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KDM6A Loss Triggers an Epigenetic Switch That Disrupts Urothelial Differentiation and Drives Cell Proliferation in
Hong Qiu1, Vladimir Makarov2, Jennifer K Bolzenius3
1Cardiovascular and Metabolic Sciences, Lerner Research Institute, Cleveland Clinic, Cleveland, Ohio.
Abstract:
Disruption of KDM6A, a histone lysine demethylase, is one of the most common somatic alternations in bladder cancer. Insights into how KDM6A mutations affect the epigenetic landscape to promote carcinogenesis could help reveal potential new treatment approaches. Here, we demonstrated that KDM6A loss triggers an epigenetic switch that disrupts urothelial differentiation and induces a neoplastic state characterized by increased cell proliferation. In bladder cancer cells with intact KDM6A, FOXA1 interacted with KDM6A to activate genes instructing urothelial differentiation. KDM6A-deficient cells displayed simultaneous loss of FOXA1 target binding and genome-wide redistribution of the bZIP transcription factor ATF3, which in turn repressed FOXA1-target genes and activated cell-cycle progression genes. Importantly, ATF3 depletion reversed the cell proliferation phenotype induced by KDM6A deficiency. These data establish that KDM6A loss engenders an epigenetic state that drives tumor growth in an ATF3-dependent manner, creating a potentially targetable molecular vulnerability.
Significance:
A gain-of-function epigenetic switch that disrupts differentiation is triggered by inactivating KDM6A mutations in bladder cancer and can serve as a potential target for novel therapies.
Insights
Loss of KDM6A in bladder cancer disrupts cell differentiation, promoting tumor growth via ATF3. Targeting this epigenetic switch offers a potential new therapeutic strategy.
Area of Science:
- Epigenetics
- Cancer Biology
- Molecular Oncology
Background:
- KDM6A (histone lysine demethylase) alterations are common in bladder cancer.
- Understanding KDM6A's role in carcinogenesis is crucial for developing new treatments.
Purpose of the Study:
- To investigate how KDM6A loss impacts the epigenetic landscape in bladder cancer.
- To identify molecular mechanisms driving KDM6A-deficient bladder cancer.
Main Methods:
- Analysis of KDM6A-deficient bladder cancer cells.
- Chromatin immunoprecipitation to assess transcription factor binding.
- Gene expression analysis to identify regulated pathways.
Main Results:
- KDM6A loss disrupts urothelial differentiation and promotes proliferation.
- KDM6A loss leads to decreased FOXA1 binding and ATF3 redistribution.
- ATF3 represses differentiation genes and activates cell cycle genes.
- ATF3 depletion reverses KDM6A-loss-induced proliferation.
Conclusions:
- KDM6A loss triggers an epigenetic switch driving bladder cancer growth.
- This process is dependent on the transcription factor ATF3.
- KDM6A deficiency creates an ATF3-dependent vulnerability targetable for therapy.
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