Literature DB >> 34145076

Site-Dependent Immune Escape Due to Impaired Dendritic Cell Cross-Priming.

Mark S Diamond1,2, Jeffrey H Lin2,3, Robert H Vonderheide4,2.   

Abstract

T-cell recognition of tumor neoantigens is critical for cancer immune surveillance and the efficacy of immunotherapy. Tumors can evade host immunity by altering their antigenicity or orchestrating an immunosuppressive microenvironment, leading to outgrowth of poorly immunogenic tumors through the well-established process of cancer immunoediting. Whether cancer immune surveillance and immunoediting depend on the tissue site of origin, however, is poorly understood. Herein, we studied T-cell-mediated surveillance of antigenic, clonal murine pancreatic adenocarcinoma cells expressing neoantigen. Whereas such tumors are robustly eliminated after subcutaneous or intravenous challenge, we observed selective immune escape within the pancreas and peritoneum. Tumor outgrowth occurred in the absence of immunoediting, and antitumor immunity could not be rescued by PD-1 or CTLA-4 checkpoint blockade. Instead, tumor escape was associated with diminished CD8+ T-cell priming by type I conventional dendritic cells (cDC1). Enhancing cDC1 cross-presentation by CD40 agonist treatment restored immunologic control by promoting T-cell priming and broadening T-cell responses through epitope spread. These findings demonstrate that immune escape of highly antigenic tumors can occur without immunoediting in a tissue-restricted manner and highlight barriers to cDC1-mediated T-cell priming imposed by certain microenvironments that must be addressed for successful combination immunotherapies. ©2021 American Association for Cancer Research.

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Year:  2021        PMID: 34145076      PMCID: PMC8655819          DOI: 10.1158/2326-6066.CIR-20-0785

Source DB:  PubMed          Journal:  Cancer Immunol Res        ISSN: 2326-6066            Impact factor:   11.151


  58 in total

1.  Broad and Largely Concordant Molecular Changes Characterize Tolerogenic and Immunogenic Dendritic Cell Maturation in Thymus and Periphery.

Authors:  Laurence Ardouin; Hervé Luche; Rabie Chelbi; Sabrina Carpentier; Alaa Shawket; Frédéric Montanana Sanchis; Camille Santa Maria; Pierre Grenot; Yannick Alexandre; Claude Grégoire; Anissa Fries; Thien-Phong Vu Manh; Samira Tamoutounour; Karine Crozat; Elena Tomasello; Audrey Jorquera; Even Fossum; Bjarne Bogen; Hiroaki Azukizawa; Marc Bajenoff; Sandrine Henri; Marc Dalod; Bernard Malissen
Journal:  Immunity       Date:  2016-08-16       Impact factor: 31.745

2.  Tumor-Residing Batf3 Dendritic Cells Are Required for Effector T Cell Trafficking and Adoptive T Cell Therapy.

Authors:  Stefani Spranger; Daisy Dai; Brendan Horton; Thomas F Gajewski
Journal:  Cancer Cell       Date:  2017-05-08       Impact factor: 31.743

3.  IL35-Producing B Cells Promote the Development of Pancreatic Neoplasia.

Authors:  Yuliya Pylayeva-Gupta; Shipra Das; Jesse S Handler; Cristina H Hajdu; Maryaline Coffre; Sergei B Koralov; Dafna Bar-Sagi
Journal:  Cancer Discov       Date:  2015-12-29       Impact factor: 39.397

4.  Evolution of Neoantigen Landscape during Immune Checkpoint Blockade in Non-Small Cell Lung Cancer.

Authors:  Valsamo Anagnostou; Kellie N Smith; Patrick M Forde; Noushin Niknafs; Rohit Bhattacharya; James White; Theresa Zhang; Vilmos Adleff; Jillian Phallen; Neha Wali; Carolyn Hruban; Violeta B Guthrie; Kristen Rodgers; Jarushka Naidoo; Hyunseok Kang; William Sharfman; Christos Georgiades; Franco Verde; Peter Illei; Qing Kay Li; Edward Gabrielson; Malcolm V Brock; Cynthia A Zahnow; Stephen B Baylin; Robert B Scharpf; Julie R Brahmer; Rachel Karchin; Drew M Pardoll; Victor E Velculescu
Journal:  Cancer Discov       Date:  2016-12-28       Impact factor: 39.397

5.  Pan-tumor genomic biomarkers for PD-1 checkpoint blockade-based immunotherapy.

Authors:  Razvan Cristescu; Robin Mogg; Mark Ayers; Andrew Albright; Erin Murphy; Jennifer Yearley; Xinwei Sher; Xiao Qiao Liu; Hongchao Lu; Michael Nebozhyn; Chunsheng Zhang; Jared K Lunceford; Andrew Joe; Jonathan Cheng; Andrea L Webber; Nageatte Ibrahim; Elizabeth R Plimack; Patrick A Ott; Tanguy Y Seiwert; Antoni Ribas; Terrill K McClanahan; Joanne E Tomassini; Andrey Loboda; David Kaufman
Journal:  Science       Date:  2018-10-12       Impact factor: 47.728

Review 6.  Mechanism-driven biomarkers to guide immune checkpoint blockade in cancer therapy.

