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BCKDK protects against obesity-induced cardiac remodelling and dysfunction by alleviating mitochondrial oxidative
1Department of Endocrinology, Zhongda Hospital, Institute of Diabetes, School of Medicine, Southeast University, Nanjing, Jiangsu, China.
Aims:
Impaired branched-chain amino acid (BCAA) catabolism has been implicated in obesity cardiomyopathy (OCM), and systemic inhibition of branched-chain ketoacid dehydrogenase kinase (BCKDK), a key negative regulator of BCAA oxidation, improves cardiac function. However, whether cardiomyocyte-specific manipulation of BCAA catabolism is sufficient to confer cardioprotection remains unknown.
Methods And Results:
Cardiomyocyte-specific BCKDK knockout and overexpression mouse models were generated and subjected to high-fat diet feeding, followed by echocardiography, transcriptomic, metabolomic, and molecular analyses. The mechanistic findings were further validated using in vitro experiments. Despite reduced myocardial BCAA levels, cardiomyocyte-specific BCKDK deletion unexpectedly exacerbated cardiac dysfunction and ventricular remodelling in OCM. Consistently, cardiac BCKDK expression was reduced in OCM. In contrast, cardiomyocyte-specific BCKDK overexpression improved cardiac function and remodelling, accompanied by a further reduction in myocardial BCAA levels, attenuation of mitochondrial oxidative stress, and suppression of MAPK-driven inflammatory signalling. Mechanistically, BCKDK reprogrammed mitochondrial metabolism to restrain oxidative stress. Moreover, mitochondrial ROS scavenging with MitoTEMPO alleviated mitochondrial dysfunction, and reversed the MAPK activation induced by BCKDK deficiency in vitro.
Conclusion:
These findings reveal an unexpected BCAA-independent role of BCKDK in preserving cardiomyocyte mitochondrial function and restraining inflammatory signalling in OCM. Our study identifies cardiomyocyte-intrinsic BCKDK as a potential therapeutic target, while cautioning against overestimating the cardioprotective effects of systemic BCKDK inhibition, which may be driven primarily by extracardiac mechanisms.
Insights
Targeting branched-chain ketoacid dehydrogenase kinase (BCKDK) in heart cells unexpectedly worsened obesity cardiomyopathy. However, increasing BCKDK in these cells protected the heart by reducing oxidative stress and inflammation.
Area of Science:
- Cardiovascular Biology
- Metabolic Diseases
- Mitochondrial Function
Background:
- Impaired branched-chain amino acid (BCAA) catabolism is linked to obesity cardiomyopathy (OCM).
- Systemic inhibition of BCKDK, a regulator of BCAA oxidation, shows cardioprotective effects.
- The role of cardiomyocyte-specific BCKDK in OCM is not well understood.
Purpose of the Study:
- To investigate the impact of cardiomyocyte-specific BCKDK manipulation on cardiac function in OCM.
- To elucidate the mechanisms underlying BCKDK's role in OCM.
Main Methods:
- Generated cardiomyocyte-specific BCKDK knockout and overexpression mouse models.
- Utilized high-fat diet feeding, echocardiography, transcriptomics, metabolomics, and in vitro validation.
- Assessed cardiac function, ventricular remodeling, mitochondrial oxidative stress, and inflammatory signaling.
Main Results:
- Cardiomyocyte-specific BCKDK deletion exacerbated cardiac dysfunction and remodeling in OCM.
- Overexpression of cardiomyocyte BCKDK improved cardiac function and remodeling.
- BCKDK overexpression reduced oxidative stress and suppressed MAPK-driven inflammation.
Conclusions:
- Cardiomyocyte BCKDK plays a crucial role in preserving mitochondrial function and reducing inflammation in OCM, independent of BCAA levels.
- Cardiomyocyte-intrinsic BCKDK is a potential therapeutic target for OCM.
- Systemic BCKDK inhibition's benefits may stem from extracardiac effects.
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