Hydrogen sulfide mitigates homocysteine-mediated pathological remodeling by inducing miR-133a in cardiomyocytes

Varun Kesherwani1, Shyam Sundar Nandi, Surender K Sharawat

  • 1Department of Cellular and Integrative Physiology, University of Nebraska Medical Center, 668 S 41st Street, DRC1, Room 5047, Omaha, NE, 68198-5850, USA.

Insights

Hydrogen sulfide (H2S) protects against high homocysteine (HHcy)-induced heart cell enlargement. H2S activates MEF2C to boost miR-133a, reducing cardiac hypertrophy. This reveals a novel protective mechanism for heart health.

Area of Science:

  • Cardiovascular Biology
  • Molecular Cardiology
  • Gasotransmitter Signaling

Background:

  • Hyperhomocysteinemia (HHcy) is linked to pathological cardiac remodeling.
  • Hydrogen sulfide (H2S) exhibits cardioprotective effects, but its mechanism against HHcy is unclear.

Purpose of the Study:

  • To investigate if H2S mitigates HHcy-induced cardiac hypertrophy by upregulating miR-133a.
  • To elucidate the molecular mechanism involving MEF2C and HDAC1.

Main Methods:

  • HL1 cardiomyocytes were treated with homocysteine (Hcy) and/or H2S.
  • Hypertrophy markers (c-fos, ANP, β-MHC), miR-133a, and MEF2C levels were quantified.
  • MEF2C activity was assessed via MEF2C-HDAC1 interaction.

Main Results:

  • H2S reversed Hcy-induced upregulation of hypertrophy markers and downregulation of MEF2C and miR-133a.
  • HHcy promoted MEF2C-HDAC1 complex formation, inhibiting MEF2C and miR-133a.
  • H2S disrupted the MEF2C-HDAC1 complex, activating MEF2C and increasing miR-133a.

Conclusions:

  • HHcy induces cardiac hypertrophy via MEF2C inactivation and miR-133a suppression.
  • H2S mitigates HHcy-induced cardiac hypertrophy by activating MEF2C and inducing miR-133a.
  • This study reveals a novel mechanism of H2S-mediated cardioprotection in HHcy.

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