Authors:  Suzanne L Topalian; Janis M Taube; Robert A Anders; Drew M Pardoll
Journal:  Nat Rev Cancer       Date:  2016-04-15       Impact factor: 60.716

7.  Tumor Cell-Intrinsic Factors Underlie Heterogeneity of Immune Cell Infiltration and Response to Immunotherapy.

Authors:  Jinyang Li; Katelyn T Byrne; Fangxue Yan; Taiji Yamazoe; Zeyu Chen; Timour Baslan; Lee P Richman; Jeffrey H Lin; Yu H Sun; Andrew J Rech; David Balli; Ceire A Hay; Yogev Sela; Allyson J Merrell; Shannon M Liudahl; Naomi Gordon; Robert J Norgard; Salina Yuan; Sixiang Yu; Timothy Chao; Shuai Ye; T S Karin Eisinger-Mathason; Robert B Faryabi; John W Tobias; Scott W Lowe; Lisa M Coussens; E John Wherry; Robert H Vonderheide; Ben Z Stanger
Journal:  Immunity       Date:  2018-06-26       Impact factor: 43.474

8.  Batf3 deficiency reveals a critical role for CD8alpha+ dendritic cells in cytotoxic T cell immunity.

Authors:  Kai Hildner; Brian T Edelson; Whitney E Purtha; Mark Diamond; Hirokazu Matsushita; Masako Kohyama; Boris Calderon; Barbara U Schraml; Emil R Unanue; Michael S Diamond; Robert D Schreiber; Theresa L Murphy; Kenneth M Murphy
Journal:  Science       Date:  2008-11-14       Impact factor: 47.728

9.  Targeting CXCL12 from FAP-expressing carcinoma-associated fibroblasts synergizes with anti-PD-L1 immunotherapy in pancreatic cancer.

Authors:  Christine Feig; James O Jones; Matthew Kraman; Richard J B Wells; Andrew Deonarine; Derek S Chan; Claire M Connell; Edward W Roberts; Qi Zhao; Otavia L Caballero; Sarah A Teichmann; Tobias Janowitz; Duncan I Jodrell; David A Tuveson; Douglas T Fearon
Journal:  Proc Natl Acad Sci U S A       Date:  2013-11-25       Impact factor: 11.205

10.  cDC1 prime and are licensed by CD4+ T cells to induce anti-tumour immunity.

Authors:  Stephen T Ferris; Vivek Durai; Renee Wu; Derek J Theisen; Jeffrey P Ward; Michael D Bern; Jesse T Davidson; Prachi Bagadia; Tiantian Liu; Carlos G Briseño; Lijin Li; William E Gillanders; Gregory F Wu; Wayne M Yokoyama; Theresa L Murphy; Robert D Schreiber; Kenneth M Murphy
Journal:  Nature       Date:  2020-08-12       Impact factor: 49.962

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  2 in total

1.  Sotigalimab and/or nivolumab with chemotherapy in first-line metastatic pancreatic cancer: clinical and immunologic analyses from the randomized phase 2 PRINCE trial.

Authors:  Lacey J Padrón; Deena M Maurer; Mark H O'Hara; Eileen M O'Reilly; Robert A Wolff; Zev A Wainberg; Andrew H Ko; George Fisher; Osama Rahma; Jaclyn P Lyman; Christopher R Cabanski; Jia Xin Yu; Shannon M Pfeiffer; Marko Spasic; Jingying Xu; Pier Federico Gherardini; Joyson Karakunnel; Rosemarie Mick; Cécile Alanio; Katelyn T Byrne; Travis J Hollmann; Jonni S Moore; Derek D Jones; Marco Tognetti; Richard O Chen; Xiaodong Yang; Lisa Salvador; E John Wherry; Ute Dugan; Jill O'Donnell-Tormey; Lisa H Butterfield; Vanessa M Hubbard-Lucey; Ramy Ibrahim; Justin Fairchild; Samantha Bucktrout; Theresa M LaVallee; Robert H Vonderheide
Journal:  Nat Med       Date:  2022-06-03       Impact factor: 87.241

Review 2.  Engineering neoantigen vaccines to improve cancer personalized immunotherapy.

Authors:  Zaoqu Liu; Jinxiang Lv; Qin Dang; Long Liu; Siyuan Weng; Libo Wang; Zhaokai Zhou; Ying Kong; Huanyun Li; Yilin Han; Xinwei Han
Journal:  Int J Biol Sci       Date:  2022-09-01       Impact factor: 10.750

  2 in total

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