BRWD3 promotes KDM5 degradation to maintain H3K4 methylation levels

Dongsheng Han1, Samantha H Schaffner1, Jonathan P Davies1

  • 1Department of Biological Sciences, Vanderbilt University, Nashville, TN, 37212, USA.

Insights

BRWD3 protein regulates histone methylation by controlling the degradation of KDM5 demethylase. This mechanism balances H3K4me1 and H3K4me3 levels, impacting gene expression and potentially disease states.

Area of Science:

  • Epigenetics and Gene Regulation
  • Molecular Biology
  • Cancer Research

Background:

  • Histone modifications, such as H3K4 methylation, are crucial for chromatin structure and gene expression.
  • Dysregulation of histone modifications is linked to diseases, including cancer.
  • The chromatin-binding protein BRWD3's role in H3K4 methylation was previously undefined.

Approach:

  • Investigated the mechanism linking BRWD3 to H3K4 methylation using immunoprecipitation and quantitative mass spectrometry.
  • Analyzed ChIP-seq data to assess the co-localization of BRWD3 and KDM5 (H3K4-specific demethylase).
  • Examined the effect of BRWD3 depletion on KDM5 ubiquitination, degradation, and H3K4 methylation levels.

Key Points:

  • BRWD3 depletion increases H3K4me1 and decreases H3K4me3 levels.
  • BRWD3 interacts with and promotes the K48-linked polyubiquitination and degradation of KDM5.
  • KDM5 degradation is dependent on BRWD3 and Cul4.
  • Depleting KDM5 rescues H3K4me3 and partially rescues H3K4me1 levels upon BRWD3 depletion.

Conclusions:

  • BRWD3 acts as a regulator of KDM5 demethylase activity to maintain balanced H3K4 methylation.
  • This BRWD3-KDM5 axis provides a novel mechanism for controlling histone methylation states.
  • Understanding this pathway may offer new therapeutic targets for diseases associated with aberrant histone modifications.

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