Mitochondrial substrate utilization regulates cardiomyocyte cell-cycle progression

被引:0
|
作者
Alisson C. Cardoso
Nicholas T. Lam
Jainy J. Savla
Yuji Nakada
Ana Helena M. Pereira
Abdallah Elnwasany
Ivan Menendez-Montes
Emily L. Ensley
Ursa Bezan Petric
Gaurav Sharma
A. Dean Sherry
Craig R. Malloy
Chalermchai Khemtong
Michael T. Kinter
Wilson Lek Wen Tan
Chukwuemeka G. Anene-Nzelu
Roger Sik-Yin Foo
Ngoc Uyen Nhi Nguyen
Shujuan Li
Mahmoud Salama Ahmed
Waleed M. Elhelaly
Salim Abdisalaam
Aroumougame Asaithamby
Chao Xing
Mohammed Kanchwala
Gonçalo Vale
Kaitlyn M. Eckert
Matthew A. Mitsche
Jeffrey G. McDonald
Joseph A. Hill
Linzhang Huang
Philip W. Shaul
Luke I. Szweda
Hesham A. Sadek
机构
[1] University of Texas Southwestern Medical Center,Department of Internal Medicine
[2] Brazilian Center for Research in Energy and Materials (CNPEM),Brazilian Biosciences National Laboratory
[3] University of Texas Southwestern Medical Center,Advanced Imaging Research Center
[4] University of Texas Southwestern Medical Center,Department of Radiology
[5] University of Texas at Dallas,Department of Chemistry
[6] Oklahoma Medical Research Foundation,Aging and Metabolism Research Program
[7] Cardiovascular Research Institute,Department of Pediatric Cardiology
[8] National University Singapore; Genome Institute of Singapore,Department of Radiation Oncology
[9] The First Affiliated Hospital,McDermontt Center for Human Growth and Development
[10] Sun Yat-sen University,Center for Human Nutrition
[11] NHC Key Laboratory of Assisted Circulation (Sun Yat-sen University),Department of Molecular Genetics
[12] University of Texas Southwestern Medical Center,Center for Pulmonary and Vascular Biology, Department of Pediatrics
[13] University of Texas Southwestern Medical Center,Center for Regenerative Science and Medicine
[14] University of Texas Southwestern Medical Center,undefined
[15] University of Texas Southwestern Medical Center,undefined
[16] University of Texas Southwestern Medical Center,undefined
[17] University of Texas Southwestern Medical Center,undefined
来源
Nature Metabolism | 2020年 / 2卷
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摘要
The neonatal mammalian heart is capable of regeneration for a brief window of time after birth. However, this regenerative capacity is lost within the first week of life, which coincides with a postnatal shift from anaerobic glycolysis to mitochondrial oxidative phosphorylation, particularly towards fatty-acid utilization. Despite the energy advantage of fatty-acid beta-oxidation, cardiac mitochondria produce elevated rates of reactive oxygen species when utilizing fatty acids, which is thought to play a role in cardiomyocyte cell-cycle arrest through induction of DNA damage and activation of DNA-damage response (DDR) pathway. Here we show that inhibiting fatty-acid utilization promotes cardiomyocyte proliferation in the postnatal heart. First, neonatal mice fed fatty-acid-deficient milk showed prolongation of the postnatal cardiomyocyte proliferative window; however, cell-cycle arrest eventually ensued. Next, we generated a tamoxifen-inducible cardiomyocyte-specific pyruvate dehydrogenase kinase 4 (PDK4) knockout mouse model to selectively enhance oxidation of glycolytically derived pyruvate in cardiomyocytes. Conditional PDK4 deletion resulted in an increase in pyruvate dehydrogenase activity and consequently an increase in glucose relative to fatty-acid oxidation. Loss of PDK4 also resulted in decreased cardiomyocyte size, decreased DNA damage and expression of DDR markers and an increase in cardiomyocyte proliferation. Following myocardial infarction, inducible deletion of PDK4 improved left ventricular function and decreased remodelling. Collectively, inhibition of fatty-acid utilization in cardiomyocytes promotes proliferation, and may be a viable target for cardiac regenerative therapies.
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页码:167 / 178
页数:11
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