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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.
Abstract:
Sepsis-induced myocardial dysfunction (SIMD) is a prevalent and severe form of organ dysfunction with elusive underlying mechanisms and limited treatment options. In this study, the cecal ligation and puncture and lipopolysaccharide (LPS) were used to reproduce sepsis model in vitro and vivo. The level of voltage-dependent anion channel 2 (VDAC2) malonylation and myocardial malonyl-CoA were detected by mass spectrometry and LC-MS-based metabolomics. Role of VDAC2 malonylation on cardiomyocytes ferroptosis and treatment effect of mitochondrial targeting nano material TPP-AAV were observed. The results showed that VDAC2 lysine malonylation was significantly elevated after sepsis. In addition, the regulation of VDAC2 lysine 46 (K46) malonylation by K46E and K46Q mutation affected mitochondrial-related ferroptosis and myocardial injury. The molecular dynamic simulation and circular dichroism further demonstrated that VDAC2 malonylation altered the N-terminus structure of the VDAC2 channel, causing mitochondrial dysfunction, increasing mitochondrial ROS levels, and leading to ferroptosis. Malonyl-CoA was identified as the primary inducer of VDAC2 malonylation. Furthermore, the inhibition of malonyl-CoA using ND-630 or ACC2 knock-down significantly reduced the malonylation of VDAC2, decreased the occurrence of ferroptosis in cardiomyocytes, and alleviated SIMD. The study also found that the inhibition of VDAC2 malonylation by synthesizing mitochondria targeting nano material TPP-AAV could further alleviate ferroptosis and myocardial dysfunction following sepsis. In summary, our findings indicated that VDAC2 malonylation plays a crucial role in SIMD and that targeting VDAC2 malonylation could be a potential treatment strategy for SIMD.
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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