Home LiteratureArticle Details
PMID: 27343548 Published · ppublish English Journal Article

Combination of radiotherapy and vaccination overcomes checkpoint blockade resistance.

Oncotarget ·Vol. 7 ·No. 28 ·2016-07-12 ·Pages 43039-43051

Zheng W, Skowron KB, Namm JP, Burnette B, Fernandez C, Arina A, Liang H, Spiotto MT, Posner MC, Fu YX, Weichselbaum RR

Abstract

The majority of cancer patients respond poorly to either vaccine or checkpoint blockade, and even to the combination of both. They are often resistant to high doses of radiation therapy as well. We examined prognostic markers of immune cell infiltration in pancreatic cancer. Patients with low CD8+ T cell infiltration and high PD-L1 expression (CD8+ TloPD-L1hi) experienced poor outcomes. We developed a mouse tumor fragment model with a trackable model antigen (SIYRYYGL or SIY) to mimic CD8+ TloPD-L1hi cancers. Tumors arising from fragments contained few T cells, even after vaccination. Fragment tumors responded poorly to PD-L1 blockade, SIY vaccination or radiation individually. By contrast, local ionizing radiation coupled with vaccination increased CD8+ T cell infiltration that was associated with upregulation of CXCL10 and CCL5 chemokines in the tumor, but demonstrated modest inhibition of tumor growth. The addition of an anti-PD-L1 antibody enhanced the effector function of tumor-infiltrating T cells, leading to significantly improved tumor regression and increased survival compared to vaccination and radiation. These results indicate that sequential combination of radiation, vaccination and checkpoint blockade converts non-T cell-inflamed cancers to T cell-inflamed cancers, and mediates regression of established pancreatic tumors with an initial CD8+ TloPD-L1hi phenotype. This study has opened a new strategy for shifting "cold" to hot tumors that will respond to immunotherapy.

Keywords
T cell infiltration checkpoint blockade radiation therapy tumor model vaccination
MeSH Terms
Animals B7-H1 Antigen/immunology,metabolism CD8-Positive T-Lymphocytes/immunology,metabolism Cell Line, Tumor Chemokines/genetics,immunology,metabolism Combined Modality Therapy Gene Expression Regulation, Neoplastic/immunology Immunotherapy/methods Mice, Inbred C57BL Mice, Transgenic Neoplasms, Experimental/genetics,immunology,therapy Pancreatic Neoplasms/genetics,immunology,therapy Radiotherapy/methods Survival Analysis Vaccination/methods
Chemicals
B7-H1 Antigen Cd274 protein, mouse Chemokines
Authors & Affiliations
11 authors, click to expand affiliations / ORCID
Zheng Wenxin
Department of Radiation and Cellular Oncology, University of Chicago, Chicago, IL, USA. | The Ludwig Center for Metastasis Research, University of Chicago, Chicago, IL, USA.
Skowron Kinga B
Department of Surgery, University of Chicago, Chicago, IL, USA. | The Ludwig Center for Metastasis Research, University of Chicago, Chicago, IL, USA.
Namm Jukes P
Department of Surgery, University of Chicago, Chicago, IL, USA. | The Ludwig Center for Metastasis Research, University of Chicago, Chicago, IL, USA. | Department of Surgery, Loma Linda University Health, Loma Linda, CA, USA.
Burnette Byron
Department of Radiation and Cellular Oncology, University of Chicago, Chicago, IL, USA. | The Ludwig Center for Metastasis Research, University of Chicago, Chicago, IL, USA.
Fernandez Christian
Department of Radiation and Cellular Oncology, University of Chicago, Chicago, IL, USA. | The Ludwig Center for Metastasis Research, University of Chicago, Chicago, IL, USA.
Arina Ainhoa
Department of Radiation and Cellular Oncology, University of Chicago, Chicago, IL, USA. | The Ludwig Center for Metastasis Research, University of Chicago, Chicago, IL, USA.
Liang Hua
Department of Radiation and Cellular Oncology, University of Chicago, Chicago, IL, USA. | The Ludwig Center for Metastasis Research, University of Chicago, Chicago, IL, USA.
Spiotto Michael T
Department of Radiation and Cellular Oncology, University of Chicago, Chicago, IL, USA. | The Ludwig Center for Metastasis Research, University of Chicago, Chicago, IL, USA.
Posner Mitchell C
Department of Surgery, University of Chicago, Chicago, IL, USA.
Fu Yang-Xin
The Ludwig Center for Metastasis Research, University of Chicago, Chicago, IL, USA. | Department of Pathology, UT Southwestern Medical Center, Dallas, TX, USA.
Weichselbaum Ralph R
Department of Radiation and Cellular Oncology, University of Chicago, Chicago, IL, USA. | The Ludwig Center for Metastasis Research, University of Chicago, Chicago, IL, USA.
Conflict of Interest

The authors have declared that no conflicts of interest exists.

