009cm<sup>\u22122<\/sup>. Cultures were resuspended on day\u20091 and 2 of the experiment. For screens using patient-derived MHC class\u2009II-restricted neoantigen-specific TCRs, the model library was transduced into patient-matched immortalized B cells (patient NKIRTIL017), and library-expressing B cells were cocultured with donor CD4<sup>+<\/sup> T cells transduced with either the MANSC1<sub>D>H<\/sub>&#8211; or SNORD73A<sub>R>W<\/sub>-specific TCR as described above. To simulate screening conditions using clonally diverse T cell populations, TCR-expressing T cells were mixed with donor-matched mock-transduced T cells at indicated ratios. Library coverage of at least 300\u00d7 was maintained in all experiments. After 72\u2009h of coincubation, cells were washed in PBS, and cell debris was removed by either Ficoll-Paque density gradient separation or using the Dead Cell Removal kit (Miltenyi Biotec). Isolated cells were subsequently resuspended in DirectPCR Lysis Reagent (Viagen) containing 500\u2009\u00b5g\u2009ml<sup>\u22121<\/sup> proteinase K and lysed by incubation at 55\u2009\u00b0C for 60\u2009min, 85\u2009\u00b0C for 30\u2009min and 94\u2009\u00b0C for 5\u2009min. Minigene sequences were then amplified by PCR using NEBNext Ultra\u2009II Q5 Master Mix (New England Biolabs), using the following primers:<\/p>\n<p>Prep-I Forward (for screens with MHC class I-restricted TCRs):<\/p>\n<p>5\u2032-CAAGCAGAAGACGGCATACGATGGAGGAGAACCCTGGACCTACAAGC-3\u2032<\/p>\n<p>Prep-II Forward (for all other screens):<\/p>\n<p>5\u2032-CAAGCAGAAGACGGCATACGACCTGCGGATGAAGCTGCCCG-3\u2032<\/p>\n<p>Prep Reverse:<\/p>\n<p>5\u2032-AATGATACGGCGACCACCGAGATCTACACTCTTTCCCTACACGACGCTCTTCCGATCTNNNNNNNG ATCCGACTCGGTGCCACTTTTTCAAC-3\u2032<\/p>\n<p>The 7-nt stretch of N nucleotides indicates a unique barcode sequence used to enable the multiplexed preparation of sequencing libraries. Following PCR, samples were pooled equimolarly and run on a 1% agarose gel to separate minigene amplicons from potential primer dimers. Minigene amplicons were extracted from gel using the Monarch DNA Gel Extraction Kit (New England Biolabs) and deep sequenced on an Illumina HiSeq 2500 Sequencing system (single read 65\u2009bp). Sequencing data were deposited in the National Center for Biotechnology Information (NCBI) Sequence Read Archive under accession code PRJNA884260 (ref. <sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 11\"11 title=\"Cattaneo, C.M. et al. HLA-agnostic Neoantigen Screening (HANSolo) \u2013 raw sequencing data. NCBI Sequence Read Archive (SRA) \n                https:\/\/www.ncbi.nlm.nih.gov\/bioproject\/PRJNA884260\n                \n               (2022).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR30\" id=\"ref-link-section-d311915e1516\">30<\/a><\/sup>).<\/p>\n<p>For patient neoantigen screens, mutanome libraries were transduced into autologous immortalized B cells, followed by selection with puromycin. The cytotoxic potential of expanded patient TIL was confirmed before neoantigen screens by measuring their capacity to degranulate. To this end, CD4<sup>+<\/sup> and CD8<sup>+<\/sup> TIL were polyclonally stimulated using CD3\/CD28 Dynabeads in T cell medium in the presence of Golgistop (BD Biosciences) and an antibody against CD107 for 12\u2009h. Following incubation, cells were stained with IR-Dye and an anti-CD4 antibody and analyzed by flow cytometry. Neoantigen screens were subsequently performed by incubating library-expressing B cells in duplicate with patient T cells at a T cell:B cell ratio of 5:1. Library-transduced B cells cultured in the absence of patient T cells served as a negative control. After 72\u2009h of coincubation, cells were processed as described above.<\/p>\n<h3 id=\"Sec12\">Sequence analysis<\/h3>\n<p>Initial sequence quality profiles were quantified by FastQC and demultiplexed using fastq-multx (ea-utils) with one mismatch allowed. Vector sequences were trimmed from sequence reads using fastq-mcf (ea-utils) against the UniVec database, and samples were subsequently quality filtered using cutadapt. The unique 12\u2009nt barcodes that were added to individual minigene sequences were extracted using seqkit and mapped using Bowtie2 with no multimatched hits allowed. For the ITO66 neoantigen screen, high-quality reads were mapped against the full minigene sequences of the patient library using BBMap with ambiguously mapped reads removed and only perfect mappings allowed. Per sample count tables were differentially compared and normalized using DESeq2. Minigenes with an average abundance below the fourth percentile and a coefficient of variation greater than one across the two internal replicates were removed from analyses. Statistical testing was performed using the DESeq2 Wald test and log-fold change cut-off of 0.25. Tumor variants were defined as screen hits when at least one of the duplicate mutant sequences, but neither of the corresponding WT-encoding minigenes, had an false discovery rate-corrected <i>P<\/i> value less than 0.2 and a log<sub>2<\/sub> fold change of less than \u22120.5. All data analysis was performed using R and visualized using the ggplot2 package.<\/p>\n<p>To validate patient neoantigens identified in screens, minigenes encoding the screen hits, as well as their WT counterparts, were synthesized as individual gBlocks (IDT), cloned into the CD74 signal sequence-modified pMSCV-puroR-mCherry vector and transduced into immortalized patient B cells. Following selection with puromycin, minigene-transduced B cells were cocultured with expanded patient CD4<sup>+<\/sup> or CD8<sup>+<\/sup> TIL for 48\u2009h in T cell medium with 30 U\u2009ml<sup>\u22121<\/sup> IL-2 and T cell activation was assessed by measuring IFN\u03b3 levels in the culture supernatant using the Cytometric Bead Array kit (BD Biosciences). Reactivity towards neoantigens was considered confirmed when T cells secreted at least twofold more IFN\u03b3 in response to the mutant sequence compared with the WT control sequence.<\/p>\n<h3 id=\"Sec13\">NKIRTIL063 TMG screen<\/h3>\n<p>The number of tumor variants of patient NKIRTIL063 selected for TMG screening was reasonably limited to 200 (of a total of 685 nonsynonymous expressed mutations). Mutations were selected by first including the 25 most clonal mutations (based on variant allele frequency), followed by including mutations with highest gene expression up to a total of 200 tumor variants. TMG constructs were designed to encode ten variant-encoding minigenes (93\u2009nt each) in which the mutant codon was flanked by 45\u2009nt of nonmutant gene sequence on either side. Codon-optimized sequences were synthesized (Twist Biosciences) and subcloned into the CD74-modified pMSCV-puroR-mCherry retroviral vector. NKIRTIL063 immortalized B cells were transduced with TMG constructs and selected to more than 80% purity with 5\u2009\u03bcg\u2009ml<sup>\u22121<\/sup> puromycin. Next, TMG-expressing B cells were cocultured with NKIRTIL063 CD4<sup>+<\/sup> or CD8<sup>+<\/sup> TIL (from the same expansion cultures as used for the antigen discovery screen) at a ratio of 1:1 for 48\u2009h in T cell medium with 30\u2009U\u2009m<sup>\u22121<\/sup> lL-2, and activation of T cells was determined by measuring IFN\u03b3 levels in the culture supernatant using the Cytometric Bead Array kit (BD Biosciences). To validate that the observed reactivity to selected TMG constructs was mediated by neoantigens identified using our neoantigen discovery screen, modified versions of these TMGs were designed such that exclusively the minigene that encoded the identified neoantigen was reverted to its WT sequence. Reactivity of NKIRTIL063 CD4<sup>+<\/sup> or CD8<sup>+<\/sup> TIL to B cells transduced with these modified TMGs was subsequently assessed as above.