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Jmjd4 Facilitates Pkm2 Degradation in Cardiomyocytes and Is Protective Against Dilated Cardiomyopathy
Yansong Tang1, Mengying Feng2, Yang Su1
1Department of Cardiology, Shanghai Tenth People's Hospital, Tongji University School of Medicine, China (Y.T., Y.S., T.M., Y.X., D.X.).
Insights
JMJD4 protein deficiency causes dilated cardiomyopathy (DCM) by accumulating Pkm2, impairing cardiac metabolism. Targeting JMJD4 and Pkm2 offers a potential therapeutic strategy for DCM and related heart conditions.
Area of Science:
- Cardiovascular Biology
- Molecular Metabolism
- Epigenetics
Background:
- Dilated cardiomyopathy (DCM) pathogenesis remains unclear, with many cases lacking identified genetic causes.
- Altered cellular responses to metabolic stress are implicated in DCM.
- The role of JMJD family proteins, involved in cardiovascular diseases, in DCM is unknown.
Purpose of the Study:
- To investigate the role of JMJD4 in the development of DCM.
- To elucidate the molecular mechanisms by which JMJD4 influences cardiac metabolism and hypertrophy.
Main Methods:
- Examined JMJD4 expression in DCM patients.
- Utilized in vivo conditional knockout and overexpression models of JMJD4 in cardiomyocytes.
- Employed RNA sequencing, metabolite profiling, and mass spectrometry.
Main Results:
- JMJD4 expression is significantly reduced in DCM hearts.
- JMJD4 deficiency in cardiomyocytes causes DCM with impaired mitochondrial respiration.
- JMJD4 targets Pkm2 for degradation via chaperone-mediated autophagy, preventing its accumulation.
Conclusions:
- JMJD4 maintains cardiac metabolic homeostasis by degrading Pkm2.
- JMJD4 and Pkm2 represent potential therapeutic targets for DCM and cardiac metabolic dysfunction.
Background:
A large portion of idiopathic and familial dilated cardiomyopathy (DCM) cases have no obvious causal genetic variant. Although altered response to metabolic stress has been implicated, the molecular mechanisms underlying the pathogenesis of DCM remain elusive. The JMJD family proteins, initially identified as histone deacetylases, have been shown to be involved in many cardiovascular diseases. Despite their increasingly diverse functions, whether JMJD family members play a role in DCM remains unclear.
Methods:
We examined Jmjd4 expression in patients with DCM, and conditionally deleted and overexpressed Jmjd4 in cardiomyocytes in vivo to investigate its role in DCM. RNA sequencing, metabolites profiling, and mass spectrometry were used to dissect the molecular mechanism of Jmjd4-regulating cardiac metabolism and hypertrophy.
Results:
We found that expression of Jmjd4 is significantly decreased in hearts of patients with DCM. Induced cardiomyocyte-specific deletion of Jmjd4 led to spontaneous DCM with severely impaired mitochondrial respiration. Pkm2, the less active pyruvate kinase compared with Pkm1, which is normally absent in healthy adult cardiomyocytes but elevated in cardiomyopathy, was found to be drastically accumulated in hearts with Jmjd4 deleted. Jmjd4 was found mechanistically to interact with Hsp70 to mediate degradation of Pkm2 through chaperone-mediated autophagy, which is dependent on hydroxylation of K66 of Pkm2 by Jmjd4. By enhancing the enzymatic activity of the abundant but less active Pkm2, TEPP-46, a Pkm2 agonist, showed a significant therapeutic effect on DCM induced by Jmjd4 deficiency, and heart failure induced by pressure overload, as well.
Conclusions:
Our results identified a novel role of Jmjd4 in maintaining metabolic homeostasis in adult cardiomyocytes by degrading Pkm2 and suggest that Jmjd4 and Pkm2 may be therapeutically targeted to treat DCM, and other cardiac diseases with metabolic dysfunction, as well.
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