References (42)
42 references, click to expand
  1. Phase I study of a MUC1 vaccine composed of different doses of MUC1 peptide with SB-AS2 adjuvant in resected and locally advanced pancreatic cancer.
    Cancer Immunol Immunother. 2005 Mar;54(3):254-64 PMID: 15372205
  2. The prognostic landscape of genes and infiltrating immune cells across human cancers.
    Nat Med. 2015 Aug;21(8):938-45 PMID: 26193342
  3. Safety and survival with GVAX pancreas prime and Listeria Monocytogenes-expressing mesothelin (CRS-207) boost vaccines for metastatic pancreatic cancer.
    J Clin Oncol. 2015 Apr 20;33(12):1325-33 PMID: 25584002
  4. Combination of radiotherapy and immune checkpoint inhibitors.
    Semin Radiat Oncol. 2015 Jan;25(1):28-33 PMID: 25481263
  5. Radiation as an immune modulator.
    Semin Radiat Oncol. 2013 Oct;23(4):273-80 PMID: 24012341
  6. The Next Hurdle in Cancer Immunotherapy: Overcoming the Non-T-Cell-Inflamed Tumor Microenvironment.
    Semin Oncol. 2015 Aug;42(4):663-71 PMID: 26320069
  7. Radiation modulates the peptide repertoire, enhances MHC class I expression, and induces successful antitumor immunotherapy.
    J Exp Med. 2006 May 15;203(5):1259-71 PMID: 16636135
  8. Phase 2 trial of single agent Ipilimumab (anti-CTLA-4) for locally advanced or metastatic pancreatic adenocarcinoma.
    J Immunother. 2010 Oct;33(8):828-33 PMID: 20842054
  9. Combination cancer immunotherapies tailored to the tumour microenvironment.
    Nat Rev Clin Oncol. 2016 Mar;13(3):143-58 PMID: 26598942
  10. Local radiation therapy of B16 melanoma tumors increases the generation of tumor antigen-specific effector cells that traffic to the tumor.
    J Immunol. 2005 Jun 15;174(12):7516-23 PMID: 15944250
  11. Preoperative/neoadjuvant therapy in pancreatic cancer: a systematic review and meta-analysis of response and resection percentages.
    PLoS Med. 2010 Apr 20;7(4):e1000267 PMID: 20422030
  12. Neoadjuvant chemoradiation with IMRT in resectable and borderline resectable pancreatic cancer.
    Radiother Oncol. 2014 Oct;113(1):41-6 PMID: 25443499
  13. Animal Models of Gastrointestinal and Liver Diseases. The difficulty of animal modeling of pancreatic cancer for preclinical evaluation of therapeutics.
    Am J Physiol Gastrointest Liver Physiol. 2015 Sep 1;309(5):G283-91 PMID: 26159697
  14. External beam radiation of tumors alters phenotype of tumor cells to render them susceptible to vaccine-mediated T-cell killing.
    Cancer Res. 2004 Jun 15;64(12):4328-37 PMID: 15205348
  15. Longitudinal confocal microscopy imaging of solid tumor destruction following adoptive T cell transfer.
    Oncoimmunology. 2013 Nov 1;2(11):e26677 PMID: 24482750
  16. The tumour microenvironment after radiotherapy: mechanisms of resistance and recurrence.
    Nat Rev Cancer. 2015 Jul;15(7):409-25 PMID: 26105538
  17. Radiation-induced CXCL16 release by breast cancer cells attracts effector T cells.
    J Immunol. 2008 Sep 1;181(5):3099-107 PMID: 18713980
  18. The blockade of immune checkpoints in cancer immunotherapy.
    Nat Rev Cancer. 2012 Mar 22;12(4):252-64 PMID: 22437870
  19. Epigenetic silencing of TH1-type chemokines shapes tumour immunity and immunotherapy.
    Nature. 2015 Nov 12;527(7577):249-53 PMID: 26503055
  20. Stereotactic radiotherapy for unresectable adenocarcinoma of the pancreas.
    Cancer. 2009 Feb 1;115(3):665-72 PMID: 19117351
  21. Long-term persistence of CD4(+) but rapid disappearance of CD8(+) T cells expressing an MHC class I-restricted TCR of nanomolar affinity.
