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THU479 FOXA1 Loss Remodels The Tumor Immune Microenvironment In Late-stage Prostate Cancer

Disclosure: L.T. Brea: None. H. Shi: None. V. Keo: None. W. Xie: None. X. Lu: None. G. Gritsina: None. X. Wang: None. S.H. Park: None. J. Zhao: None. J. Yu: None. Background: Castration resistant prostate cancer (CRPC) has shown a poor response to immune checkpoint inhibitors due to its immunosuppre...

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Autores principales: Brea, Lourdes T, Shi, Hongshun, Keo, Viriya, Xie, Wanqing, Lu, Xiaodong, Gritsina, Galina, Wang, Xiaohai, Park, Su H, Zhao, Jonathan, Yu, Jindan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10553737/
http://dx.doi.org/10.1210/jendso/bvad114.2107
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author Brea, Lourdes T
Shi, Hongshun
Keo, Viriya
Xie, Wanqing
Lu, Xiaodong
Gritsina, Galina
Wang, Xiaohai
Park, Su H
Zhao, Jonathan
Yu, Jindan
author_facet Brea, Lourdes T
Shi, Hongshun
Keo, Viriya
Xie, Wanqing
Lu, Xiaodong
Gritsina, Galina
Wang, Xiaohai
Park, Su H
Zhao, Jonathan
Yu, Jindan
author_sort Brea, Lourdes T
collection PubMed
description Disclosure: L.T. Brea: None. H. Shi: None. V. Keo: None. W. Xie: None. X. Lu: None. G. Gritsina: None. X. Wang: None. S.H. Park: None. J. Zhao: None. J. Yu: None. Background: Castration resistant prostate cancer (CRPC) has shown a poor response to immune checkpoint inhibitors due to its immunosuppressive nature. CRPC is infiltrated by tumor-associated macrophages (TAMs) and T regulatory cells (Tregs), which induce an immunosuppressive tumor immune microenvironment (TIME) and promote tumor progression. A deeper understanding of tumor intrinsic mechanisms shaping the TIME in prostate cancer (PCa) is needed to harness immunotherapies for PCa patients. Previous studies have found that epithelial transcription factor FOXA1 is downregulated in CRPC. In accordance, we have reported that FOXA1 loss induces tumor cell invasion and macrophage recruitment in vitro through HIF1A-CCL2 signaling. However, the extent to which FOXA1 loss regulates the TIME in PCa remains unclear, largely due to the lack of immune-proficient mouse models for the study of FOXA1 function in the context of PCa. Methods: To examine how FOXA1 loss regulates the PCa TIME, we generated a novel genetically engineered mouse model (GEMM) with prostate-specific deletion of Pten and Foxa1 (PbCre4:Pten(f/f)Foxa1(f/f)) to compare with the established Pten-null PCa mouse model (PbCre4:Pten(f/f)). We performed immunohistochemistry analyses on the GEMM prostate tumor tissues to characterize histopathology changes and assess tumor immune infiltration. We also performed spatial transcriptomics and scRNA-seq analyses of the GEMMs to comprehensively evaluate the effect of Foxa1 loss on downstream pathways and the surrounding TIME. Finally, we performed bioinformatics analysis of PCa patient datasets to validate the clinical relevance. Results: We found PbCre4:Pten(f/f)Foxa1(f/f) mouse prostate tumors exhibited a more aggressive histopathologic tumor phenotype compared to age-matched PbCre4:Pten(f/f). Notably, immunohistochemistry staining and spatial transcriptomic analysis of the GEMMs revealed striking remodeling of the TIME upon Foxa1 loss, with marked increases in tumor infiltration by Tregs and TAMs. Moreover, CIBERSORTx analysis of patient datasets revealed FOXA1 expression negatively correlates with Treg and M2-macrophage infiltration. We also found pro-tumorigenic inflammatory cytokine signaling genes, linked to the recruitment of immunosuppressive cells, were upregulated in PbCre4:Pten(f/f)Foxa1(f/f) prostate tumors. Furthermore, we confirmed inflammatory pathways were upregulated among FOXA1-low patient samples. Additional studies are ongoing to further elucidate the mechanisms by which FOXA1 regulates inflammatory cytokine signaling and the TIME in PCa.Conclusion: This study presents a novel GEMM for the study of FOXA1 function in an immunocompetent setting. Our data supports FOXA1 as a critical tumor intrinsic regulator of the TIME. This will have important implications on the design of immunotherapeutic approaches for late-stage PCa often with FOXA1 loss. Presentation: Thursday, June 15, 2023
