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Publication : PD-1 blockade enhances T-cell migration to tumors by elevating IFN-γ inducible chemokines.

First Author  Peng W Year  2012
Journal  Cancer Res Volume  72
Issue  20 Pages  5209-18
PubMed ID  22915761 Mgi Jnum  J:191805
Mgi Id  MGI:5463149 Doi  10.1158/0008-5472.CAN-12-1187
Citation  Peng W, et al. (2012) PD-1 blockade enhances T-cell migration to tumors by elevating IFN-gamma inducible chemokines. Cancer Res 72(20):5209-18
abstractText  Adoptive cell transfer (ACT) is considered a promising modality for cancer treatment, but despite ongoing improvements, many patients do not experience clinical benefits. The tumor microenvironment is an important limiting factor in immunotherapy that has not been addressed fully in ACT treatments. In this study, we report that upregualtion of the immunosuppressive receptor programmed cell death-1 (PD-1) expressed on transferred T cells at the tumor site, in a murine model of ACT, compared with its expression on transferred T cells present in the peripheral blood and spleen. As PD-1 can attenuate T-cell-mediated antitumor responses, we tested whether its blockade with an anti-PD-1 antibody could enhance the antitumor activity of ACT in this model. Cotreatment with both agents increased the number of transferred T cells at the tumor site and also enhanced tumor regressions, compared with treatments with either agent alone. While anti-PD-1 did not reduce the number of immunosuppressive regulatory T cells and myeloid-derived suppressor cells present in tumor-bearing mice, we found that it increased expression of IFN-gamma and CXCL10 at the tumor site. Bone marrow-transplant experiments using IFN-gammaR-/- mice implicated IFN-gamma as a crucial nexus for controlling PD-1-mediated tumor infiltration by T cells. Taken together, our results imply that blocking the PD-1 pathway can increase IFN-gamma at the tumor site, thereby increasing chemokine-dependent trafficking of immune cells into malignant disease sites.
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