VDAC2 malonylation participates in sepsis-induced myocardial dysfunction via mitochondrial-related ferroptosis

Han She1,2, Lei Tan1,2, Yuanlin Du2

  • 1State Key Laboratory of Trauma, Burns and Combined Injury, Shock and Transfusion Department, Daping Hospital, Army Medical University, Chongqing400042, China.

Insights

Sepsis-induced myocardial dysfunction involves elevated VDAC2 malonylation, leading to ferroptosis and heart injury. Targeting this modification with therapies like TPP-AAV shows promise for treating sepsis-related heart problems.

Area of Science:

  • Biochemistry
  • Cardiology
  • Molecular Biology

Background:

  • Sepsis-induced myocardial dysfunction (SIMD) is a severe condition with unclear mechanisms and few treatments.
  • Understanding the molecular basis of SIMD is crucial for developing effective therapies.

Purpose of the Study:

  • To investigate the role of voltage-dependent anion channel 2 (VDAC2) malonylation in SIMD.
  • To explore the therapeutic potential of targeting VDAC2 malonylation.

Main Methods:

  • Sepsis models were established using cecal ligation and puncture and lipopolysaccharide (LPS) in vitro and vivo.
  • VDAC2 malonylation, malonyl-CoA levels, and ferroptosis were analyzed using mass spectrometry and LC-MS-based metabolomics.
  • Molecular dynamic simulations and circular dichroism were employed to study VDAC2 structure and function.

Main Results:

  • VDAC2 lysine malonylation significantly increased in sepsis models.
  • VDAC2 malonylation altered its N-terminus structure, causing mitochondrial dysfunction, increased ROS, and ferroptosis.
  • Malonyl-CoA was identified as the inducer of VDAC2 malonylation; its inhibition reduced ferroptosis and alleviated SIMD.
  • Mitochondria-targeting nano material TPP-AAV inhibited VDAC2 malonylation and ameliorated myocardial dysfunction.

Conclusions:

  • VDAC2 malonylation is a key factor in sepsis-induced myocardial dysfunction.
  • Targeting VDAC2 malonylation, potentially via strategies like TPP-AAV, offers a promising therapeutic avenue for SIMD.

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