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PMID: 28698201 Published · ppublish English Journal Article

Entinostat Neutralizes Myeloid-Derived Suppressor Cells and Enhances the Antitumor Effect of PD-1 Inhibition in Murine Models of Lung and Renal Cell Carcinoma.

Orillion A, Hashimoto A, Damayanti N, Shen L, Adelaiye-Ogala R, Arisa S, Chintala S, Ordentlich P, Kao C, Elzey B, Gabrilovich D, Pili R

Abstract

Recent advances in immunotherapy highlight the antitumor effects of immune checkpoint inhibition despite a relatively limited subset of patients receiving clinical benefit. The selective class I histone deacetylase inhibitor entinostat has been reported to have immunomodulatory activity including targeting of immune suppressor cells in the tumor microenvironment. Thus, we decided to assess whether entinostat could enhance anti-PD-1 treatment and investigate those alterations in the immunosuppressive tumor microenvironment that contribute to the combined antitumor activity. We utilized syngeneic mouse models of lung (LLC) and renal cell (RENCA) carcinoma and assessed immune correlates, tumor growth, and survival following treatment with entinostat (5 or 10 mg/kg, p.o.) and a PD-1 inhibitor (10 and 20 mg/kg, s.c.). Entinostat enhanced the antitumor effect of PD-1 inhibition in two syngeneic mouse tumor models by reducing tumor growth and increasing survival. Entinostat inhibited the immunosuppressive function of both polymorphonuclear (PMN)- and monocytic-myeloid derived suppressor cell (M-MDSC) populations. Analysis of MDSC response to entinostat revealed significantly reduced arginase-1, iNOS, and COX-2 levels, suggesting potential mechanisms for the altered function. We also observed significant alterations in cytokine/chemokine release in vivo with a shift toward a tumor-suppressive microenvironment. Our results demonstrate that entinostat enhances the antitumor effect of PD-1 targeting through functional inhibition of MDSCs and a transition away from an immune-suppressive tumor microenvironment. These data provide a mechanistic rationale for the clinical testing and potential markers of response of this novel combination in solid tumor patients.

