Literature DB >> 33468555

Rethinking immune checkpoint blockade: 'Beyond the T cell'.

Xiuting Liu1, Graham D Hogg1, David G DeNardo2,3.   

Abstract

The clinical success of immune checkpoint inhibitors has highlighted the central role of the immune system in cancer control. Immune checkpoint inhibitors can reinvigorate anti-cancer immunity and are now the standard of care in a number of malignancies. However, research on immune checkpoint blockade has largely been framed with the central dogma that checkpoint therapies intrinsically target the T cell, triggering the tumoricidal potential of the adaptive immune system. Although T cells undoubtedly remain a critical piece of the story, mounting evidence, reviewed herein, indicates that much of the efficacy of checkpoint therapies may be attributable to the innate immune system. Emerging research suggests that T cell-directed checkpoint antibodies such as anti-programmed cell death protein-1 (PD-1) or programmed death-ligand-1 (PD-L1) can impact innate immunity by both direct and indirect pathways, which may ultimately shape clinical efficacy. However, the mechanisms and impacts of these activities have yet to be fully elucidated, and checkpoint therapies have potentially beneficial and detrimental effects on innate antitumor immunity. Further research into the role of innate subsets during checkpoint blockade may be critical for developing combination therapies to help overcome checkpoint resistance. The potential of checkpoint therapies to amplify innate antitumor immunity represents a promising new field that can be translated into innovative immunotherapies for patients fighting refractory malignancies. © Author(s) (or their employer(s)) 2021. Re-use permitted under CC BY. Published by BMJ.

Entities:  

Keywords:  CTLA-4 Antigen; immunity; immunotherapy; innate; programmed cell death 1 receptor; tumor microenvironment

Mesh:

Substances:

Year:  2021        PMID: 33468555      PMCID: PMC7817791          DOI: 10.1136/jitc-2020-001460

Source DB:  PubMed          Journal:  J Immunother Cancer        ISSN: 2051-1426            Impact factor:   13.751


  96 in total

1.  Interaction of Tim-3 and Tim-3 ligand regulates T helper type 1 responses and induction of peripheral tolerance.

Authors:  Catherine A Sabatos; Sumone Chakravarti; Eugene Cha; Anna Schubart; Alberto Sánchez-Fueyo; Xin Xiao Zheng; Anthony J Coyle; Terry B Strom; Gordon J Freeman; Vijay K Kuchroo
Journal:  Nat Immunol       Date:  2003-10-12       Impact factor: 25.606

2.  Contribution of NK cells to immunotherapy mediated by PD-1/PD-L1 blockade.

Authors:  Joy Hsu; Jonathan J Hodgins; Malvika Marathe; Chris J Nicolai; Marie-Claude Bourgeois-Daigneault; Troy N Trevino; Camillia S Azimi; Amit K Scheer; Haley E Randolph; Thornton W Thompson; Lily Zhang; Alexandre Iannello; Nikhita Mathur; Karen E Jardine; Georgia A Kirn; John C Bell; Michael W McBurney; David H Raulet; Michele Ardolino
Journal:  J Clin Invest       Date:  2018-09-10       Impact factor: 14.808

3.  Tumor-infiltrating programmed death receptor-1+ dendritic cells mediate immune suppression in ovarian cancer.

Authors:  James Krempski; Lavakumar Karyampudi; Marshall D Behrens; Courtney L Erskine; Lynn Hartmann; Haidong Dong; Ellen L Goode; Kimberly R Kalli; Keith L Knutson
Journal:  J Immunol       Date:  2011-05-06       Impact factor: 5.422

4.  Development of lupus-like autoimmune diseases by disruption of the PD-1 gene encoding an ITIM motif-carrying immunoreceptor.

Authors:  H Nishimura; M Nose; H Hiai; N Minato; T Honjo
Journal:  Immunity       Date:  1999-08       Impact factor: 31.745

5.  Identification of a subset of human natural killer cells expressing high levels of programmed death 1: A phenotypic and functional characterization.

Authors:  Silvia Pesce; Marco Greppi; Giovanna Tabellini; Fabio Rampinelli; Silvia Parolini; Daniel Olive; Lorenzo Moretta; Alessandro Moretta; Emanuela Marcenaro
Journal:  J Allergy Clin Immunol       Date:  2016-05-27       Impact factor: 10.793

Review 6.  NK cell self tolerance, responsiveness and missing self recognition.

Authors:  Nataliya Shifrin; David H Raulet; Michele Ardolino
Journal:  Semin Immunol       Date:  2014-03-12       Impact factor: 11.130

7.  A tumor-intrinsic PD-L1/NLRP3 inflammasome signaling pathway drives resistance to anti-PD-1 immunotherapy.

Authors:  Balamayoora Theivanthiran; Kathy S Evans; Nicholas C DeVito; Michael Plebanek; Michael Sturdivant; Luke P Wachsmuth; April Ks Salama; Yubin Kang; David Hsu; Justin M Balko; Douglas B Johnson; Mark Starr; Andrew B Nixon; Alisha Holtzhausen; Brent A Hanks
Journal:  J Clin Invest       Date:  2020-05-01       Impact factor: 14.808

8.  Targeted deletion of PD-1 in myeloid cells induces antitumor immunity.

Authors:  Laura Strauss; Mohamed A A Mahmoud; Jessica D Weaver; Natalia M Tijaro-Ovalle; Anthos Christofides; Qi Wang; Rinku Pal; Min Yuan; John Asara; Nikolaos Patsoukis; Vassiliki A Boussiotis
Journal:  Sci Immunol       Date:  2020-01-03

