Literature DB >> 27923825

Rational Selection of Syngeneic Preclinical Tumor Models for Immunotherapeutic Drug Discovery.

Suzanne I S Mosely1, John E Prime2, Richard C A Sainson2, Jens-Oliver Koopmann2, Dennis Y Q Wang3, Danielle M Greenawalt4, Miika J Ahdesmaki3, Rebecca Leyland2, Stefanie Mullins2, Luciano Pacelli2, Danielle Marcus2, Judith Anderton2, Amanda Watkins2, Jane Coates Ulrichsen2, Philip Brohawn5, Brandon W Higgs5, Matthew McCourt2, Hazel Jones2, James A Harper2, Michelle Morrow2, Viia Valge-Archer2, Ross Stewart2, Simon J Dovedi2, Robert W Wilkinson2.   

Abstract

Murine syngeneic tumor models are critical to novel immuno-based therapy development, but the molecular and immunologic features of these models are still not clearly defined. The translational relevance of differences between the models is not fully understood, impeding appropriate preclinical model selection for target validation, and ultimately hindering drug development. Across a panel of commonly used murine syngeneic tumor models, we showed variable responsiveness to immunotherapies. We used array comparative genomic hybridization, whole-exome sequencing, exon microarray analysis, and flow cytometry to extensively characterize these models, which revealed striking differences that may underlie these contrasting response profiles. We identified strong differential gene expression in immune-related pathways and changes in immune cell-specific genes that suggested differences in tumor immune infiltrates between models. Further investigation using flow cytometry showed differences in both the composition and magnitude of the tumor immune infiltrates, identifying models that harbor "inflamed" and "non-inflamed" tumor immune infiltrate phenotypes. We also found that immunosuppressive cell types predominated in syngeneic mouse tumor models that did not respond to immune-checkpoint blockade, whereas cytotoxic effector immune cells were enriched in responsive models. A cytotoxic cell-rich tumor immune infiltrate has been correlated with increased efficacy of immunotherapies in the clinic, and these differences could underlie the varying response profiles to immunotherapy between the syngeneic models. This characterization highlighted the importance of extensive profiling and will enable investigators to select appropriate models to interrogate the activity of immunotherapies as well as combinations with targeted therapies in vivo Cancer Immunol Res; 5(1); 29-41. ©2016 AACR. ©2016 American Association for Cancer Research.

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Year:  2016        PMID: 27923825     DOI: 10.1158/2326-6066.CIR-16-0114

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


  143 in total

1.  Blockade of only TGF-β 1 and 2 is sufficient to enhance the efficacy of vaccine and PD-1 checkpoint blockade immunotherapy.

Authors:  Masaki Terabe; Faith C Robertson; Katharine Clark; Emma De Ravin; Anja Bloom; David J Venzon; Shingo Kato; Amer Mirza; Jay A Berzofsky
Journal:  Oncoimmunology       Date:  2017-03-31       Impact factor: 8.110

2.  Imaging of Activated T Cells as an Early Predictor of Immune Response to Anti-PD-1 Therapy.

Authors:  Jelena Levi; Tina Lam; Samuel R Goth; Shahriar Yaghoubi; Jennifer Bates; Gang Ren; Salma Jivan; Tony L Huynh; Joseph E Blecha; Roli Khattri; Karl F Schmidt; Dominique Jennings; Henry VanBrocklin
Journal:  Cancer Res       Date:  2019-05-07       Impact factor: 12.701

3.  Functionally significant metabolic differences between B and T lymphocyte lineages.

Authors:  Jasneet Kaur Khalsa; Amanpreet Singh Chawla; Savit B Prabhu; Mukti Vats; Atika Dhar; Gagan Dev; Nabanita Das; Sandip Mukherjee; Shalini Tanwar; Hridesh Banerjee; Jeannine Marie Durdik; Vineeta Bal; Anna George; Satyajit Rath; Gopalakrishnan Aneeshkumar Arimbasseri
Journal:  Immunology       Date:  2019-08-26       Impact factor: 7.397

4.  Preclinical efficacy of immune-checkpoint monotherapy does not recapitulate corresponding biomarkers-based clinical predictions in glioblastoma.

Authors:  Abhishek D Garg; Lien Vandenberk; Matthias Van Woensel; Jochen Belmans; Marco Schaaf; Louis Boon; Steven De Vleeschouwer; Patrizia Agostinis
Journal:  Oncoimmunology       Date:  2017-03-03       Impact factor: 8.110

5.  Cutting Edge: Elevated Leptin during Diet-Induced Obesity Reduces the Efficacy of Tumor Immunotherapy.

Authors:  Katherine A Murphy; Britnie R James; Frances V Sjaastad; Tamara A Kucaba; Hyunjoon Kim; Erik L Brincks; Streamson C Chua; Andrew Wilber; Thomas S Griffith
Journal:  J Immunol       Date:  2018-08-22       Impact factor: 5.422

6.  Cross-Link-Functionalized Nanoparticles for Rapid Excretion in Nanotheranostic Applications.

Authors:  Zhuoran Ma; Feifei Wang; Yeteng Zhong; Felix Salazar; Jiachen Li; Mingxi Zhang; Fuqiang Ren; Anna M Wu; Hongjie Dai
Journal:  Angew Chem Weinheim Bergstr Ger       Date:  2020-07-17

7.  Multipanel mass cytometry reveals anti-PD-1 therapy-mediated B and T cell compartment remodeling in tumor-draining lymph nodes.

Authors:  Won Jin Ho; Mark Yarchoan; Soren Charmsaz; Rebecca M Munday; Ludmila Danilova; Marcelo B Sztein; Elana J Fertig; Elizabeth M Jaffee
Journal:  JCI Insight       Date:  2020-01-30

8.  A Syngeneic ErbB2 Mammary Cancer Model for Preclinical Immunotherapy Trials.

Authors:  Zsófia Pénzváltó; Jane Qian Chen; Clifford G Tepper; Ryan R Davis; Matthew T Silvestrini; Maxine Umeh-Garcia; Colleen Sweeney; Alexander D Borowsky
Journal:  J Mammary Gland Biol Neoplasia       Date:  2019-02-27       Impact factor: 2.673

9.  Differential Regulation of T-cell mediated anti-tumor memory and cross-protection against the same tumor in lungs versus skin.

Authors:  Jessica J O'Konek; Elena Ambrosino; Anja C Bloom; Lise Pasquet; Chandirasegaran Massilamany; Zheng Xia; Masaki Terabe; Jay A Berzofsky
Journal:  Oncoimmunology       Date:  2018-04-09       Impact factor: 8.110

Review 10.  Circulating tumor cells and CDX models as a tool for preclinical drug development.

Authors:  Alice Lallo; Maximilian W Schenk; Kristopher K Frese; Fiona Blackhall; Caroline Dive
Journal:  Transl Lung Cancer Res       Date:  2017-08
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