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spelling pubmed-105537372023-10-06 THU479 FOXA1 Loss Remodels The Tumor Immune Microenvironment In Late-stage Prostate Cancer Brea, Lourdes T Shi, Hongshun Keo, Viriya Xie, Wanqing Lu, Xiaodong Gritsina, Galina Wang, Xiaohai Park, Su H Zhao, Jonathan Yu, Jindan J Endocr Soc Tumor Biology Disclosure: L.T. Brea: None. H. Shi: None. V. Keo: None. W. Xie: None. X. Lu: None. G. Gritsina: None. X. Wang: None. S.H. Park: None. J. Zhao: None. J. Yu: None. Background: Castration resistant prostate cancer (CRPC) has shown a poor response to immune checkpoint inhibitors due to its immunosuppressive nature. CRPC is infiltrated by tumor-associated macrophages (TAMs) and T regulatory cells (Tregs), which induce an immunosuppressive tumor immune microenvironment (TIME) and promote tumor progression. A deeper understanding of tumor intrinsic mechanisms shaping the TIME in prostate cancer (PCa) is needed to harness immunotherapies for PCa patients. Previous studies have found that epithelial transcription factor FOXA1 is downregulated in CRPC. In accordance, we have reported that FOXA1 loss induces tumor cell invasion and macrophage recruitment in vitro through HIF1A-CCL2 signaling. However, the extent to which FOXA1 loss regulates the TIME in PCa remains unclear, largely due to the lack of immune-proficient mouse models for the study of FOXA1 function in the context of PCa. Methods: To examine how FOXA1 loss regulates the PCa TIME, we generated a novel genetically engineered mouse model (GEMM) with prostate-specific deletion of Pten and Foxa1 (PbCre4:Pten(f/f)Foxa1(f/f)) to compare with the established Pten-null PCa mouse model (PbCre4:Pten(f/f)). We performed immunohistochemistry analyses on the GEMM prostate tumor tissues to characterize histopathology changes and assess tumor immune infiltration. We also performed spatial transcriptomics and scRNA-seq analyses of the GEMMs to comprehensively evaluate the effect of Foxa1 loss on downstream pathways and the surrounding TIME. Finally, we performed bioinformatics analysis of PCa patient datasets to validate the clinical relevance. Results: We found PbCre4:Pten(f/f)Foxa1(f/f) mouse prostate tumors exhibited a more aggressive histopathologic tumor phenotype compared to age-matched PbCre4:Pten(f/f). Notably, immunohistochemistry staining and spatial transcriptomic analysis of the GEMMs revealed striking remodeling of the TIME upon Foxa1 loss, with marked increases in tumor infiltration by Tregs and TAMs. Moreover, CIBERSORTx analysis of patient datasets revealed FOXA1 expression negatively correlates with Treg and M2-macrophage infiltration. We also found pro-tumorigenic inflammatory cytokine signaling genes, linked to the recruitment of immunosuppressive cells, were upregulated in PbCre4:Pten(f/f)Foxa1(f/f) prostate tumors. Furthermore, we confirmed inflammatory pathways were upregulated among FOXA1-low patient samples. Additional studies are ongoing to further elucidate the mechanisms by which FOXA1 regulates inflammatory cytokine signaling and the TIME in PCa.Conclusion: This study presents a novel GEMM for the study of FOXA1 function in an immunocompetent setting. Our data supports FOXA1 as a critical tumor intrinsic regulator of the TIME. This will have important implications on the design of immunotherapeutic approaches for late-stage PCa often with FOXA1 loss. Presentation: Thursday, June 15, 2023 Oxford University Press 2023-10-05 /pmc/articles/PMC10553737/ http://dx.doi.org/10.1210/jendso/bvad114.2107 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of the Endocrine Society. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivs licence (https://creativecommons.org/licenses/by-nc-nd/4.0/), which permits non-commercial reproduction and distribution of the work, in any medium, provided the original work is not altered or transformed in any way, and that the work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Tumor Biology
Brea, Lourdes T
Shi, Hongshun
Keo, Viriya
Xie, Wanqing
Lu, Xiaodong
Gritsina, Galina
Wang, Xiaohai
Park, Su H
Zhao, Jonathan
Yu, Jindan
THU479 FOXA1 Loss Remodels The Tumor Immune Microenvironment In Late-stage Prostate Cancer
title THU479 FOXA1 Loss Remodels The Tumor Immune Microenvironment In Late-stage Prostate Cancer
title_full THU479 FOXA1 Loss Remodels The Tumor Immune Microenvironment In Late-stage Prostate Cancer
title_fullStr THU479 FOXA1 Loss Remodels The Tumor Immune Microenvironment In Late-stage Prostate Cancer
title_full_unstemmed THU479 FOXA1 Loss Remodels The Tumor Immune Microenvironment In Late-stage Prostate Cancer
title_short THU479 FOXA1 Loss Remodels The Tumor Immune Microenvironment In Late-stage Prostate Cancer
title_sort thu479 foxa1 loss remodels the tumor immune microenvironment in late-stage prostate cancer
topic Tumor Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10553737/
http://dx.doi.org/10.1210/jendso/bvad114.2107
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