FAM210A regulates mitochondrial translation and maintains cardiac mitochondrial homeostasis

Author:

Wu Jiangbin1ORCID,Subbaiah Kadiam C Venkata1,Hedaya Omar12,Chen Si1,Munger Joshua2,Tang Wai Hong Wilson3,Yan Chen1ORCID,Yao Peng1245ORCID

Affiliation:

1. Aab Cardiovascular Research Institute, Department of Medicine, University of Rochester School of Medicine & Dentistry , 601 Elmwood Avenue, Rochester, NY 14642 , USA

2. Department of Biochemistry & Biophysics, University of Rochester School of Medicine & Dentistry , 601 Elmwood Avenue, Rochester, NY 14642 , USA

3. Department of Cardiovascular Medicine, Cleveland Clinic , 9500 Euclid Avenue, Cleveland, OH 44195 , USA

4. The Center for RNA Biology, University of Rochester School of Medicine & Dentistry , 601 Elmwood Avenue, Rochester, NY 14642 , USA

5. The Center for Biomedical Informatics, University of Rochester School of Medicine & Dentistry , 601 Elmwood Avenue, Rochester, NY 14642 , USA

Abstract

Abstract Aims Mitochondria play a vital role in cellular metabolism and energetics and support normal cardiac function. Disrupted mitochondrial function and homeostasis cause a variety of heart diseases. Fam210a (family with sequence similarity 210 member A), a novel mitochondrial gene, is identified as a hub gene in mouse cardiac remodelling by multi-omics studies. Human FAM210A mutations are associated with sarcopenia. However, the physiological role and molecular function of FAM210A remain elusive in the heart. We aim to determine the biological role and molecular mechanism of FAM210A in regulating mitochondrial function and cardiac health in vivo. Methods and results Tamoxifen-induced αMHCMCM-driven conditional knockout of Fam210a in the mouse cardiomyocytes induced progressive dilated cardiomyopathy and heart failure, ultimately causing mortality. Fam210a deficient cardiomyocytes exhibit severe mitochondrial morphological disruption and functional decline accompanied by myofilament disarray at the late stage of cardiomyopathy. Furthermore, we observed increased mitochondrial reactive oxygen species production, disturbed mitochondrial membrane potential, and reduced respiratory activity in cardiomyocytes at the early stage before contractile dysfunction and heart failure. Multi-omics analyses indicate that FAM210A deficiency persistently activates integrated stress response, resulting in transcriptomic, translatomic, proteomic, and metabolomic reprogramming, ultimately leading to pathogenic progression of heart failure. Mechanistically, mitochondrial polysome profiling analysis shows that FAM210A loss of function compromises mitochondrial mRNA translation and leads to reduced mitochondrial-encoded proteins, followed by disrupted proteostasis. We observed decreased FAM210A protein expression in human ischaemic heart failure and mouse myocardial infarction tissue samples. To further corroborate FAM210A function in the heart, AAV9-mediated overexpression of FAM210A promotes mitochondrial-encoded protein expression, improves cardiac mitochondrial function, and partially rescues murine hearts from cardiac remodelling and damage in ischaemia-induced heart failure. Conclusion These results suggest that FAM210A is a mitochondrial translation regulator to maintain mitochondrial homeostasis and normal cardiomyocyte contractile function. This study also offers a new therapeutic target for treating ischaemic heart disease.

Funder

National Institutes of Health

Aab Cardiovascular Research Institute of the University of Rochester Medical Center

American Heart Association Postdoctoral Fellowship

Career Development Award

NIH T32 Fellowship

Publisher

Oxford University Press (OUP)

Subject

Physiology (medical),Cardiology and Cardiovascular Medicine,Physiology

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