MeSH Terms
Animals Benzamides/administration & dosage Carcinoma, Non-Small-Cell Lung/drug therapy,genetics,immunology,pathology Carcinoma, Renal Cell/drug therapy,genetics,immunology,pathology Disease Models, Animal Histone Deacetylase Inhibitors/administration & dosage Humans Immune Tolerance/immunology Immunotherapy/methods Mice Myeloid-Derived Suppressor Cells/immunology Programmed Cell Death 1 Receptor/antagonists & inhibitors,immunology Pyridines/administration & dosage Tumor Microenvironment/drug effects,immunology
Chemicals
Benzamides Histone Deacetylase Inhibitors Pdcd1 protein, mouse Programmed Cell Death 1 Receptor Pyridines entinostat
Authors & Affiliations
12 authors, click to expand affiliations / ORCID
Orillion Ashley
Gentourinary Program, Simon Cancer Center, Indiana University, Indianapolis, Indiana. | Department of Cellular and Molecular Biology, University at Buffalo, Roswell Park Cancer Institute, Buffalo, New York.
Hashimoto Ayumi
The Wistar Institute, Philadelphia, Pennsylvania.
Damayanti Nur
Gentourinary Program, Simon Cancer Center, Indiana University, Indianapolis, Indiana.
Shen Li
Department of Medicine, Roswell Park Cancer Institute, Buffalo, New York.
Adelaiye-Ogala Remi
Gentourinary Program, Simon Cancer Center, Indiana University, Indianapolis, Indiana. | Department of Cancer Pathology and Prevention, University at Buffalo, Roswell Park Cancer Institute, Buffalo, New York.
Arisa Sreevani
Gentourinary Program, Simon Cancer Center, Indiana University, Indianapolis, Indiana.
Chintala Sreenivasulu
Gentourinary Program, Simon Cancer Center, Indiana University, Indianapolis, Indiana.
Ordentlich Peter
Syndax Pharmaceuticals, Inc., New York, New York.
Kao Chingai
Department of Urology, Indiana University, Indianapolis, Indiana.
Elzey Bennett
Department of Urology, Indiana University, Indianapolis, Indiana. | Center for Cancer Research, Purdue University, West Lafayette, Indiana.
Gabrilovich Dmitry
The Wistar Institute, Philadelphia, Pennsylvania. rpili@iu.edu dgabrilovich@wistar.org.
Pili Roberto
Gentourinary Program, Simon Cancer Center, Indiana University, Indianapolis, Indiana. rpili@iu.edu dgabrilovich@wistar.org. | Department of Urology, Indiana University, Indianapolis, Indiana.
References (38)
38 references, click to expand
  1. Immunogenicity of murine solid tumor models as a defining feature of in vivo behavior and response to immunotherapy.
    J Immunother. 2013 Nov-Dec;36(9):477-89 PMID: 24145359
  2. Histone deacetylase inhibition facilitates GM-CSF-mediated expansion of myeloid-derived suppressor cells in vitro and in vivo.
    J Leukoc Biol. 2012 May;91(5):701-9 PMID: 22028329
  3. Myeloid derived suppressor cells-An overview of combat strategies to increase immunotherapy efficacy.
    Oncoimmunology. 2015 Feb 03;4(1):e954829 PMID: 25949858
  4. Renal-Cell Cancer--Targeting an Immune Checkpoint or Multiple Kinases.
    N Engl J Med. 2015 Nov 5;373(19):1872-4 PMID: 26406149
  5. Myeloid-derived suppressor cells in the tumor microenvironment: expect the unexpected.
    J Clin Invest. 2015 Sep;125(9):3356-64 PMID: 26168215
  6. Inhibiting histone deacetylase 1 suppresses both inflammation and bone loss in arthritis.
    Rheumatology (Oxford). 2015 Sep;54(9):1713-23 PMID: 25832610
  7. Safety, activity, and immune correlates of anti-PD-1 antibody in cancer.
    N Engl J Med. 2012 Jun 28;366(26):2443-54 PMID: 22658127
  8. CpG-mediated modulation of MDSC contributes to the efficacy of Ad5-TRAIL therapy against renal cell carcinoma.
    Cancer Immunol Immunother. 2014 Nov;63(11):1213-27 PMID: 25143233
  9. Tumor-infiltrating myeloid cells induce tumor cell resistance to cytotoxic T cells in mice.
    J Clin Invest. 2011 Oct;121(10):4015-29 PMID: 21911941
  10. The expression profiles and regulation of PD-L1 in tumor-induced myeloid-derived suppressor cells.
    Oncoimmunology. 2016 Oct 20;5(12 ):e1247135 PMID: 28123883
  11. HDAC inhibitors with PD-1 blockade: a promising strategy for treatment of multiple cancer types?
    Epigenomics. 2016 Aug;8(8):1015-7 PMID: 27410519
  12. The interplay of epigenetic therapy and immunity in locally recurrent or metastatic estrogen receptor-positive breast cancer: Correlative analysis of ENCORE 301, a randomized, placebo-controlled phase II trial of exemestane with or without entinostat.
    Oncoimmunology. 2016 Aug 31;5(11):e1219008 PMID: 27999738
  13. Recommendations for myeloid-derived suppressor cell nomenclature and characterization standards.
