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The urothelial gene regulatory network: understanding biology to improve bladder cancer management
by
Ramal, Maria
, Lapi, Eleonora
, Real, Francisco X.
, Corral, Sonia
, Kalisz, Mark
in
13/51
/ 38/39
/ 631/337/572
/ 631/67/68
/ 64/60
/ 82/1
/ Activator protein 1
/ Apoptosis
/ Basal cells
/ Biomarkers, Tumor - genetics
/ Bladder
/ Bladder cancer
/ Carcinoma, Transitional Cell - pathology
/ Cell Biology
/ Cell differentiation
/ Circadian rhythms
/ Epithelium
/ GATA-3 protein
/ Gene expression
/ Gene Regulatory Networks
/ Genomic analysis
/ Genomics
/ Human Genetics
/ Humans
/ Internal Medicine
/ Medicine
/ Medicine & Public Health
/ Oncology
/ Organoids
/ Phenotypes
/ Review Article
/ Sex hormones
/ Transcription factors
/ Transcription Factors - genetics
/ Tumors
/ Urinary Bladder Neoplasms - pathology
/ Urothelial carcinoma
/ Urothelium
/ Urothelium - pathology
2024
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The urothelial gene regulatory network: understanding biology to improve bladder cancer management
by
Ramal, Maria
, Lapi, Eleonora
, Real, Francisco X.
, Corral, Sonia
, Kalisz, Mark
in
13/51
/ 38/39
/ 631/337/572
/ 631/67/68
/ 64/60
/ 82/1
/ Activator protein 1
/ Apoptosis
/ Basal cells
/ Biomarkers, Tumor - genetics
/ Bladder
/ Bladder cancer
/ Carcinoma, Transitional Cell - pathology
/ Cell Biology
/ Cell differentiation
/ Circadian rhythms
/ Epithelium
/ GATA-3 protein
/ Gene expression
/ Gene Regulatory Networks
/ Genomic analysis
/ Genomics
/ Human Genetics
/ Humans
/ Internal Medicine
/ Medicine
/ Medicine & Public Health
/ Oncology
/ Organoids
/ Phenotypes
/ Review Article
/ Sex hormones
/ Transcription factors
/ Transcription Factors - genetics
/ Tumors
/ Urinary Bladder Neoplasms - pathology
/ Urothelial carcinoma
/ Urothelium
/ Urothelium - pathology
2024
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The urothelial gene regulatory network: understanding biology to improve bladder cancer management
by
Ramal, Maria
, Lapi, Eleonora
, Real, Francisco X.
, Corral, Sonia
, Kalisz, Mark
in
13/51
/ 38/39
/ 631/337/572
/ 631/67/68
/ 64/60
/ 82/1
/ Activator protein 1
/ Apoptosis
/ Basal cells
/ Biomarkers, Tumor - genetics
/ Bladder
/ Bladder cancer
/ Carcinoma, Transitional Cell - pathology
/ Cell Biology
/ Cell differentiation
/ Circadian rhythms
/ Epithelium
/ GATA-3 protein
/ Gene expression
/ Gene Regulatory Networks
/ Genomic analysis
/ Genomics
/ Human Genetics
/ Humans
/ Internal Medicine
/ Medicine
/ Medicine & Public Health
/ Oncology
/ Organoids
/ Phenotypes
/ Review Article
/ Sex hormones
/ Transcription factors
/ Transcription Factors - genetics
/ Tumors
/ Urinary Bladder Neoplasms - pathology
/ Urothelial carcinoma
/ Urothelium
/ Urothelium - pathology
2024
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The urothelial gene regulatory network: understanding biology to improve bladder cancer management
Journal Article
The urothelial gene regulatory network: understanding biology to improve bladder cancer management
2024
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Overview
The urothelium is a stratified epithelium composed of basal cells, one or more layers of intermediate cells, and an upper layer of differentiated umbrella cells. Most bladder cancers (BLCA) are urothelial carcinomas. Loss of urothelial lineage fidelity results in altered differentiation, highlighted by the taxonomic classification into basal and luminal tumors. There is a need to better understand the urothelial transcriptional networks. To systematically identify transcription factors (TFs) relevant for urothelial identity, we defined highly expressed TFs in normal human bladder using RNA-Seq data and inferred their genomic binding using ATAC-Seq data. To focus on epithelial TFs, we analyzed RNA-Seq data from patient-derived organoids recapitulating features of basal/luminal tumors. We classified TFs as “luminal-enriched”, “basal-enriched” or “common” according to expression in organoids. We validated our classification by differential gene expression analysis in Luminal Papillary vs. Basal/Squamous tumors. Genomic analyses revealed well-known TFs associated with luminal (e.g., PPARG, GATA3, FOXA1) and basal (e.g., TP63, TFAP2) phenotypes and novel candidates to play a role in urothelial differentiation or BLCA (e.g., MECOM, TBX3). We also identified TF families (e.g., KLFs, AP1, circadian clock, sex hormone receptors) for which there is suggestive evidence of their involvement in urothelial differentiation and/or BLCA. Genomic alterations in these TFs are associated with BLCA. We uncover a TF network involved in urothelial cell identity and BLCA. We identify novel candidate TFs involved in differentiation and cancer that provide opportunities for a better understanding of the underlying biology and therapeutic intervention.
Publisher
Nature Publishing Group UK,Nature Publishing Group
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