<\/p>\n<h3 id=\"Sec14\">In silico selection of neoantigen vaccine targets<\/h3>\n<p>The computational tool Vaxrank<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 11\"22 title=\"Rubinsteyn, A., Hodes, I., Kodysh, J. &#038; Hammerbacher, J. Vaxrank: A computational tool for designing personalized cancer vaccines. Preprint at bioRxiv \n                https:\/\/doi.org\/10.1101\/142919\n                \n               (2017).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR31\" id=\"ref-link-section-d311915e1579\">31<\/a><\/sup> was used to rank tumor mutations of patients NKIRTIL063, NKIRTIL027 and ITO66 for use in a putative personalized cancer vaccine. Patient ITO34 was omitted from this analysis because RNA expression data were unavailable. HLA typing of patients was performed using OptiType for HLA-A, -B and -C alleles. The set of somatic variant calls and aligned RNA reads were used as input, with parameters set to a peptide length of 25, an epitope length of 8\u201311 and utilization of the MHCFlurry prediction algorithm. In line with ongoing clinical trials of personalized neoantigen-based vaccines<sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 11\"33 title=\"Blass, E. &#038; Ott, P. A. Advances in the development of personalized neoantigen-based therapeutic cancer vaccines. Nat. Rev. Clin. Oncol. 18, 215\u2013229 (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR32\" id=\"ref-link-section-d311915e1583\">32<\/a><\/sup>, the 20 top ranking predicted neoantigens were considered for putative neoantigen vaccines (Supplementary Table <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM3\">2<\/a>).<\/p>\n<h3 id=\"Sec15\">Reporting summary<\/h3>\n<p>Further information on research design is available in the <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#MOESM2\">Nature Portfolio Reporting Summary<\/a> linked to this article.<\/p>\n<\/div>\n<\/div><\/div>\n<div>\n<div id=\"data-availability-section\" data-title=\"Data availability\">\n<h2 id=\"data-availability\">Data availability<\/h2>\n<p>DNA sequencing data of antigen discovery screens have been deposited in the NCBI Sequence Read Archive under accession code PRJNA884260 (ref. <sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 11\"44 title=\"Cattaneo, C.M. et al. HLA-agnostic Neoantigen Screening (HANSolo) \u2013 raw sequencing data. NCBI Sequence Read Archive (SRA) \n                https:\/\/www.ncbi.nlm.nih.gov\/bioproject\/PRJNA884260\n                \n               (2022).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR30\" id=\"ref-link-section-d311915e1694\">30<\/a><\/sup>). Protein sequences of genes encoding known human nonmutated cancer regression antigens, as well as selected viral genes were collected from the Uniprot database (<a href=\"https:\/\/www.uniprot.org\/\">https:\/\/www.uniprot.org\/<\/a>).<\/p>\n<\/div>\n<div id=\"code-availability-section\" data-title=\"Code availability\">\n<h2 id=\"code-availability\">Code availability<\/h2>\n<div id=\"code-availability-content\">\n<p>Scripts used for analyzing sequencing data from antigen discovery screens are available at <a href=\"https:\/\/github.com\/twbattaglia\/amplicon-nf\">https:\/\/github.com\/twbattaglia\/amplicon-nf<\/a> (ref. <sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 11\"55 title=\"Battaglia, T. HANSolo amplicon-nf pipeline. GitHub \n                https:\/\/github.com\/twbattaglia\/amplicon-nf\n                \n               (2022).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR33\" id=\"ref-link-section-d311915e1720\">33<\/a><\/sup>). Script output for the presented analyses is available at <a href=\"https:\/\/github.com\/twbattaglia\/HANSolo-manuscript\">https:\/\/github.com\/twbattaglia\/HANSolo-manuscript<\/a> (ref. <sup><a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 11\"66 title=\"Battaglia, T. HANSolo analysis code. GitHub \n                https:\/\/github.com\/twbattaglia\/HANSolo-manuscript\n                \n               (2022).\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#ref-CR34\" id=\"ref-link-section-d311915e1731\">34<\/a><\/sup>).<\/p>\n<\/p><\/div>\n<\/div>\n<div id=\"MagazineFulltextArticleBodySuffix\" aria-labelledby=\"Bib1\" data-title=\"References\">\n<h2 id=\"Bib1\">References<\/h2>\n<div data-container-section=\"references\" id=\"Bib1-content\">\n<ol data-track-component=\"outbound reference\">\n<li data-counter=\"1.\">\n<p id=\"ref-CR1\">Schumacher, T. N., Scheper, W. &#038; Kvistborg, P. Cancer neoantigens. <i>Annu. Rev. Immunol.<\/i> <b>37<\/b>, 173\u2013200 (2018).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1146\/annurev-immunol-042617-053402\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1146%2Fannurev-immunol-042617-053402\" aria-label=\"Reference 11\"77 data-doi=\"10.1146\/annurev-immunol-042617-053402\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 11\"88 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Cancer%20neoantigens&#038;journal=Annu.%20Rev.%20Immunol.&#038;doi=10.1146%2Fannurev-immunol-042617-053402&#038;volume=37&#038;pages=173-200&#038;publication_year=2018&#038;author=Schumacher%2CTN&#038;author=Scheper%2CW&#038;author=Kvistborg%2CP\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"2.\">\n<p id=\"ref-CR2\">Schumacher, T. N. &#038; Schreiber, R. D. Neoantigens in cancer immunotherapy. <i>Science<\/i> <b>348<\/b>, 69\u201374 (2015).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1126\/science.aaa4971\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1126%2Fscience.aaa4971\" aria-label=\"Reference 11\"99 data-doi=\"10.1126\/science.aaa4971\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC2MXls1Wmurc%3D\" aria-label=\"Reference 12\"00>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 12\"11 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Neoantigens%20in%20cancer%20immunotherapy&#038;journal=Science&#038;doi=10.1126%2Fscience.aaa4971&#038;volume=348&#038;pages=69-74&#038;publication_year=2015&#038;author=Schumacher%2CTN&#038;author=Schreiber%2CRD\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"3.\">\n<p id=\"ref-CR3\">Bentzen, A. K. et al. Large-scale detection of antigen-specific T cells using peptide-MHC-I multimers labeled with DNA barcodes. <i>Nat. Biotechnol.<\/i> <b>34<\/b>, 1037\u20131045 (2016).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/nbt.3662\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fnbt.3662\" aria-label=\"Reference 12\"22 data-doi=\"10.1038\/nbt.3662\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC28XhsVWks7%2FE\" aria-label=\"Reference 12\"33>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 12\"44 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Large-scale%20detection%20of%20antigen-specific%20T%20cells%20using%20peptide-MHC-I%20multimers%20labeled%20with%20DNA%20barcodes&#038;journal=Nat.%20Biotechnol.&#038;doi=10.1038%2Fnbt.3662&#038;volume=34&#038;pages=1037-1045&#038;publication_year=2016&#038;author=Bentzen%2CAK\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"4.