Machine Learning Links T-cell Function and Spatial Localization to Neoadjuvant Immunotherapy and Clinical Outcome in Pancreatic Cancer

被引:5
作者
Blise, Katie E. [1 ,2 ]
Sivagnanam, Shamilene [2 ,3 ]
Betts, Courtney B. [2 ,3 ,4 ]
Betre, Konjit [3 ]
Kirchberger, Nell [3 ]
Tate, Benjamin J. [2 ,5 ]
Furth, Emma E. [6 ,7 ]
Costa, Andressa Dias [8 ]
Nowak, Jonathan A. [9 ,10 ]
Wolpin, Brian M. [8 ]
Vonderheide, Robert H. [7 ,11 ]
Goecks, Jeremy [1 ,2 ,12 ,13 ]
Coussens, Lisa M. [2 ,3 ]
Byrne, Katelyn T. [2 ,3 ,14 ]
机构
[1] Oregon Hlth & Sci Univ, Dept Biomed Engn, Portland, OR 97239 USA
[2] Oregon Hlth & Sci Univ, Knight Canc Inst, Portland, OR 97239 USA
[3] Oregon Hlth & Sci Univ, Dept Cell Dev & Canc Biol, Portland, OR 97239 USA
[4] Akoya Biosci, Marlborough, MA USA
[5] Oregon Hlth & Sci Univ, Immune Monitoring & Canc Om Serv, Portland, OR USA
[6] Hosp Univ Penn, Dept Pathol & Lab Med, Philadelphia, PA USA
[7] Univ Penn, Abramson Canc Ctr, Perelman Sch Med, Philadelphia, PA USA
[8] Dana Farber Canc Inst, Harvard Med Sch, Dept Med Oncol, Boston, MA USA
[9] Brigham & Womens Hosp, Dept Pathol, Boston, MA USA
[10] Harvard Med Sch, Boston, MA USA
[11] Univ Penn, Parker Inst Canc Immunotherapy, Perelman Sch Med, Philadelphia, PA USA
[12] H Lee Moffitt Canc Ctr & Res Inst, Dept Machine Learning, Tampa, FL 33612 USA
[13] H Lee Moffitt Canc Ctr & Res Inst, Dept Biostat & Bioinformat, Tampa, FL 33612 USA
[14] Dept Cell Dev & Canc Biol, RLSB 6N032 Mail Code CL6C,2730 S Moody Ave, Portland, OR 97201 USA
关键词
TUMOR MICROENVIRONMENT; IMMUNITY; PD-1;
D O I
10.1158/2326-6066.CIR-23-0873
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
PDAC is largely refractory to immunotherapy. The authors use machine learning models to disentangle the complex PDAC TME, revealing effector T cells are increased after neoadjuvant anti-CD40 immunotherapy, including in immune aggregate sites that correspond with improved DFS. Tumor molecular data sets are becoming increasingly complex, making it nearly impossible for humans alone to effectively analyze them. Here, we demonstrate the power of using machine learning (ML) to analyze a single-cell, spatial, and highly multiplexed proteomic data set from human pancreatic cancer and reveal underlying biological mechanisms that may contribute to clinical outcomes. We designed a multiplex immunohistochemistry antibody panel to compare T-cell functionality and spatial localization in resected tumors from treatment-na & iuml;ve patients with localized pancreatic ductal adenocarcinoma (PDAC) with resected tumors from a second cohort of patients treated with neoadjuvant agonistic CD40 (anti-CD40) monoclonal antibody therapy. In total, nearly 2.5 million cells from 306 tissue regions collected from 29 patients across both cohorts were assayed, and over 1,000 tumor microenvironment (TME) features were quantified. We then trained ML models to accurately predict anti-CD40 treatment status and disease-free survival (DFS) following anti-CD40 therapy based on TME features. Through downstream interpretation of the ML models' predictions, we found anti-CD40 therapy reduced canonical aspects of T-cell exhaustion within the TME, as compared with treatment-na & iuml;ve TMEs. Using automated clustering approaches, we found improved DFS following anti-CD40 therapy correlated with an increased presence of CD44+CD4+ Th1 cells located specifically within cellular neighborhoods characterized by increased T-cell proliferation, antigen experience, and cytotoxicity in immune aggregates. Overall, our results demonstrate the utility of ML in molecular cancer immunology applications, highlight the impact of anti-CD40 therapy on T cells within the TME, and identify potential candidate biomarkers of DFS for anti-CD40-treated patients with PDAC.
引用
收藏
页码:544 / 558
页数:15
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