Excessive mitochondrial fission and associated extracellular mitochondria mediate cardiac dysfunction in obesity
Sin-Jin Li1, Laura H Tetri2, Vijith Vijayan3
1Bachelor Program of Biotechnology and Food and Nutrition, National Taiwan University, Taipei 10617, Taiwan; Institute of Biotechnology, National Taiwan University, Taipei 10617, Taiwan; Department of Animal Science and Technology, National Taiwan University, Taipei 10672, Taiwan.
Aims:
Obesity cardiomyopathy (OCM) is associated with mitochondrial dysfunction caused by altered mitochondrial dynamics. Extracellular mitochondria (exMito) are released following tissue injury under various conditions. While the excessive mitochondrial fission-mediated release of exMito as a mechanism for mitochondrial quality control in several inflammatory disorders, its role in OCM remains unclear. The present work aimed to determine if excessive mitochondrial fission and associated exMito mediate the chronic inflammatory response and cardiac remodeling in OCM.
Materials And Methods:
H9c2 cardiomyoblasts were treated with 200 μM palmitate (PA) to induce lipotoxicity. C57BL/6J mice were fed a high-fat diet (HFD) for 12 weeks to induce OCM. P110, a peptide inhibitor of Drp1/Fis1 interaction, was used to evaluate the impact of excessive mitochondrial fission on cardiac mitochondrial function, quality, and quantity of exMito, systemic inflammatory response, and cardiac contractile function in both models of OCM.
Key Findings:
PA induced excessive mitochondrial fission, increased oxidative stress, decreased ATP level, and damaged exMito release in vitro. Exposure of naïve cardiomyoblasts to exMito isolated from PA treated cells resulted in mitochondrial dysfunction and a pro-inflammatory response. In vivo, HFD induced cardiac mitochondrial and contractile dysfunction, exMito release, and a pro-inflammatory response. Inhibition of Drp1/Fis1 interaction with P110 attenuated the observed effects both in vitro and in vivo.
Significance:
P110 limited lipid-induced mitochondrial dysfunction and decreased exMito release, subsequently improving the inflammatory state and contractile function in our OCM model. Drp1/Fis1 dependent fission and associated exMito release might serve as a therapeutic target for obesity induced cardiomyopathy.
Insights
Excessive mitochondrial fission releases extracellular mitochondria, driving inflammation and dysfunction in obesity cardiomyopathy. Inhibiting this process with P110 improved cardiac function and reduced inflammation in a preclinical model.
Area of Science:
- Cardiovascular Biology
- Mitochondrial Biology
- Obesity Research
Background:
- Obesity cardiomyopathy (OCM) involves mitochondrial dysfunction and altered dynamics.
- Extracellular mitochondria (exMito) are released during tissue injury.
- The role of excessive mitochondrial fission and exMito release in OCM is not well understood.
Purpose of the Study:
- To investigate if excessive mitochondrial fission and subsequent exMito release contribute to OCM.
- To determine the impact of inhibiting mitochondrial fission on OCM pathology.
Main Methods:
- In vitro: H9c2 cardiomyoblasts treated with palmitate (PA) to model lipotoxicity.
- In vivo: C57BL/6J mice fed a high-fat diet (HFD) for 12 weeks to induce OCM.
- Pharmacological inhibition of Drp1/Fis1 interaction using peptide P110.
Main Results:
- PA induced mitochondrial fission, oxidative stress, reduced ATP, and exMito release in vitro.
- ExMito from PA-treated cells caused mitochondrial dysfunction and inflammation in naïve cells.
- HFD induced cardiac dysfunction, exMito release, and inflammation in vivo.
- P110 treatment attenuated these detrimental effects in both in vitro and in vivo models.
Conclusions:
- Inhibition of Drp1/Fis1-dependent mitochondrial fission with P110 ameliorated lipotoxicity-induced mitochondrial dysfunction and exMito release.
- P110 treatment improved the inflammatory state and cardiac contractile function in the OCM model.
- Targeting Drp1/Fis1-mediated fission and exMito release presents a potential therapeutic strategy for OCM.
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