\">\n<p id=\"ref-CR4\">Lu, Y. C. et al. Efficient identification of mutated cancer antigens recognized by T cells associated with durable tumor regressions. <i>Clin. Cancer Res.<\/i> <b>20<\/b>, 3401\u20133410 (2014).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1158\/1078-0432.CCR-14-0433\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1158%2F1078-0432.CCR-14-0433\" aria-label=\"Reference 12\"55 data-doi=\"10.1158\/1078-0432.CCR-14-0433\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC2cXhtVKksr3K\" aria-label=\"Reference 12\"66>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 12\"77 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Efficient%20identification%20of%20mutated%20cancer%20antigens%20recognized%20by%20T%20cells%20associated%20with%20durable%20tumor%20regressions&#038;journal=Clin.%20Cancer%20Res.&#038;doi=10.1158%2F1078-0432.CCR-14-0433&#038;volume=20&#038;pages=3401-3410&#038;publication_year=2014&#038;author=Lu%2CYC\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"5.\">\n<p id=\"ref-CR5\">Kula, T. et al. T-Scan: a genome-wide method for the systematic discovery of T cell epitopes. <i>Cell<\/i> <b>178<\/b>, 1016\u20131028.e13 (2019).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1016\/j.cell.2019.07.009\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1016%2Fj.cell.2019.07.009\" aria-label=\"Reference 12\"88 data-doi=\"10.1016\/j.cell.2019.07.009\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC1MXhsFKktrvF\" aria-label=\"Reference 12\"99>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Full size image figure 1\"00 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=T-Scan%3A%20a%20genome-wide%20method%20for%20the%20systematic%20discovery%20of%20T%20cell%20epitopes&#038;journal=Cell&#038;doi=10.1016%2Fj.cell.2019.07.009&#038;volume=178&#038;pages=1016-1028.e13&#038;publication_year=2019&#038;author=Kula%2CT\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"6.\">\n<p id=\"ref-CR6\">Joglekar, A. V. et al. T cell antigen discovery via signaling and antigen-presenting bifunctional receptors. <i>Nat. Methods<\/i> <b>16<\/b>, 191\u2013198 (2019).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/s41592-018-0304-8\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fs41592-018-0304-8\" aria-label=\"Full size image figure 1\"11 data-doi=\"10.1038\/s41592-018-0304-8\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC1MXnt1CmsLc%3D\" aria-label=\"Full size image figure 1\"22>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Full size image figure 1\"33 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=T%20cell%20antigen%20discovery%20via%20signaling%20and%20antigen-presenting%20bifunctional%20receptors&#038;journal=Nat.%20Methods&#038;doi=10.1038%2Fs41592-018-0304-8&#038;volume=16&#038;pages=191-198&#038;publication_year=2019&#038;author=Joglekar%2CAV\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"7.\">\n<p id=\"ref-CR7\">Li, G. et al. T cell antigen discovery via trogocytosis. <i>Nat. Methods<\/i> <b>16<\/b>, 183\u2013190 (2019).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/s41592-018-0305-7\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fs41592-018-0305-7\" aria-label=\"Full size image figure 1\"44 data-doi=\"10.1038\/s41592-018-0305-7\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC1MXnt1CmsbY%3D\" aria-label=\"Full size image figure 1\"55>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Full size image figure 1\"66 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=T%20cell%20antigen%20discovery%20via%20trogocytosis&#038;journal=Nat.%20Methods&#038;doi=10.1038%2Fs41592-018-0305-7&#038;volume=16&#038;pages=183-190&#038;publication_year=2019&#038;author=Li%2CG\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"8.\">\n<p id=\"ref-CR8\">Alspach, E. et al. MHC-II neoantigens shape tumour immunity and response to immunotherapy. <i>Nature<\/i> <b>574<\/b>, 696\u2013701 (2019).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/s41586-019-1671-8\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fs41586-019-1671-8\" aria-label=\"Full size image figure 1\"77 data-doi=\"10.1038\/s41586-019-1671-8\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC1MXitVagsLjN\" aria-label=\"Full size image figure 1\"88>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Full size image figure 1\"99 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=MHC-II%20neoantigens%20shape%20tumour%20immunity%20and%20response%20to%20immunotherapy&#038;journal=Nature&#038;doi=10.1038%2Fs41586-019-1671-8&#038;volume=574&#038;pages=696-701&#038;publication_year=2019&#038;author=Alspach%2CE\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"9.\">\n<p id=\"ref-CR9\">Borst, J., Ahrends, T., Babala, N., Melief, C. J. M. &#038; Kastenmuller, W. CD4+ T cell help in cancer immunology and immunotherapy. <i>Nat. Rev. Immunol.<\/i> <b>18<\/b>, 635\u2013647 (2018).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/s41577-018-0044-0\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fs41577-018-0044-0\" aria-label=\"Reference 13\"00 data-doi=\"10.1038\/s41577-018-0044-0\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC1cXhsVShtbrP\" aria-label=\"Reference 13\"11>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 13\"22 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=CD4%2B%20T%20cell%20help%20in%20cancer%20immunology%20and%20immunotherapy&#038;journal=Nat.%20Rev.%20Immunol.&#038;doi=10.1038%2Fs41577-018-0044-0&#038;volume=18&#038;pages=635-647&#038;publication_year=2018&#038;author=Borst%2CJ&#038;author=Ahrends%2CT&#038;author=Babala%2CN&#038;author=Melief%2CCJM&#038;author=Kastenmuller%2CW\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"10.\">\n<p id=\"ref-CR10\">Oh, D. Y. et al. Intratumoral CD4+ T cells mediate anti-tumor cytotoxicity in human bladder cancer. <i>Cell<\/i> <b>181<\/b>, 1612\u20131625.e13 (2020).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1016\/j.cell.2020.05.017\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1016%2Fj.cell.2020.05.017\" aria-label=\"Reference 13\"33 data-doi=\"10.1016\/j.cell.2020.05.017\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BB3cXhtVyiu7fJ\" aria-label=\"Reference 13\"44>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 13\"55 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Intratumoral%20CD4%2B%20T%20cells%20mediate%20anti-tumor%20cytotoxicity%20in%20human%20bladder%20cancer&#038;journal=Cell&#038;doi=10.1016%2Fj.cell.2020.05.017&#038;volume=181&#038;pages=1612-1625.e13&#038;publication_year=2020&#038;author=Oh%2CDY\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"11.\">\n<p id=\"ref-CR11\">Tran, E. et al. Cancer immunotherapy based on mutation-specific CD4+ T cells in a patient with epithelial cancer. <i>Science<\/i> <b>344<\/b>, 641\u2013645 (2014).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1126\/science.1251102\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1126%2Fscience.1251102\" aria-label=\"Reference 13\"66 data-doi=\"10.1126\/science.1251102\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC2cXnsVSqs7w%3D\" aria-label=\"Reference 13\"77>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 13\"88 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Cancer%20immunotherapy%20based%20on%20mutation-specific%20CD4%2B%20T%20cells%20in%20a%20patient%20with%20epithelial%20cancer&#038;journal=Science&#038;doi=10.1126%2Fscience.1251102&#038;volume=344&#038;pages=641-645&#038;publication_year=2014&#038;author=Tran%2CE\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"12.