    Mol Ther. 2012 Mar;20(3):652-60 PMID: 22233579
  22. A multi-institutional phase 2 study of neoadjuvant gemcitabine and oxaliplatin with radiation therapy in patients with pancreatic cancer.
    Cancer. 2013 Aug 1;119(15):2692-700 PMID: 23720019
  23. Mouse models of pancreatic cancer.
    World J Gastroenterol. 2012 Mar 28;18(12 ):1286-94 PMID: 22493542
  24. Innate and adaptive immune cells in the tumor microenvironment.
    Nat Immunol. 2013 Oct;14(10):1014-22 PMID: 24048123
  25. Chemokine expression in melanoma metastases associated with CD8+ T-cell recruitment.
    Cancer Res. 2009 Apr 1;69(7):3077-85 PMID: 19293190
  26. Improving T cell therapy for cancer.
    Annu Rev Immunol. 2007;25:243-65 PMID: 17129181
  27. A live-attenuated Listeria vaccine (ANZ-100) and a live-attenuated Listeria vaccine expressing mesothelin (CRS-207) for advanced cancers: phase I studies of safety and immune induction.
    Clin Cancer Res. 2012 Feb 1;18(3):858-68 PMID: 22147941
  28. Immunity to methylcholanthrene-induced sarcomas.
    J Natl Cancer Inst. 1957 Jun;18(6):769-78 PMID: 13502695
  29. Eradication of established tumors by CD8+ T cell adoptive immunotherapy.
    Immunity. 2000 Aug;13(2):265-76 PMID: 10981969
  30. Therapeutic effects of ablative radiation on local tumor require CD8+ T cells: changing strategies for cancer treatment.
    Blood. 2009 Jul 16;114(3):589-95 PMID: 19349616
  31. The immune contexture in human tumours: impact on clinical outcome.
    Nat Rev Cancer. 2012 Mar 15;12 (4):298-306 PMID: 22419253
  32. Induced sensitization of tumor stroma leads to eradication of established cancer by T cells.
    J Exp Med. 2007 Jan 22;204(1):49-55 PMID: 17210731
  33. Gemcitabine chemotherapy and single-fraction stereotactic body radiotherapy for locally advanced pancreatic cancer.
    Int J Radiat Oncol Biol Phys. 2008 Nov 1;72 (3):678-86 PMID: 18395362
  34. Classifying Cancers Based on T-cell Infiltration and PD-L1.
    Cancer Res. 2015 Jun 1;75(11):2139-45 PMID: 25977340
  35. Combining radiotherapy and cancer immunotherapy: a paradigm shift.
    J Natl Cancer Inst. 2013 Feb 20;105(4):256-65 PMID: 23291374
  36. Increasing tumor antigen expression overcomes "ignorance" to solid tumors via crosspresentation by bone marrow-derived stromal cells.
    Immunity. 2002 Dec;17(6):737-47 PMID: 12479820
  37. Prospects for vaccine therapy for pancreatic cancer.
    Best Pract Res Clin Gastroenterol. 2006 Apr;20(2):299-314 PMID: 16549329
  38. Low-dose irradiation programs macrophage differentiation to an iNOS⁺/M1 phenotype that orchestrates effective T cell immunotherapy.
    Cancer Cell. 2013 Nov 11;24(5):589-602 PMID: 24209604
  39. 12-Chemokine gene signature identifies lymph node-like structures in melanoma: potential for patient selection for immunotherapy?
    Sci Rep. 2012;2:765 PMID: 23097687
  40. Robust enumeration of cell subsets from tissue expression profiles.
    Nat Methods. 2015 May;12(5):453-7 PMID: 25822800
  41. Relapse or eradication of cancer is predicted by peptide-major histocompatibility complex affinity.
    Cancer Cell. 2013 Apr 15;23(4):516-26 PMID: 23597565
  42. 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
Oncotarget
Abbr.
Oncotarget
ISSN
1949-2553
Published
2016-07-12
Pages
43039-43051
Language
English
Region
United States
NLM ID
101532965
PMCID
PMC5190006
Subset
IM
Grants
NCI NIH HHS · R01 CA134563 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com