    Nat Commun. 2016 Jul 06;7:12150 PMID: 27381735
  14. Ceramide activates lysosomal cathepsin B and cathepsin D to attenuate autophagy and induces ER stress to suppress myeloid-derived suppressor cells.
    Oncotarget. 2016 Dec 20;7(51):83907-83925 PMID: 27880732
  15. Myeloid-Derived Suppressor Cell Survival and Function Are Regulated by the Transcription Factor Nrf2.
    J Immunol. 2016 Apr 15;196 (8):3470-8 PMID: 26936880
  16. Histone deacetylase inhibitors as immunomodulators in cancer therapeutics.
    Epigenomics. 2016 Mar;8(3):415-28 PMID: 26950532
  17. Hallmarks of cancer: the next generation.
    Cell. 2011 Mar 4;144(5):646-74 PMID: 21376230
  18. Myeloid-derived suppressor cells as regulators of the immune system.
    Nat Rev Immunol. 2009 Mar;9(3):162-74 PMID: 19197294
  19. Nivolumab versus Everolimus in Advanced Renal-Cell Carcinoma.
    N Engl J Med. 2015 Nov 5;373(19):1803-13 PMID: 26406148
  20. Structural and biological features of FOXP3 dimerization relevant to regulatory T cell function.
    Cell Rep. 2012 Jun 28;1(6):665-75 PMID: 22813742
  21. Epigenetic silencing of retinoblastoma gene regulates pathologic differentiation of myeloid cells in cancer.
    Nat Immunol. 2013 Mar;14(3):211-20 PMID: 23354483
  22. HDAC inhibitors and immunotherapy; a double edged sword?
    Oncotarget. 2014 Aug 30;5(16):6558-72 PMID: 25115382
  23. Innate and adaptive immune cells in the tumor microenvironment.
    Nat Immunol. 2013 Oct;14(10):1014-22 PMID: 24048123
  24. Subsets of myeloid-derived suppressor cells in tumor-bearing mice.
    J Immunol. 2008 Oct 15;181(8):5791-802 PMID: 18832739
  25. The Nature of Myeloid-Derived Suppressor Cells in the Tumor Microenvironment.
    Trends Immunol. 2016 Mar;37(3):208-220 PMID: 26858199
  26. Synergistic in vivo antitumor effect of the histone deacetylase inhibitor MS-275 in combination with interleukin 2 in a murine model of renal cell carcinoma.
    Clin Cancer Res. 2007 Aug 1;13(15 Pt 1):4538-46 PMID: 17671140
  27. Three novel acetylation sites in the Foxp3 transcription factor regulate the suppressive activity of regulatory T cells.
    J Immunol. 2012 Mar 15;188(6):2712-21 PMID: 22312127
  28. Effector CD4 and CD8 T cells and their role in the tumor microenvironment.
    Cancer Microenviron. 2013 Aug;6(2):123-33 PMID: 23242673
  29. Epigenetic regulation of inflammation: progressing from broad acting histone deacetylase (HDAC) inhibitors to targeting specific HDACs.
    Inflammopharmacology. 2013 Aug;21(4):301-7 PMID: 23341163
  30. Tumor cell expression of programmed cell death-1 ligand 1 is a prognostic factor for malignant melanoma.
    Cancer. 2010 Apr 1;116(7):1757-66 PMID: 20143437
  31. HDAC Inhibitors Enhance T-Cell Chemokine Expression and Augment Response to PD-1 Immunotherapy in Lung Adenocarcinoma.
    Clin Cancer Res. 2016 Aug 15;22(16):4119-32 PMID: 26964571
  32. Anti PD-1 and PDL-1 Immunotherapy in the Treatment of Advanced Non- Small Cell Lung Cancer (NSCLC): A Review on Toxicity Profile and its Management.
    Curr Drug Saf. 2016;11(1):62-8 PMID: 26412670
  33. Characterization of the nature of granulocytic myeloid-derived suppressor cells in tumor-bearing mice.
    J Leukoc Biol. 2012 Jan;91(1):167-81 PMID: 21954284
  34. Tumor-associated B7-H1 promotes T-cell apoptosis: a potential mechanism of immune evasion.
    Nat Med. 2002 Aug;8(8):793-800 PMID: 12091876
  35. Class I histone deacetylase inhibitor entinostat suppresses regulatory T cells and enhances immunotherapies in renal and prostate cancer models.
    PLoS One. 2012;7(1):e30815 PMID: 22303460
  36. Molecular pathways: tumor-infiltrating myeloid cells and reactive oxygen species in regulation of tumor microenvironment.
    Clin Cancer Res. 2012 Sep 15;18(18):4877-82 PMID: 22718858
  37. Interleukin-1 and cancer progression: the emerging role of interleukin-1 receptor antagonist as a novel therapeutic agent in cancer treatment.
    J Transl Med. 2006 Nov 10;4:48 PMID: 17096856
  38. Safety and activity of anti-PD-L1 antibody in patients with advanced cancer.
    N Engl J Med. 2012 Jun 28;366(26):2455-65 PMID: 22658128
Article Info
Journal
Clinical cancer research : an official journal of the American Association for Cancer Research
Abbr.
Clin Cancer Res
ISSN
1557-3265
Published
2017-00-01
Epub
2017-00-11
Pages
5187-5201
Language
English
Region
United States
NLM ID
9502500
PMCID
PMC5723438
Subset
IM
Grants
NCI NIH HHS · P30 CA010815 · United States
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