\">\n<p id=\"ref-CR12\">Scheper, W. et al. Low and variable tumor reactivity of the intratumoral TCR repertoire in human cancers. <i>Nat. Med.<\/i> <b>25<\/b>, 89\u201394 (2019).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/s41591-018-0266-5\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fs41591-018-0266-5\" aria-label=\"Reference 13\"99 data-doi=\"10.1038\/s41591-018-0266-5\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC1cXitl2iu7bK\" aria-label=\"Reference 14\"00>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 14\"11 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Low%20and%20variable%20tumor%20reactivity%20of%20the%20intratumoral%20TCR%20repertoire%20in%20human%20cancers&#038;journal=Nat.%20Med.&#038;doi=10.1038%2Fs41591-018-0266-5&#038;volume=25&#038;pages=89-94&#038;publication_year=2019&#038;author=Scheper%2CW\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"13.\">\n<p id=\"ref-CR13\">Stronen, E. et al. Targeting of cancer neoantigens with donor-derived T cell receptor repertoires. <i>Science<\/i> <b>352<\/b>, 1337\u20131341 (2016).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1126\/science.aaf2288\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1126%2Fscience.aaf2288\" aria-label=\"Reference 14\"22 data-doi=\"10.1126\/science.aaf2288\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC28Xpt1Gmsr4%3D\" aria-label=\"Reference 14\"33>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 14\"44 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Targeting%20of%20cancer%20neoantigens%20with%20donor-derived%20T%20cell%20receptor%20repertoires&#038;journal=Science&#038;doi=10.1126%2Fscience.aaf2288&#038;volume=352&#038;pages=1337-1341&#038;publication_year=2016&#038;author=Stronen%2CE\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"14.\">\n<p id=\"ref-CR14\">Johnson, L. A. et al. Gene transfer of tumor-reactive TCR confers both high avidity and tumor reactivity to nonreactive peripheral blood mononuclear cells and tumor-infiltrating lymphocytes. <i>J. Immunol.<\/i> <b>177<\/b>, 6548\u20136559 (2006).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.4049\/jimmunol.177.9.6548\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.4049%2Fjimmunol.177.9.6548\" aria-label=\"Reference 14\"55 data-doi=\"10.4049\/jimmunol.177.9.6548\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BD28XhtFSns7bK\" aria-label=\"Reference 14\"66>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 14\"77 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Gene%20transfer%20of%20tumor-reactive%20TCR%20confers%20both%20high%20avidity%20and%20tumor%20reactivity%20to%20nonreactive%20peripheral%20blood%20mononuclear%20cells%20and%20tumor-infiltrating%20lymphocytes&#038;journal=J.%20Immunol.&#038;doi=10.4049%2Fjimmunol.177.9.6548&#038;volume=177&#038;pages=6548-6559&#038;publication_year=2006&#038;author=Johnson%2CLA\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"15.\">\n<p id=\"ref-CR15\">Borbulevych, O. Y., Santhanagopolan, S. M., Hossain, M. &#038; Baker, B. M. TCRs used in cancer gene therapy cross-react with MART-1\/Melan-A tumor antigens via distinct mechanisms. <i>J. Immunol.<\/i> <b>187<\/b>, 2453\u20132463 (2011).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.4049\/jimmunol.1101268\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.4049%2Fjimmunol.1101268\" aria-label=\"Reference 14\"88 data-doi=\"10.4049\/jimmunol.1101268\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC3MXhtVGmsLfE\" aria-label=\"Reference 14\"99>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 14\"00 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=TCRs%20used%20in%20cancer%20gene%20therapy%20cross-react%20with%20MART-1%2FMelan-A%20tumor%20antigens%20via%20distinct%20mechanisms&#038;journal=J.%20Immunol.&#038;doi=10.4049%2Fjimmunol.1101268&#038;volume=187&#038;pages=2453-2463&#038;publication_year=2011&#038;author=Borbulevych%2COY&#038;author=Santhanagopolan%2CSM&#038;author=Hossain%2CM&#038;author=Baker%2CBM\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"16.\">\n<p id=\"ref-CR16\">Valmori, D. et al. Vaccination with a Melan-A peptide selects an oligoclonal T cell population with increased functional avidity and tumor reactivity. <i>J. Immunol.<\/i> <b>168<\/b>, 4231\u20134240 (2002).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.4049\/jimmunol.168.8.4231\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.4049%2Fjimmunol.168.8.4231\" aria-label=\"Reference 14\"11 data-doi=\"10.4049\/jimmunol.168.8.4231\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BD38XivV2itr0%3D\" aria-label=\"Reference 14\"22>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 14\"33 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Vaccination%20with%20a%20Melan-A%20peptide%20selects%20an%20oligoclonal%20T%20cell%20population%20with%20increased%20functional%20avidity%20and%20tumor%20reactivity&#038;journal=J.%20Immunol.&#038;doi=10.4049%2Fjimmunol.168.8.4231&#038;volume=168&#038;pages=4231-4240&#038;publication_year=2002&#038;author=Valmori%2CD\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"17.\">\n<p id=\"ref-CR17\">Chalmers, Z. R. et al. Analysis of 100,000 human cancer genomes reveals the landscape of tumor mutational burden. <i>Genome Med.<\/i> <b>9<\/b>, 34 (2017).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1186\/s13073-017-0424-2\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1186%2Fs13073-017-0424-2\" aria-label=\"Reference 14\"44 data-doi=\"10.1186\/s13073-017-0424-2\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 14\"55 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Analysis%20of%20100%2C000%20human%20cancer%20genomes%20reveals%20the%20landscape%20of%20tumor%20mutational%20burden&#038;journal=Genome%20Med.&#038;doi=10.1186%2Fs13073-017-0424-2&#038;volume=9&#038;publication_year=2017&#038;author=Chalmers%2CZR\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"18.\">\n<p id=\"ref-CR18\">Jorritsma, A. et al. Selecting highly affine and well-expressed TCRs for gene therapy of melanoma. <i>Blood<\/i> <b>110<\/b>, 3564\u20133572 (2007).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1182\/blood-2007-02-075010\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1182%2Fblood-2007-02-075010\" aria-label=\"Reference 14\"66 data-doi=\"10.1182\/blood-2007-02-075010\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BD2sXhtlarur3E\" aria-label=\"Reference 14\"77>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 14\"88 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Selecting%20highly%20affine%20and%20well-expressed%20TCRs%20for%20gene%20therapy%20of%20melanoma&#038;journal=Blood&#038;doi=10.1182%2Fblood-2007-02-075010&#038;volume=110&#038;pages=3564-3572&#038;publication_year=2007&#038;author=Jorritsma%2CA\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"19.\">\n<p id=\"ref-CR19\">Tran, E. et al. Immunogenicity of somatic mutations in human gastrointestinal cancers. <i>Science<\/i> <b>350<\/b>, 1387\u20131390 (2015).