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Generation of Tumor Organoids from Genetically Engineered Mouse Models of Prostate Cancer
Published on: June 13, 2019
FOXO3 programs tumor-associated DCs to become tolerogenic in human and murine prostate cancer
Stephanie K Watkins1, Ziqiang Zhu, Elena Riboldi
1Tumor Immunity and Tolerance Section, Laboratory of Molecular Immunoregulation, National Cancer Institute-Frederick, Frederick, Maryland 21702, USA.
Abstract:
The limited success of cancer immunotherapy is often attributed to the loss of antigen-specific T cell function in situ. However, the mechanism for this loss of function is unknown. In this study, we describe a population of tumor-associated DCs (TADCs) in both human and mouse prostate cancer that tolerizes and induces suppressive activity in tumor-specific T cells. In tumors from human prostate cancer patients and transgenic adenocarcinoma of the mouse prostate (TRAMP) mice, TADCs expressed elevated levels of FOXO3 and Foxo3, respectively, which correlated with expression of suppressive genes that negatively regulate T cell function. Silencing FOXO3 and Foxo3 with siRNAs abrogated the ability of human and mouse TADCs, respectively, to tolerize and induce suppressive activity by T cells. Silencing Foxo3 in mouse TADCs was also associated with diminished expression of tolerogenic mediators, such as indoleamine-2,3-dioxygenase, arginase, and TGF-β, and upregulated expression of costimulatory molecules and proinflammatory cytokines. Importantly, transfer of tumor-specific CD4+ Th cells into TRAMP mice abrogated TADC tolerogenicity, which was associated with reduced Foxo3 expression. These findings demonstrate that FOXO3 may play a critical role in mediating TADC-induced immune suppression. Moreover, our results identify what we believe to be a novel target for preventing CTL tolerance and enhancing immune responses to cancer by modulating the immunosuppressive activity of TADCs found in the tumor microenvironment.
Insights
Tumor-associated dendritic cells (TADCs) in prostate cancer suppress T cell function via FOXO3. Silencing FOXO3 in TADCs restores T cell activity, offering a potential target for cancer immunotherapy.
Area of Science:
- Immunology
- Oncology
- Cell Biology
Background:
- Cancer immunotherapy success is limited by T cell dysfunction within the tumor microenvironment.
- The mechanisms driving this loss of T cell function remain largely unknown.
Purpose of the Study:
- To investigate the role of tumor-associated dendritic cells (TADCs) in T cell suppression in prostate cancer.
- To identify molecular mechanisms by which TADCs induce T cell tolerance and suppressive activity.
Main Methods:
- Analysis of TADCs in human prostate cancer and mouse models (TRAMP).
- Assessment of FOXO3/Foxo3 expression and its correlation with suppressive gene expression.
- siRNA-mediated silencing of FOXO3/Foxo3 in TADCs.
- Evaluation of T cell function and cytokine profiles following TADC manipulation.
- In vivo studies involving adoptive T cell transfer.
Main Results:
- TADCs in human and mouse prostate tumors express elevated FOXO3/Foxo3.
- FOXO3/Foxo3 expression correlates with genes that suppress T cell function.
- Silencing FOXO3/Foxo3 in TADCs abrogates T cell tolerization and suppressive activity.
- Foxo3 silencing in mouse TADCs reduces tolerogenic mediators and increases costimulatory molecules.
- Transfer of tumor-specific T cells reduces TADC tolerogenicity and Foxo3 expression.
Conclusions:
- FOXO3 is a critical mediator of TADC-induced immune suppression in prostate cancer.
- Modulating TADC immunosuppressive activity via FOXO3 presents a novel therapeutic strategy for enhancing anti-cancer immunity.
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