FOXA1, GATA3 and PPARɣ Cooperate to Drive Luminal Subtype in Bladder Cancer: A Molecular Analysis of Established Human Cell Lines

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作者
Joshua I. Warrick
Vonn Walter
Hironobu Yamashita
Eunah Chung
Lauren Shuman
Vasty Osei Amponsa
Zongyu Zheng
Wilson Chan
Tiffany L. Whitcomb
Feng Yue
Tejaswi Iyyanki
Yuka I. Kawasawa
Matthew Kaag
Wansong Guo
Jay D. Raman
Joo-Seop Park
David J. DeGraff
机构
[1] Pennsylvania State University Milton S. Hershey Medical Center,Department of Pathology
[2] Pennsylvania State University College of Medicine,Department of Surgery, Division of Urology
[3] Pennsylvania State University College of Medicine,Department of Biochemistry and Molecular Biology
[4] Pennsylvania State University College of Medicine,Department of Public Health Sciences
[5] Cincinnati Children’s Hospital Medical Center,Division of Pediatric Urology and Developmental Biology
[6] Institute for Personalized Medicine,Department of Surgery, Division of Urology
[7] Pennsylvania State University College of Medicine,Department of Comparative Medicine
[8] Changchun Central Hospital,undefined
[9] Changchun,undefined
[10] Pennsylvania State University College of Medicine,undefined
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Scientific Reports | / 6卷
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摘要
Discrete bladder cancer molecular subtypes exhibit differential clinical aggressiveness and therapeutic response, which may have significant implications for identifying novel treatments for this common malignancy. However, research is hindered by the lack of suitable models to study each subtype. To address this limitation, we classified bladder cancer cell lines into molecular subtypes using publically available data in the Cancer Cell Line Encyclopedia (CCLE), guided by genomic characterization of bladder cancer by The Cancer Genome Atlas (TCGA). This identified a panel of bladder cancer cell lines which exhibit genetic alterations and gene expression patterns consistent with luminal and basal molecular subtypes of human disease. A subset of bladder cancer cell lines exhibit in vivo histomorphologic patterns consistent with luminal and basal subtypes, including papillary architecture and squamous differentiation. Using the molecular subtype assignments, and our own RNA-seq analysis, we found overexpression of GATA3 and FOXA1 cooperate with PPARɣ activation to drive transdifferentiation of a basal bladder cancer cells to a luminial phenotype. In summary, our analysis identified a set of human cell lines suitable for the study of molecular subtypes in bladder cancer, and furthermore indicates a cooperative regulatory network consisting of GATA3, FOXA1, and PPARɣ drive luminal cell fate.
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