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1126\/science.aad1253\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1126%2Fscience.aad1253\" aria-label=\"Reference 14\"99 data-doi=\"10.1126\/science.aad1253\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC2MXhvFKru7%2FL\" aria-label=\"Reference 15\"00>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 15\"11 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Immunogenicity%20of%20somatic%20mutations%20in%20human%20gastrointestinal%20cancers&#038;journal=Science&#038;doi=10.1126%2Fscience.aad1253&#038;volume=350&#038;pages=1387-1390&#038;publication_year=2015&#038;author=Tran%2CE\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"20.\">\n<p id=\"ref-CR20\">Cattaneo, C. M. et al. Tumor organoid\u2013T-cell coculture systems. <i>Nat. Protoc.<\/i> <b>15<\/b>, 15\u201339 (2020).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/s41596-019-0232-9\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fs41596-019-0232-9\" aria-label=\"Reference 15\"22 data-doi=\"10.1038\/s41596-019-0232-9\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC1MXisVaqsL7N\" aria-label=\"Reference 15\"33>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 15\"44 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Tumor%20organoid%E2%80%93T-cell%20coculture%20systems&#038;journal=Nat.%20Protoc.&#038;doi=10.1038%2Fs41596-019-0232-9&#038;volume=15&#038;pages=15-39&#038;publication_year=2020&#038;author=Cattaneo%2CCM\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"21.\">\n<p id=\"ref-CR21\">Dijkstra, K. K. et al. Generation of tumor-reactive T cells by co-culture of peripheral blood lymphocytes and tumor organoids. <i>Cell<\/i> <b>174<\/b>, 1586\u20131598.e12 (2018).<\/p>\n<\/li>\n<li data-counter=\"22.\">\n<p id=\"ref-CR22\">Arnaud, M. et al. Sensitive identification of neoantigens and cognate TCRs in human solid tumors. <i>Nat. Biotechnol.<\/i> <b>40<\/b>, 656\u2013660 (2022).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/s41587-021-01072-6\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fs41587-021-01072-6\" aria-label=\"Reference 15\"55 data-doi=\"10.1038\/s41587-021-01072-6\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BB3MXisV2lt7nF\" aria-label=\"Reference 15\"66>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 15\"77 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Sensitive%20identification%20of%20neoantigens%20and%20cognate%20TCRs%20in%20human%20solid%20tumors&#038;journal=Nat.%20Biotechnol.&#038;doi=10.1038%2Fs41587-021-01072-6&#038;volume=40&#038;pages=656-660&#038;publication_year=2022&#038;author=Arnaud%2CM\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"23.\">\n<p id=\"ref-CR23\">Sahin, U. et al. Personalized RNA mutanome vaccines mobilize poly-specific therapeutic immunity against cancer. <i>Nature<\/i> <b>547<\/b>, 222\u2013226 (2017).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/nature23003\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fnature23003\" aria-label=\"Reference 15\"88 data-doi=\"10.1038\/nature23003\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC2sXhtFaqt73L\" aria-label=\"Reference 15\"99>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 2\"0000 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Personalized%20RNA%20mutanome%20vaccines%20mobilize%20poly-specific%20therapeutic%20immunity%20against%20cancer&#038;journal=Nature&#038;doi=10.1038%2Fnature23003&#038;volume=547&#038;pages=222-226&#038;publication_year=2017&#038;author=Sahin%2CU\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"24.\">\n<p id=\"ref-CR24\">Ott, P. A. et al. An immunogenic personal neoantigen vaccine for patients with melanoma. <i>Nature<\/i> <b>547<\/b>, 217\u2013221 (2017).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/nature22991\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fnature22991\" aria-label=\"Reference 2\"0101 data-doi=\"10.1038\/nature22991\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC2sXhtFaqt7rO\" aria-label=\"Reference 2\"0202>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 2\"0303 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=An%20immunogenic%20personal%20neoantigen%20vaccine%20for%20patients%20with%20melanoma&#038;journal=Nature&#038;doi=10.1038%2Fnature22991&#038;volume=547&#038;pages=217-221&#038;publication_year=2017&#038;author=Ott%2CPA\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"25.\">\n<p id=\"ref-CR25\">Hilf, N. et al. Publisher correction: Actively personalized vaccination trial for newly diagnosed glioblastoma. <i>Nature<\/i> <b>566<\/b>, E13\u2013E13 (2019).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/s41586-019-0959-z\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fs41586-019-0959-z\" aria-label=\"Reference 2\"0404 data-doi=\"10.1038\/s41586-019-0959-z\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC1MXmt1yntrY%3D\" aria-label=\"Reference 2\"0505>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 2\"0606 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Publisher%20correction%3A%20Actively%20personalized%20vaccination%20trial%20for%20newly%20diagnosed%20glioblastoma&#038;journal=Nature&#038;doi=10.1038%2Fs41586-019-0959-z&#038;volume=566&#038;pages=E13-E13&#038;publication_year=2019&#038;author=Hilf%2CN\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"26.\">\n<p id=\"ref-CR26\">Keskin, D. B. et al. Neoantigen vaccine generates intratumoral T cell responses in phase Ib glioblastoma trial. <i>Nature<\/i> <b>565<\/b>, 234\u2013239 (2019).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/s41586-018-0792-9\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fs41586-018-0792-9\" aria-label=\"Reference 2\"0707 data-doi=\"10.1038\/s41586-018-0792-9\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC1cXisFyksLvE\" aria-label=\"Reference 2\"0808>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 2\"0909 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Neoantigen%20vaccine%20generates%20intratumoral%20T%20cell%20responses%20in%20phase%20Ib%20glioblastoma%20trial&#038;journal=Nature&#038;doi=10.1038%2Fs41586-018-0792-9&#038;volume=565&#038;pages=234-239&#038;publication_year=2019&#038;author=Keskin%2CDB\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"27.\">\n<p id=\"ref-CR27\">Kwakkenbos, M. J. et al. Generation of stable monoclonal antibody\u2013producing B cell receptor\u2013positive human memory B cells by genetic programming. <i>Nat. Med.<\/i> <b>16<\/b>, 123\u2013128 (2010).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/nm.2071\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fnm.2071\" aria-label=\"Reference 2\"1010 data-doi=\"10.1038\/nm.2071\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BD1MXhsFyhsLvL\" aria-label=\"Reference 2\"1111>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 2\"1212 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Generation%20of%20stable%20monoclonal%20antibody%E2%80%93producing%20B%20cell%20receptor%E2%80%93positive%20human%20memory%20B%20cells%20by%20genetic%20programming&#038;journal=Nat.%20Med.&#038;doi=10.1038%2Fnm.2071&#038;volume=16&#038;pages=123-128&#038;publication_year=2010&#038;author=Kwakkenbos%2CMJ\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"28.\">\n<p id=\"ref-CR28\">Linnemann, C. et al. High-throughput epitope discovery reveals frequent recognition of neo-antigens by CD4+ T cells in human melanoma. <i>Nat. Med.<\/i> <b>21<\/b>, 81\u201385 (2015).