BRD4 and Cancer: going beyond transcriptional regulation

Benedetta Donati1, Eugenia Lorenzini1, Alessia Ciarrocchi2

  • 1Laboratory of Translational Research, Azienda Unità Sanitaria Locale-IRCCS di Reggio Emilia, Viale Risorgimento 80, 42123, Reggio Emilia, Italy.

Molecular Cancer
|November 24, 2018
PubMed

Insights

Bromodomain and Extraterminal (BET) protein BRD4 regulates oncogene expression and genome stability in cancer. New insights reveal BRD4

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • BRD4, a BET protein, is crucial for organizing super-enhancers and regulating oncogene expression in cancer.
  • BET inhibitors targeting BRD4 are in clinical trials, primarily acting by repressing oncogenes.

Purpose of the Study:

  • To explore BRD4's non-transcriptional roles in cancer beyond gene regulation.
  • To integrate known and novel functions of BRD4 to propose a unified model of its genomic function.
  • To re-interpret the cytotoxic effects of BET inhibitors based on BRD4's broader functions.

Main Methods:

  • Literature review and synthesis of current research on BRD4 functions.
  • Analysis of existing data on BET inhibitors' mechanisms of action.
  • Development of a conceptual model integrating transcriptional and non-transcriptional roles.

Main Results:

  • Emerging evidence highlights BRD4's critical role in maintaining genome stability.
  • BRD4 influences DNA damage response, checkpoint activation, repair, and telomere maintenance.
  • A comprehensive model is proposed for BRD4's dual role in gene regulation and genome integrity.

Conclusions:

  • BRD4's functions extend beyond transcription, impacting genome stability.
  • Understanding BRD4's multifaceted roles offers new therapeutic strategies for BET inhibitors in cancer.
  • BRD4's transversal functions suggest broader applications for BET inhibitors in clinical settings.

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