Roles of Brd4 in Vascular Smooth Muscle Cells: Implications for Aging and Vascular Dysfunction

Jiaxing Sun1,2,3, Yu Gui1, Hao Yin4

  • 1Departments of Biochemistry and Molecular Biology & Physiology and Pharmacology (J.S., Y.G., B.Y., X.-L.Z.), Cumming School of Medicine, University of Calgary, Alberta, Canada.

Abstract

Insights

Bromodomain-containing protein 4 (Brd4) depletion in vascular smooth muscle cells induces senescence and exacerbates vascular aging. This highlights Brd4

Area of Science:

  • Epigenetics and aging research
  • Vascular biology and smooth muscle cell function
  • Molecular mechanisms of cellular senescence

Background:

  • Growing evidence links the epigenetic reader Brd4 to aging and related diseases.
  • The specific role of Brd4 in vascular aging, particularly in smooth muscle cell (SMC) senescence, is not well understood.

Purpose of the Study:

  • To investigate the mechanisms by which Brd4 influences vascular aging and SMC senescence.
  • To determine the functional consequences of Brd4 depletion in vascular smooth muscle cells both in vitro and in vivo.

Main Methods:

  • Brd4 inhibition and knockout in primary mouse aortic SMCs using chemical inhibitors (ARV-825, (+)-JQ1) and genetic manipulation (Ad-Cre virus).
  • Assessment of cellular senescence via SA-β-gal staining.
  • Generation of an inducible SMC-specific Brd4 knockout (SMC-Brd4-KO) mouse model.
  • Evaluation of vascular function (arterial contractility, blood pressure, stiffness) and response to angiotensin II (Ang II) in control and SMC-Brd4-KO mice.
  • Transcriptome profiling (RNA-sequencing) of aortic tissues.

Main Results:

  • Brd4 inhibition or knockdown in SMCs induced cellular senescence.
  • SMC-Brd4-KO mice showed increased aortic stiffness, blood pressure, and enhanced arterial contractility.
  • Brd4 expression was reduced in aged mouse aortas and senescent human SMCs.
  • SMC-Brd4-KO mice exhibited exacerbated vascular aging features upon Ang II infusion, with altered contractile responses and genetic changes, including downregulation of microtubule genes like Tuba4a.
  • Impaired autophagy and depleted α-tubulin were identified as potential mediators of Brd4 depletion-induced SMC senescence in vitro.

Conclusions:

  • Brd4 depletion in SMCs is sufficient to induce senescence and prevent neointima formation.
  • Brd4 plays a critical role in maintaining vascular function and preventing age-related vascular diseases.
  • Targeting Brd4 may offer therapeutic potential for vascular aging and related pathologies.

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