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/nm.3773\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fnm.3773\" aria-label=\"Reference 2\"1313 data-doi=\"10.1038\/nm.3773\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BC2cXitFKltLfJ\" aria-label=\"Reference 2\"1414>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 2\"1515 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=High-throughput%20epitope%20discovery%20reveals%20frequent%20recognition%20of%20neo-antigens%20by%20CD4%2B%20T%20cells%20in%20human%20melanoma&#038;journal=Nat.%20Med.&#038;doi=10.1038%2Fnm.3773&#038;volume=21&#038;pages=81-85&#038;publication_year=2015&#038;author=Linnemann%2CC\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"29.\">\n<p id=\"ref-CR29\">Bonehill, A. et al. Messenger RNA-electroporated dendritic cells presenting MAGE-A3 simultaneously in HLA class I and class II molecules. <i>J. Immunol.<\/i> <b>172<\/b>, 6649\u20136657 (2004).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.4049\/jimmunol.172.11.6649\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.4049%2Fjimmunol.172.11.6649\" aria-label=\"Reference 2\"1616 data-doi=\"10.4049\/jimmunol.172.11.6649\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"link\" data-track-action=\"cas reference\" href=\"http:\/\/www.nature.com\/articles\/cas-redirect\/1:CAS:528:DC%2BD2cXktFSksbk%3D\" aria-label=\"Reference 2\"1717>CAS<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 2\"1818 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Messenger%20RNA-electroporated%20dendritic%20cells%20presenting%20MAGE-A3%20simultaneously%20in%20HLA%20class%20I%20and%20class%20II%20molecules&#038;journal=J.%20Immunol.&#038;doi=10.4049%2Fjimmunol.172.11.6649&#038;volume=172&#038;pages=6649-6657&#038;publication_year=2004&#038;author=Bonehill%2CA\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"30.\">\n<p id=\"ref-CR30\">Cattaneo, C.M. et al. HLA-agnostic Neoantigen Screening (HANSolo) \u2013 raw sequencing data. <i>NCBI Sequence Read Archive (SRA)<\/i> <a href=\"https:\/\/www.ncbi.nlm.nih.gov\/bioproject\/PRJNA884260\">https:\/\/www.ncbi.nlm.nih.gov\/bioproject\/PRJNA884260<\/a> (2022).<\/p>\n<\/li>\n<li data-counter=\"31.\">\n<p id=\"ref-CR31\">Rubinsteyn, A., Hodes, I., Kodysh, J. &#038; Hammerbacher, J. Vaxrank: A computational tool for designing personalized cancer vaccines. Preprint at <i>bioRxiv<\/i> <a href=\"https:\/\/doi.org\/10.1101\/142919\">https:\/\/doi.org\/10.1101\/142919<\/a> (2017).<\/p>\n<\/li>\n<li data-counter=\"32.\">\n<p id=\"ref-CR32\">Blass, E. &#038; Ott, P. A. Advances in the development of personalized neoantigen-based therapeutic cancer vaccines. <i>Nat. Rev. Clin. Oncol.<\/i> <b>18<\/b>, 215\u2013229 (2021).<\/p>\n<p><a data-track=\"click\" rel=\"nofollow noopener\" data-track-label=\"10.1038\/s41571-020-00460-2\" data-track-action=\"article reference\" href=\"https:\/\/doi.org\/10.1038%2Fs41571-020-00460-2\" aria-label=\"Reference 2\"1919 data-doi=\"10.1038\/s41571-020-00460-2\">Article<\/a>\u00a0<br \/>\n    <a data-track=\"click\" data-track-action=\"google scholar reference\" data-track-label=\"link\" rel=\"nofollow noopener\" aria-label=\"Reference 2\"2020 href=\"http:\/\/scholar.google.com\/scholar_lookup?&#038;title=Advances%20in%20the%20development%20of%20personalized%20neoantigen-based%20therapeutic%20cancer%20vaccines&#038;journal=Nat.%20Rev.%20Clin.%20Oncol.&#038;doi=10.1038%2Fs41571-020-00460-2&#038;volume=18&#038;pages=215-229&#038;publication_year=2021&#038;author=Blass%2CE&#038;author=Ott%2CPA\"><br \/>\n                    Google Scholar<\/a>\u00a0\n                <\/p>\n<\/li>\n<li data-counter=\"33.\">\n<p id=\"ref-CR33\">Battaglia, T. HANSolo amplicon-nf pipeline. <i>GitHub<\/i> <a href=\"https:\/\/github.com\/twbattaglia\/amplicon-nf\">https:\/\/github.com\/twbattaglia\/amplicon-nf<\/a> (2022).<\/p>\n<\/li>\n<li data-counter=\"34.\">\n<p id=\"ref-CR34\">Battaglia, T. HANSolo analysis code. <i>GitHub<\/i> <a href=\"https:\/\/github.com\/twbattaglia\/HANSolo-manuscript\">https:\/\/github.com\/twbattaglia\/HANSolo-manuscript<\/a> (2022).<\/p>\n<\/li>\n<\/ol>\n<p><a data-track=\"click\" data-track-action=\"download citation references\" data-track-label=\"link\" rel=\"nofollow\" href=\"https:\/\/citation-needed.springer.com\/v2\/references\/10.1038\/s41587-022-01547-0?format=refman&#038;flavour=references\">Download references<\/a><\/p>\n<\/div>\n<\/div>\n<div id=\"Ack1-section\" data-title=\"Acknowledgements\">\n<h2 id=\"Ack1\">Acknowledgements<\/h2>\n<p>We would like to thank M. Slagter and L. Wessels for bioinformatic and statistical support, K. Dijkstra for support with single-cell TCR sequencing, A. van de Leun for support with isolation of neoantigen-specific TCRs, M. Wolkers for kindly sharing patient material, K. Bresser and D. Vredevoogd for helpful discussions on library design, the NKI-AVL Flow Cytometry Facility for flow cytometric support, the NKI-AVL Core Facility Molecular Pathology and Biobanking for supplying NKI-AVL Biobank material and laboratory support and the NKI-AVL Genomics Core Facility for support with next-generation sequencing. This work was supported by the Dutch Cancer Society Young Investigator Grant (grant No. 2020-1\/12977) (to W.S.), ZonMw Translational Research Program 2 (grant No. 446002001) (to W.S. and J.B.A.G.H.), the Queen Wilhelmina Cancer Research Award and ERC AdG SENSIT (grant agreement No. 742259) (to T.N.S.), the NWO Gravitation program (NWO 2012-2022) (to E.E.V.) and Oncode Institute (to T.N.S. and E.E.V.). Figure <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41587-022-01547-0#Fig1\">1a<\/a> was created with <a href=\"https:\/\/biorender.com\">BioRender.com<\/a>.<\/p>\n<\/div>\n<div id=\"author-information-section\" aria-labelledby=\"author-information\" data-title=\"Author information\">\n<h2 id=\"author-information\">Author information<\/h2>\n<div id=\"author-information-content\">\n<p><span id=\"author-notes\">Author notes<\/span><\/p>\n<ol>\n<li id=\"na1\">\n<p>These authors contributed equally: Thomas Battaglia, Jos Urbanus.<\/p>\n<\/li>\n<li id=\"na2\">\n<p>These authors jointly supervised this work: Emile E. Voest, Ton N. Schumacher, Wouter Scheper.<\/p>\n<\/li>\n<\/ol>\n<h3 id=\"affiliations\">Authors and Affiliations<\/h3>\n<ol>\n<li id=\"Aff1\">\n<p>Department of Molecular Oncology and Immunology, The Netherlands Cancer Institute, Amsterdam, The Netherlands<\/p>\n<p>Chiara M. Cattaneo,\u00a0Thomas Battaglia,\u00a0Jos Urbanus,\u00a0Ziva Moravec,\u00a0Rhianne Voogd,\u00a0John B. A. G. Haanen,\u00a0Emile E. Voest,\u00a0Ton N. Schumacher\u00a0&#038;\u00a0Wouter Scheper<\/p>\n<\/li>\n<li id=\"Aff2\">\n<p>Oncode Institute, Utrecht, The Netherlands<\/p>\n<p>Chiara M. Cattaneo,\u00a0Thomas Battaglia,\u00a0Jos Urbanus,\u00a0Emile E. Voest\u00a0&#038;\u00a0Ton N. Schumacher<\/p>\n<\/li>\n<li id=\"Aff3\">\n<p>Department of Genomics of Cancer and Targeted Therapies, IFOM, FIRC Institute of Molecular Oncology, Milan, Italy<\/p>\n<p>Chiara M. Cattaneo<\/p>\n<\/li>\n<li id=\"Aff4\">\n<p>Department of Hematopoiesis, Sanquin Research, Amsterdam, The Netherlands<\/p>\n<p>Rosa de Groot<\/p>\n<\/li>\n<li id=\"Aff5\">\n<p>Department of Hematology, Leiden University Medical Centre, Leiden, The Netherlands<\/p>\n<p>Rosa de Groot\u00a0&#038;\u00a0Ton N. Schumacher<\/p>\n<\/li>\n<li id=\"Aff6\">\n<p>Department of Surgery, The Netherlands Cancer Institute, Amsterdam, The Netherlands<\/p>\n<p>Koen J. Hartemink<\/p>\n<\/li>\n<li id=\"Aff7\">\n<p>Department of Medical Oncology, The Netherlands Cancer Institute, Amsterdam, The Netherlands<\/p>\n<p>John B. A. G. Haanen\u00a0&#038;\u00a0Emile E. Voest<\/p>\n<\/li>\n<\/ol>\n<h3 id=\"contributions\">Contributions<\/h3>\n<p>C.M.C., J.U., Z.M., R.V. and W.S. designed, performed, analyzed and interpreted experiments. T.B. analyzed sequencing data of screens. K.J.H. and R.d.G. supplied patient tumor material. C.M.C., J.B.A.G.H., E.E.V., T.N.S. and W.S. wrote the manuscript. All authors reviewed the manuscript.