PYGM Protects Against Myocardial Infarction by Enhancing Glycogenolysis and Facilitating Autophagic Flux

J Jing Gan R Ruyi Zhao (School of Pharmaceutical Sciences, Wenzhou Medical University, China (R.Z., M.W.).) D Dong Zhen Y Yue Peng (School of Environment) M Maolan Wu (School of Pharmaceutical Sciences, Wenzhou Medical University, China (R.Z., M.W.).) F Feifan Sun R Ruike An (Department of Neurosurgery, Wenzhou Central Hospital, Dingli Clinical Institute of Wenzhou Medical University, China (F.S., R.A., M.C.).) A Aimin Xu M Maohua Chen Y Yulin Li (Division of Life Science, Hong Kong University of Science and Technology) W Wei Lei Z Zhuofeng Lin F Fan Wu

Abstract

BACKGROUND: PYGM (muscle glycogen phosphorylase), the rate-limiting enzyme in glycogenolysis, plays an indispensable role in maintaining cardiac energy metabolism. However, the role of PYGM in the pathogenesis of myocardial infarction (MI) remains unclear. METHODS: The expression profiles of PYGM in cardiac tissues and plasma samples from subjects with MI were assessed using immunoblotting. The role of PYGM in MI was determined by evaluating the effects of PYGM deficiency and its replenishment through adeno-associated virus–mediated PYGM expression in mice with MI. RESULTS: We found that circulating PYGM levels and their cardiac contents were significantly decreased in patients with MI, which was associated with impaired cardiac function. Loss of PYGM significantly exacerbated MI-induced cardiac dysfunction and damage in mice, and replenishment of PYGM profoundly reversed these adverse effects. Mechanistically, PYGM enhanced glycogenolysis by activating glycolysis and the pentose phosphate pathway, thereby improving cardiac energy homeostasis and mitigating oxidative stress. In addition, PYGM improved MI-induced autophagic flux obstacles and alleviated MI-induced cardiac damage by suppressing the expression of Thbs1 (thrombospondin-1). Moreover, genetic deficiency or pharmacological blockage of autophagy attenuated the protective effects of PYGM against MI-induced cardiac injury, and cardiac-specific knockdown of Thbs1 substantially improved the adverse impact of MI on cardiac dysfunction and damage in PYGM-null mice. CONCLUSIONS: PYGM safeguards against MI-induced myocardial injury by stimulating glycogenolysis and promoting autophagic flux, thus preserving myocardial energy homeostasis.

Article Details

Journal Circulation
Volume / Issue Vol. 152, Issue 16
Published October 21, 2025
Pages 1146-1165
ISSN 0009-7322
Publisher Lippincott Williams & Wilkins

Journal Info

Circulation

Lippincott Williams & Wilkins

ISSN: 0009-7322 Health Sciences

Authors (13)

J

Jing Gan

R

Ruyi Zhao

School of Pharmaceutical Sciences, Wenzhou Medical University, China (R.Z., M.W.).

D

Dong Zhen

Y

Yue Peng

School of Environment

M

Maolan Wu

School of Pharmaceutical Sciences, Wenzhou Medical University, China (R.Z., M.W.).

F

Feifan Sun

R

Ruike An

Department of Neurosurgery, Wenzhou Central Hospital, Dingli Clinical Institute of Wenzhou Medical University, China (F.S., R.A., M.C.).

A

Aimin Xu

M

Maohua Chen

Y

Yulin Li

Division of Life Science, Hong Kong University of Science and Technology

W

Wei Lei

Z

Zhuofeng Lin

F

Fan Wu