9.  PD-1 expression by tumour-associated macrophages inhibits phagocytosis and tumour immunity.

Authors:  Sydney R Gordon; Roy L Maute; Ben W Dulken; Gregor Hutter; Benson M George; Melissa N McCracken; Rohit Gupta; Jonathan M Tsai; Rahul Sinha; Daniel Corey; Aaron M Ring; Andrew J Connolly; Irving L Weissman
Journal:  Nature       Date:  2017-05-17       Impact factor: 49.962

10.  CXCR2 Inhibition Profoundly Suppresses Metastases and Augments Immunotherapy in Pancreatic Ductal Adenocarcinoma.

Authors:  Colin W Steele; Saadia A Karim; Joshua D G Leach; Peter Bailey; Rosanna Upstill-Goddard; Loveena Rishi; Mona Foth; Sheila Bryson; Karen McDaid; Zena Wilson; Catherine Eberlein; Juliana B Candido; Mairi Clarke; Colin Nixon; John Connelly; Nigel Jamieson; C Ross Carter; Frances Balkwill; David K Chang; T R Jeffry Evans; Douglas Strathdee; Andrew V Biankin; Robert J B Nibbs; Simon T Barry; Owen J Sansom; Jennifer P Morton
Journal:  Cancer Cell       Date:  2016-06-02       Impact factor: 38.585

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  24 in total

Review 1.  Myeloid cell-targeted therapies for solid tumours.

Authors:  Sangeeta Goswami; Swetha Anandhan; Deblina Raychaudhuri; Padmanee Sharma
Journal:  Nat Rev Immunol       Date:  2022-06-13       Impact factor: 53.106

Review 2.  Dual Effect of Immune Cells within Tumour Microenvironment: Pro- and Anti-Tumour Effects and Their Triggers.

Authors:  Alicia Cristina Peña-Romero; Esteban Orenes-Piñero
Journal:  Cancers (Basel)       Date:  2022-03-25       Impact factor: 6.639

Review 3.  Advances in plant-derived natural products for antitumor immunotherapy.

Authors:  Yi Yang; Qinying Liu; Xianai Shi; Qiuhong Zheng; Li Chen; Yang Sun
Journal:  Arch Pharm Res       Date:  2021-11-09       Impact factor: 4.946

4.  Direct and indirect engagement of dendritic cell function by antibodies developed for cancer therapy.

Authors:  Diana Corogeanu; Sandra S Diebold
Journal:  Clin Exp Immunol       Date:  2022-07-22       Impact factor: 5.732

5.  High Prolyl 4-Hydroxylase Subunit Alpha 3 Expression as an Independent Prognostic Biomarker and Correlated With Immune Infiltration in Gastric Cancer.

Authors:  Xiaoji Niu; Liman Ren; Shoumei Wang; Dong Gao; Mingyue Ma; Aiyan Hu; Hongjun Qi; Shuhui Zhang
Journal:  Front Genet       Date:  2022-07-01       Impact factor: 4.772

6.  The Radiosensitivity Index Gene Signature Identifies Distinct Tumor Immune Microenvironment Characteristics Associated With Susceptibility to Radiation Therapy.

Authors:  G Daniel Grass; Juan C L Alfonso; Eric Welsh; Kamran A Ahmed; Jamie K Teer; Shari Pilon-Thomas; Louis B Harrison; John L Cleveland; James J Mulé; Steven A Eschrich; Heiko Enderling; Javier F Torres-Roca
Journal:  Int J Radiat Oncol Biol Phys       Date:  2022-03-12       Impact factor: 8.013

Review 7.  T-Cell Dysfunction as a Limitation of Adoptive Immunotherapy: Current Concepts and Mitigation Strategies.

Authors:  Valérie Janelle; Jean-Sébastien Delisle
Journal:  Cancers (Basel)       Date:  2021-02-03       Impact factor: 6.639

Review 8.  What Happens to the Immune Microenvironment After PD-1 Inhibitor Therapy?

Authors:  Qingyi Wang; Bin Xie; Shuang Liu; Ying Shi; Yongguang Tao; Desheng Xiao; Wenxiang Wang
Journal:  Front Immunol       Date:  2021-12-23       Impact factor: 7.561

Review 9.  Bi-specific and Tri-specific NK Cell Engagers: The New Avenue of Targeted NK Cell Immunotherapy.

Authors:  Shee Kwan Phung; Jeffrey S Miller; Martin Felices
Journal:  Mol Diagn Ther       Date:  2021-07-29       Impact factor: 4.074

10.  Blockade of the co-inhibitory molecule PD-1 unleashes ILC2-dependent antitumor immunity in melanoma.

Authors:  Angela Pizzolla; Yang Liao; Soroor Hediyeh-Zadeh; Melissa J Davis; Wei Shi; Paul J Neeson; Nicolas Jacquelot; Cyril Seillet; Minyu Wang; Sharon Grisaru-Tal; Cynthia Louis; Qiutong Huang; Jaring Schreuder; Fernando Souza-Fonseca-Guimaraes; Carolyn A de Graaf; Kevin Thia; Sean Macdonald; Mary Camilleri; Kylie Luong; Shengbo Zhang; Michael Chopin; Tristan Molden-Hauer; Stephen L Nutt; Viktor Umansky; Bogoljub Ciric; Joanna R Groom; Paul S Foster; Philip M Hansbro; Andrew N J McKenzie; Daniel H D Gray; Andreas Behren; Jonathan Cebon; Eric Vivier; Ian P Wicks; Joseph A Trapani; Ariel Munitz; Gabrielle T Belz
Journal:  Nat Immunol       Date:  2021-06-07       Impact factor: 25.606

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