<\/p>\n<h3 id=\"corresponding-author\">Corresponding authors<\/h3>\n<p id=\"corresponding-author-list\">Correspondence to<br \/>\n                <a id=\"corresp-c1\" href=\"http:\/\/www.nature.com\/mailto:e.*****@*ki.nl\" data-original-string=\"dKsSbk9ZXFpt4S9Yu+OW8A==7f4s49EwE2QVGU68IIMw2ARUg==\" title=\"This contact has been encoded by Anti-Spam by CleanTalk. Click to decode. To finish the decoding make sure that JavaScript is enabled in your browser.\">Emile E. Voest<\/a>, <a id=\"corresp-c2\" href=\"http:\/\/www.nature.com\/mailto:t.**********@*ki.nl\" data-original-string=\"2nZgM6uV9ziymB\/0JTLp5A==7f4ud8ebipAWpI+Dq28K56VnxEHfFaanMEXbutzP7\/rk3w=\" title=\"This contact has been encoded by Anti-Spam by CleanTalk. Click to decode. To finish the decoding make sure that JavaScript is enabled in your browser.\">Ton N. Schumacher<\/a> or <a id=\"corresp-c3\" href=\"http:\/\/www.nature.com\/mailto:w.*******@*ki.nl\" data-original-string=\"MBYSTo72MaogwmEJyKCL6w==7f4FseWVaFUZuux1i4\/2VNaYMWrhRxO+0NYB4EN2i\/NeF0=\" title=\"This contact has been encoded by Anti-Spam by CleanTalk. Click to decode. To finish the decoding make sure that JavaScript is enabled in your browser.\">Wouter Scheper<\/a>.<\/p>\n<\/div>\n<\/div>\n<div id=\"ethics-section\" data-title=\"Ethics declarations\">\n<h2 id=\"ethics\">Ethics declarations<\/h2>\n<div id=\"ethics-content\">\n<h3 id=\"FPar2\">Competing interests<\/h3>\n<p>T.N.S. is advisor for Allogene Therapeutics, Celsius, Merus, Neogene Therapeutics and Scenic Biotech; is a recipient of research support from Merck KgaA; is a stockholder in Allogene Therapeutics, Cell Control, Celsius, Merus, Neogene Therapeutics and Scenic Biotech and is venture partner at Third Rock Ventures, all outside of the current work. J.B.A.G.H. is advisor for BioNTech, Neogene Therapeutics, Scenic Biotech and T-Knife; is a recipient of research grant support from BioNTech; is a stock option holder in Neogene Therapeutics, all outside of the current work. All other authors declare no competing interests.<\/p>\n<\/p><\/div>\n<\/div>\n<div id=\"peer-review-section\" data-title=\"Peer review\">\n<h2 id=\"peer-review\">Peer review<\/h2>\n<div id=\"peer-review-content\">\n<h3 id=\"FPar1\">Peer review information<\/h3>\n<p><i>Nature Biotechnology<\/i> thanks Paul Robbins and the other, anonymous, reviewer(s) for their contribution to the peer review of this work.<\/p>\n<\/p><\/div>\n<\/div>\n<div id=\"additional-information-section\" data-title=\"Additional information\">\n<h2 id=\"additional-information\">Additional information<\/h2>\n<p><b>Publisher\u2019s note<\/b> Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.<\/p>\n<\/div>\n<div id=\"Sec17-section\" data-title=\"Supplementary information\">\n<h2 id=\"Sec17\">Supplementary information<\/h2>\n<\/div>\n<div id=\"rightslink-section\" data-title=\"Rights and permissions\">\n<h2 id=\"rightslink\">Rights and permissions<\/h2>\n<div id=\"rightslink-content\">\n<p><b>Open Access<\/b>  This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article\u2019s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article\u2019s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit <a href=\"http:\/\/creativecommons.org\/licenses\/by\/4.0\/\" rel=\"license\">http:\/\/creativecommons.org\/licenses\/by\/4.0\/<\/a>.<\/p>\n<p><a data-track=\"click\" data-track-action=\"view rights and permissions\" data-track-label=\"link\" href=\"https:\/\/s100.copyright.com\/AppDispatchServlet?title=Identification%20of%20patient-specific%20CD4%2B%20and%20CD8%2B%20T%20cell%20neoantigens%20through%20HLA-unbiased%20genetic%20screens&#038;author=Chiara%20M.%20Cattaneo%20et%20al&#038;contentID=10.1038%2Fs41587-022-01547-0&#038;copyright=The%20Author%28s%29&#038;publication=1087-0156&#038;publicationDate=2023-01-02&#038;publisherName=SpringerNature&#038;orderBeanReset=true&#038;oa=CC%20BY\">Reprints and Permissions<\/a><\/p>\n<\/div>\n<\/div>\n<div id=\"article-info-section\" aria-labelledby=\"article-info\" data-title=\"About this article\">\n<h2 id=\"article-info\">About this article<\/h2>\n<div id=\"article-info-content\">\n<p><a data-crossmark=\"10.1038\/s41587-022-01547-0\" target=\"_blank\" rel=\"noopener\" href=\"https:\/\/crossmark.crossref.org\/dialog\/?doi=10.1038\/s41587-022-01547-0\" data-track=\"click\" data-track-action=\"Click Crossmark\" data-track-label=\"link\" data-test=\"crossmark\"><img loading=\"lazy\" decoding=\"async\" width=\"57\" height=\"81\" alt=\"Science &amp; Nature Verify currency and authenticity via CrossMark\" src=\"data:image\/svg+xml;base64,<svg height="81" width="57" xmlns="http://www.w3.org/2000/svg"><g fill="none" fill-rule="evenodd"><path d="m17.35 35.45 21.3-14.2v-17.03h-21.3" fill="#989898"/><path d="m38.65 35.45-21.3-14.2v-17.03h21.3" fill="#747474"/><path d="m28 .5c-12.98 0-23.5 10.52-23.5 23.5s10.52 23.5 23.5 23.5 23.5-10.52 23.5-23.5c0-6.23-2.48-12.21-6.88-16.62-4.41-4.4-10.39-6.88-16.62-6.88zm0 41.25c-9.8 0-17.75-7.95-17.75-17.75s7.95-17.75 17.75-17.75 17.75 7.95 17.75 17.75c0 4.71-1.87 9.22-5.2 12.55s-7.84 5.2-12.55 5.2z" fill="#535353"/><path d="m41 36c-5.81 6.23-15.23 7.45-22.43 2.9-7.21-4.55-10.16-13.57-7.03-21.5l-4.92-3.11c-4.95 10.7-1.19 23.42 8.78 29.71 9.97 6.3 23.07 4.22 30.6-4.86z" fill="#9c9c9c"/><path d="m.2 58.45c0-.75.11-1.42.33-2.01s.52-1.09.91-1.5c.38-.41.83-.73 1.34-.94.51-.22 1.06-.32 1.65-.32.56 0 1.06.11 1.51.35.44.23.81.5 1.1.81l-.91 1.01c-.24-.24-.49-.42-.75-.56-.27-.13-.58-.2-.93-.2-.39 0-.73.08-1.05.23-.31.16-.58.37-.81.66-.23.28-.41.63-.53 1.04-.13.41-.19.88-.19 1.39 0 1.04.23 1.86.68 2.46.45.59 1.06.88 1.84.88.41 0 .77-.07 1.07-.23s.59-.39.85-.68l.91 1c-.38.43-.8.76-1.28.99-.47.22-1 .34-1.58.34-.59 0-1.13-.1-1.64-.31-.5-.2-.94-.51-1.31-.91-.38-.4-.67-.9-.88-1.48-.22-.59-.33-1.26-.33-2.02zm8.4-5.33h1.61v2.54l-.05 1.33c.29-.27.61-.51.96-.72s.76-.31 1.24-.31c.73 0 1.27.23 1.61.71.33.47.5 1.14.5 2.02v4.31h-1.61v-4.1c0-.57-.08-.97-.25-1.21-.17-.23-.45-.35-.83-.35-.3 0-.56.08-.79.22-.23.15-.49.36-.78.64v4.8h-1.61zm7.37 6.45c0-.56.09-1.06.26-1.51.18-.45.42-.83.71-1.14.29-.3.63-.54 1.01-.71.39-.17.78-.25 1.18-.25.47 0 .88.08 1.23.24.36.16.65.38.89.67s.42.63.54 1.03c.12.41.18.84.18 1.32 0 .32-.02.57-.07.76h-4.36c.07.62.29 1.1.65 1.44.36.33.82.5 1.38.5.29 0 .57-.04.83-.13s.51-.21.76-.37l.55 1.01c-.33.21-.69.39-1.09.53-.41.14-.83.21-1.26.21-.48 0-.92-.08-1.34-.25-.41-.16-.76-.4-1.07-.7-.31-.31-.55-.69-.72-1.13-.18-.44-.26-.95-.26-1.52zm4.6-.62c0-.55-.11-.98-.34-1.28-.23-.31-.58-.47-1.06-.47-.41 0-.77.15-1.07.45-.31.29-.5.73-.58 1.3zm2.5.62c0-.57.09-1.08.28-1.53.18-.44.43-.82.75-1.13s.69-.54 1.1-.71c.42-.16.85-.24 1.31-.24.45 0 .84.08 1.17.23s.61.34.85.57l-.77 1.02c-.19-.16-.38-.28-.56-.37-.19-.09-.39-.14-.61-.14-.56 0-1.01.21-1.35.63-.35.41-.52.97-.52 1.67 0 .69.17 1.24.51 1.66.34.41.78.62 1.32.62.28 0 .54-.06.78-.17.24-.12.45-.26.64-.42l.67 1.03c-.33.29-.69.51-1.08.65-.39.15-.78.23-1.18.23-.46 0-.9-.08-1.31-.24-.4-.16-.75-.39-1.05-.7s-.53-.69-.7-1.13c-.17-.45-.25-.96-.25-1.53zm6.91-6.45h1.58v6.17h.05l2.54-3.16h1.77l-2.35 2.8 2.59 