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PMID: 27241845 Published · ppublish English Journal Article

Antitumor Efficacy of Radiation plus Immunotherapy Depends upon Dendritic Cell Activation of Effector CD8+ T Cells.

Cancer immunology research ·Vol. 4 ·No. 7 ·2016-00-00 ·Pages 621-630

Dovedi SJ, Lipowska-Bhalla G, Beers SA, Cheadle EJ, Mu L, Glennie MJ, Illidge TM, Honeychurch J

Abstract

Tumor cells dying after cytotoxic therapy are a potential source of antigen for T-cell priming. Antigen-presenting cells (APC) can cross-present MHC I-restricted peptides after the uptake of dying cells. Depending on the nature of the surrounding environmental signals, APCs then orchestrate a spectrum of responses ranging from immune activation to inhibition. Previously, we had demonstrated that combining radiation with either agonistic monoclonal antibody (mAb) to CD40 or a systemically administered TLR7 agonist could enhance CD8 T-cell-dependent protection against syngeneic murine lymphoma models. However, it remains unknown how individual APC populations affect this antitumor immune response. Using APC depletion models, we now show that dendritic cells (DC), but not macrophages or B cells, were responsible for the generation of long-term immunologic protection following combination therapy with radiotherapy and either agonistic CD40 mAb or systemic TLR7 agonist therapy. Novel immunotherapeutic approaches that augment antigen uptake and presentation by DCs may further enhance the generation of therapeutic antitumor immune responses, leading to improved outcomes after radiotherapy. Cancer Immunol Res; 4(7); 621-30. ©2016 AACR.

MeSH Terms
Animals Antibodies, Monoclonal/pharmacology B-Lymphocytes/immunology,metabolism CD40 Antigens/antagonists & inhibitors,immunology CD8-Positive T-Lymphocytes/drug effects,immunology,metabolism,radiation effects Combined Modality Therapy Cytokines/metabolism Dendritic Cells/drug effects,immunology,metabolism,radiation effects Disease Models, Animal Immunotherapy Lymphocyte Activation/immunology Lymphocyte Depletion Macrophages/drug effects,immunology,metabolism,radiation effects Mice Neoplasms/immunology,metabolism,pathology,therapy Phagocytosis Radiotherapy
Chemicals
Antibodies, Monoclonal CD40 Antigens Cytokines
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Dovedi Simon J
Targeted Therapy Group, Institute of Cancer Sciences, University of Manchester, Manchester Academic Health Sciences Centre, United Kingdom.
Lipowska-Bhalla Grazyna
Targeted Therapy Group, Institute of Cancer Sciences, University of Manchester, Manchester Academic Health Sciences Centre, United Kingdom.
Beers Stephen A
Antibody and Vaccine Group, Cancer Sciences Unit, University of Southampton Faculty of Medicine, Southampton General Hospital, Southampton, United Kingdom.
Cheadle Eleanor J
Targeted Therapy Group, Institute of Cancer Sciences, University of Manchester, Manchester Academic Health Sciences Centre, United Kingdom.
Mu Lijun
The Second Affiliated Hospital, Dalian Medical University, Dalian 116027, China.
Glennie Martin J
Antibody and Vaccine Group, Cancer Sciences Unit, University of Southampton Faculty of Medicine, Southampton General Hospital, Southampton, United Kingdom.
Illidge Timothy M
Targeted Therapy Group, Institute of Cancer Sciences, University of Manchester, Manchester Academic Health Sciences Centre, United Kingdom. | Christie NHS Trust, University of Manchester, Manchester Academic Health Sciences Centre, United Kingdom.
Honeychurch Jamie
Targeted Therapy Group, Institute of Cancer Sciences, University of Manchester, Manchester Academic Health Sciences Centre, United Kingdom.
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Article Info
Journal
Cancer immunology research
Abbr.
Cancer Immunol Res
ISSN
2326-6074
Published
2016-00-00
Epub
2016-00-30
Pages
621-630
Language
English
Region
United States
NLM ID
101614637
PMCID
PMC5348028
Subset
IM
Grants
Cancer Research UK · 10834 · United Kingdom
Cancer Research UK · A12343 · United Kingdom
Cancer Research UK · A17737 · United Kingdom
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