The Valosin-Containing Protein Protects the Heart Against Pathological Ca2+ Overload by Modulating Ca2+ Uptake Proteins

Author:

Stoll Shaunrick12,Xi Jing1,Ma Ben13,Leimena Christiana1,Behringer Erik J2,Qin Gangjian4,Qiu Hongyu13

Affiliation:

1. *Division of Physiology, Department of Basic Sciences, School of Medicine, Loma Linda University, Loma Linda, California 92350

2. Division of Pharmacology, Department of Basic Sciences, School of Medicine, Loma Linda University, Loma Linda, California 92350

3. Center of Molecular and Translational Medicine, Institution of Biomedical Science, Georgia State University, Atlanta, Georgia 30303

4. Department of Biomedical Engineering, Molecular Cardiology Program, School of Medicine and School of Engineering, University of Alabama at Birmingham, Birmingham, Alabama 35294-0019

Abstract

Abstract Stress-induced mitochondrial calcium (Ca2+) overload is a key cellular toxic effectors and a trigger of cardiomyocyte death during cardiac ischemic injury through the opening of mitochondrial permeability transition pore (mPTP). We previously found that the valosin-containing protein (VCP), an ATPase-associated protein, protects cardiomyocytes against stress-induced death and also inhibits mPTP opening in vitro. However, the underlying molecular mechanisms are not fully understood. Here, we tested our hypothesis that VCP acts as a novel regulator of mitochondrial Ca2+ uptake proteins and resists cardiac mitochondrial Ca2+ overload by modulating mitochondrial Ca2+ homeostasis. By using a cardiac-specific transgenic (TG) mouse model in which VCP is overexpressed by 3.5 folds in the heart compared to the wild type (WT) mouse, we found that, under the pathological extra-mitochondrial Ca2+ overload, Ca2+ entry into cardiac mitochondria was reduced in VCP TG mice compared to their little-matched WT mice, subsequently preventing mPTP opening and ATP depletion under the Ca2+ challenge. Mechanistically, overexpression of VCP in the heart resulted in post-translational protein degradation of the mitochondrial Ca2+ uptake protein 1, an activator of the mitochondria Ca2+ uniporter that is responsible for mitochondrial calcium uptake. Together, our results reveal a new regulatory role of VCP in cardiac mitochondrial Ca2+ homeostasis and unlock the potential mechanism by which VCP confers its cardioprotection.

Funder

National Institutes of Health

Publisher

Oxford University Press (OUP)

Subject

Toxicology

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