4.07h-1.75l-1.77-2.98-1.08 1.23v1.75h-1.58zm13.69 1.27c-.25-.11-.5-.17-.75-.17-.58 0-.87.39-.87 1.16v.75h1.34v1.27h-1.34v5.6h-1.61v-5.6h-.92v-1.2l.92-.07v-.72c0-.35.04-.68.13-.98.08-.31.21-.57.4-.79s.42-.39.71-.51c.28-.12.63-.18 1.04-.18.24 0 .48.02.69.07.22.05.41.1.57.17zm.48 5.18c0-.57.09-1.08.27-1.53.17-.44.41-.82.72-1.13.3-.31.65-.54 1.04-.71.39-.16.8-.24 1.23-.24s.84.08 1.24.24c.4.17.74.4 1.04.71s.54.69.72 1.13c.19.45.28.96.28 1.53s-.09 1.08-.28 1.53c-.18.44-.42.82-.72 1.13s-.64.54-1.04.7-.81.24-1.24.24-.84-.08-1.23-.24-.74-.39-1.04-.7c-.31-.31-.55-.69-.72-1.13-.18-.45-.27-.96-.27-1.53zm1.65 0c0 .69.14 1.24.43 1.66.28.41.68.62 1.18.62.51 0 .9-.21 1.19-.62.29-.42.44-.97.44-1.66 0-.7-.15-1.26-.44-1.67-.29-.42-.68-.63-1.19-.63-.5 0-.9.21-1.18.63-.29.41-.43.97-.43 1.67zm6.48-3.44h1.33l.12 1.21h.05c.24-.44.54-.79.88-1.02.35-.24.7-.36 1.07-.36.32 0 .59.05.78.14l-.28 1.4-.33-.09c-.11-.01-.23-.02-.38-.02-.27 0-.56.1-.86.31s-.55.58-.77 1.1v4.2h-1.61zm-47.87 15h1.61v4.1c0 .57.08.97.25 1.2.17.24.44.35.81.35.3 0 .57-.07.8-.22.22-.15.47-.39.73-.73v-4.7h1.61v6.87h-1.32l-.12-1.01h-.04c-.3.36-.63.64-.98.86-.35.21-.76.32-1.24.32-.73 0-1.27-.24-1.61-.71-.33-.47-.5-1.14-.5-2.02zm9.46 7.43v2.16h-1.61v-9.59h1.33l.12.72h.05c.29-.24.61-.45.97-.63.35-.17.72-.26 1.1-.26.43 0 .81.08 1.15.24.33.17.61.4.84.71.24.31.41.68.53 1.11.13.42.19.91.19 1.44 0 .59-.09 1.11-.25 1.57-.16.47-.38.85-.65 1.16-.27.32-.58.56-.94.73-.35.16-.72.25-1.1.25-.3 0-.6-.07-.9-.2s-.59-.31-.87-.56zm0-2.3c.26.22.5.37.73.45.24.09.46.13.66.13.46 0 .84-.2 1.15-.6.31-.39.46-.98.46-1.77 0-.69-.12-1.22-.35-1.61-.23-.38-.61-.57-1.13-.57-.49 0-.99.26-1.52.77zm5.87-1.69c0-.56.08-1.06.25-1.51.16-.45.37-.83.65-1.14.27-.3.58-.54.93-.71s.71-.25 1.08-.25c.39 0 .73.07 1 .2.27.14.54.32.81.55l-.06-1.1v-2.49h1.61v9.88h-1.33l-.11-.74h-.06c-.25.25-.54.46-.88.64-.33.18-.69.27-1.06.27-.87 0-1.56-.32-2.07-.95s-.76-1.51-.76-2.65zm1.67-.01c0 .74.13 1.31.4 1.7.26.38.65.58 1.15.58.51 0 .99-.26 1.44-.77v-3.21c-.24-.21-.48-.36-.7-.45-.23-.08-.46-.12-.7-.12-.45 0-.82.19-1.13.59-.31.39-.46.95-.46 1.68zm6.35 1.59c0-.73.32-1.3.97-1.71.64-.4 1.67-.68 3.08-.84 0-.17-.02-.34-.07-.51-.05-.16-.12-.3-.22-.43s-.22-.22-.38-.3c-.15-.06-.34-.1-.58-.1-.34 0-.68.07-1 .2s-.63.29-.93.47l-.59-1.08c.39-.24.81-.45 1.28-.63.47-.17.99-.26 1.54-.26.86 0 1.51.25 1.93.76s.63 1.25.63 2.21v4.07h-1.32l-.12-.76h-.05c-.3.27-.63.48-.98.66s-.73.27-1.14.27c-.61 0-1.1-.19-1.48-.56-.38-.36-.57-.85-.57-1.46zm1.57-.12c0 .3.09.53.27.67.19.14.42.21.71.21.28 0 .54-.07.77-.2s.48-.31.73-.56v-1.54c-.47.06-.86.13-1.18.23-.31.09-.57.19-.76.31s-.33.25-.41.4c-.09.15-.13.31-.13.48zm6.29-3.63h-.98v-1.2l1.06-.07.2-1.88h1.34v1.88h1.75v1.27h-1.75v3.28c0 .8.32 1.2.97 1.2.12 0 .24-.01.37-.04.12-.03.24-.07.34-.11l.28 1.19c-.19.06-.4.12-.64.17-.23.05-.49.08-.76.08-.4 0-.74-.06-1.02-.18-.27-.13-.49-.3-.67-.52-.17-.21-.3-.48-.37-.78-.08-.3-.12-.64-.12-1.01zm4.36 2.17c0-.56.09-1.06.27-1.51s.41-.83.71-1.14c.29-.3.63-.54 1.01-.71.39-.17.78-.25 1.18-.25.47 0 .88.08 1.23.24.36.16.65.38.89.67s.42.63.54 1.03c.12.41.18.84.18 1.32 0 .32-.02.57-.07.76h-4.37c.08.62.29 1.1.65 1.44.36.33.82.5 1.38.5.3 0 .58-.04.84-.13.25-.09.51-.21.76-.37l.54 1.01c-.32.21-.69.39-1.09.53s-.82.21-1.26.21c-.47 0-.92-.08-1.33-.25-.41-.16-.77-.4-1.08-.7-.3-.31-.54-.69-.72-1.13-.17-.44-.26-.95-.26-1.52zm4.61-.62c0-.55-.11-.98-.34-1.28-.23-.31-.58-.47-1.06-.47-.41 0-.77.15-1.08.45-.31.29-.5.73-.57 1.3zm3.01 2.23c.31.24.61.43.92.57.3.13.63.2.98.2.38 0 .65-.08.83-.23s.27-.35.27-.6c0-.14-.05-.26-.13-.37-.08-.1-.2-.2-.34-.28-.14-.09-.29-.16-.47-.23l-.53-.22c-.23-.09-.46-.18-.69-.3-.23-.11-.44-.24-.62-.4s-.33-.35-.45-.55c-.12-.21-.18-.46-.18-.75 0-.61.23-1.1.68-1.49.44-.38 1.06-.57 1.83-.57.48 0 .91.08 1.29.25s.71.36.99.57l-.74.98c-.24-.17-.49-.32-.73-.42-.25-.11-.51-.16-.78-.16-.35 0-.6.07-.76.21-.17.15-.25.33-.25.54 0 .14.04.26.12.36s.18.18.31.26c.14.07.29.14.46.21l.54.19c.23.09.47.18.7.29s.44.24.64.4c.19.16.34.35.46.58.11.23.17.5.17.82 0 .3-.06.58-.17.83-.12.26-.29.48-.51.68-.23.19-.51.34-.84.45-.34.11-.72.17-1.15.17-.48 0-.95-.09-1.41-.27-.46-.19-.86-.41-1.2-.68z" fill="#535353"/></g></svg>\"><\/a><\/p>\n<div>\n<h3 id=\"citeas\">Cite this article<\/h3>\n<p>Cattaneo, C.M., Battaglia, T., Urbanus, J. <i>et al.<\/i> Identification of patient-specific CD4<sup>+<\/sup> and CD8<sup>+<\/sup> T cell neoantigens through HLA-unbiased genetic screens.<br \/>\n                    <i>Nat Biotechnol<\/i>  (2023). https:\/\/doi.org\/10.1038\/s41587-022-01547-0<\/p>\n<p><a data-test=\"citation-link\" data-track=\"click\" data-track-action=\"download article citation\" data-track-label=\"link\" data-track-external rel=\"nofollow\" href=\"https:\/\/citation-needed.springer.com\/v2\/references\/10.1038\/s41587-022-01547-0?format=refman&#038;flavour=citation\">Download citation<\/a><\/p>\n<ul data-test=\"publication-history\">\n<li>\n<p>Received<span>: <\/span><span><time datetime=\"2021-02-24\">24 February 2021<\/time><\/span><\/p>\n<\/li>\n<li>\n<p>Accepted<span>: <\/span><span><time datetime=\"2022-10-06\">06 October 2022<\/time><\/span><\/p>\n<\/li>\n<li>\n<p>Published<span>: <\/span><span><time datetime=\"2023-01-02\">02 January 2023<\/time><\/span><\/p>\n<\/li>\n<li>\n<p><abbr title=\"Digital Object Identifier\">DOI<\/abbr><span>: <\/span><span>https:\/\/doi.org\/10.1038\/s41587-022-01547-0<\/span><\/p>\n<\/li>\n<\/ul>\n<\/div>\n<\/div>\n<\/div><\/div>\n<p><a href=\"https:\/\/www.nature.com\/articles\/s41587-022-01547-0\" class=\"button purchase\" rel=\"nofollow noopener\" target=\"_blank\">Read More<\/a><br \/>\n Chiara M. Cattaneo<\/p>\n","protected":false},"excerpt":{"rendered":"<p>MainCancer immunotherapies that aim to harness the antitumor activity of T cells have shown impressive clinical results in a subset of patients with cancer, and accumulating evidence suggests that the efficacy of these therapies is driven largely by T cells that recognize cancer neoantigens that result from patient-specific nonsynonymous tumor mutations1. Consequently, there is a<\/p>\n","protected":false},"author":1,"featured_media":593613,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[93999,117563,536],"tags":[],"class_list":{"0":"post-593612","1":"post","2":"type-post","3":"status-publish","4":"format-standard","5":"has-post-thumbnail","7":"category-identification","8":"category-patient-specific","9":"category-science-nature"},"aioseo_notices":[],"_links":{"self":[{"href":"https:\/\/newsycanuse.com\/index.php\/wp-json\/wp\/v2\/posts\/593612","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/newsycanuse.com\/index.php\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/newsycanuse.com\/index.php\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/newsycanuse.com\/index.php\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/newsycanuse.com\/index.php\/wp-json\/wp\/v2\/comments?post=593612"}],"version-history":[{"count":0,"href":"https:\/\/newsycanuse.com\/index.php\/wp-json\/wp\/v2\/posts\/593612\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/newsycanuse.com\/index.php\/wp-json\/wp\/v2\/media\/593613"}],"wp:attachment":[{"href":"https:\/\/newsycanuse.com\/index.php\/wp-json\/wp\/v2\/media?parent=593612"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/newsycanuse.com\/index.php\/wp-json\/wp\/v2\/categories?post=593612"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/newsycanuse.com\/index.php\/wp-json\/wp\/v2\/tags?post=593612"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}