Serum Response Factor Expression in Excess Permits a Dual Contractile-Proliferative Phenotype of Airway Smooth Muscle

Rui Sun1, Xingning Pan1, Erin Ward1

  • 1Meakins-Christie Laboratories, The Research Institute of McGill University Health Centre, Montréal, Québec, Canada.

Insights

Myocardin (MyoCD) inhibits Elk-1 in airway smooth muscle cells, but increased serum response factor (SRF) allows both contractile and proliferative phenotypes. Targeting SRF may treat airway diseases.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Physiology

Background:

  • Airway smooth muscle cell (ASMC) phenotype alterations contribute to airway diseases.
  • Myocardin (MyoCD) and Elk-1 (ETS Like-1 protein) are transcription factors that competitively bind to serum response factor (SRF).
  • MyoCD and Elk-1 control myogenic and mitogenic gene expression, respectively, creating a contractile-versus-proliferative phenotype dichotomy.

Purpose of the Study:

  • To characterize MyoCD and Elk-1 interactions in human ASMCs.
  • To investigate their roles in ASMC phenotype determination.
  • To understand the impact of SRF upregulation on these interactions.

Main Methods:

  • Overexpression of MyoCD in human ASMCs.
  • Stimulation with epidermal growth factor (EGF) and fetal bovine serum (FBS).
  • Inhibition of the RhoA pathway.

Main Results:

  • MyoCD overexpression increased smooth muscle gene expression and force generation, inhibiting Elk-1 and EGF-induced proliferation.
  • MyoCD failed to suppress FBS-induced responses due to SRF upregulation.
  • RhoA pathway inhibition reversed SRF changes, enabling MyoCD to inhibit Elk-1 and suppress FBS-mediated gene upregulation.

Conclusions:

  • MyoCD can competitively inhibit Elk-1 function.
  • SRF upregulation allows a dual contractile-proliferative ASMC phenotype, potentially exacerbating pathological alterations.
  • Targeting SRF may inhibit pathological ASMC proliferation and contractile protein gene expression.

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