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April 22, 2026Circulation Research0 citationsOpen Access

Exercise Metabolic Memory Halts Pathological Cardiac Hypertrophy via PDK4

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CZCankun ZhengHeart Failure / CardiomyopathyXHXiaoxia HuangSun Yat-sen UniversityXWXinnan WeiSouthern Medical University

Key Result

Exercise-induced metabolic memory prevents pathological cardiac hypertrophy by suppressing Pdk4 expression, leading to the accumulation of protective arachidonic acid metabolites.

Key Points

  • The research aims to uncover how exercise-induced hypertrophic preconditioning prevents pathological cardiac hypertrophy through metabolic memory mechanisms.
  • Utilized positron emission tomography/computed tomography for cardiac glucose uptake assessment.
  • Performed bulk RNA sequencing for myocardial gene profiling in EHP and sedentary mice.
  • Conducted genetic manipulation of Pdk4 and investigated metabolic changes using various assays and simulations.
  • EHP maintained myocardial glucose preference post-hypertrophy regression through METTL3-dependent m6A RNA methylation suppressing Pdk4.
  • Pdk4 overexpression negated cardioprotective effects of EHP, whereas Pdk4 deletion improved cardiac function under stress.
  • Metabolomic profiling revealed arachidonic acid metabolites that inhibit hypertrophy and fibrosis via ERK2/MAPK1 modulation.

Structured PICO

P
Population
Mice (sedentary and exercise-induced hypertrophic preconditioning [EHP] models, cardiac-specific Pdk4 knockout and control MCM [Myh6-MerCreMer] mice subjected to transverse aortic constriction) and neonatal rat cardiomyocytes/fibroblasts
I
Intervention
Exercise-induced hypertrophic preconditioning (EHP), genetic manipulation of Pdk4 (AAV-mediated overexpression and tamoxifen-inducible cardiac-specific knockout), and arachidonic acid-derived metabolites (5-KETE, 12-keto-leukotriene B4, and 20-hydroxy-leukotriene B4)
C
Comparator
Sedentary mice and control (MCM) mice
O
Outcome
Mechanisms of sustained metabolic memory, cardiac function, and fibrosis under pressure overloadsurrogate

Exercise-induced hypertrophic preconditioning protects against pathological cardiac remodeling through RNA methylation-dependent suppression of Pdk4 and the accumulation of protective arachidonic acid lipid mediators.

Abstract

Background: Pathological cardiac hypertrophy remains a major contributor to heart failure, with impaired glucose metabolism playing a central role. Although exercise is known to enhance myocardial glucose utilization, the long-term metabolic reprogramming effects of exercise and their role in preventing pathological hypertrophy are poorly understood. This study elucidates the mechanisms underlying the sustained metabolic memory induced by exercise-induced hypertrophic preconditioning (EHP) and its cardioprotective effects, with a focus on RNA methylation and arachidonic acid metabolism. Methods: We used positron emission tomography/computed tomography to assess cardiac glucose uptake and bulk RNA sequencing to profile myocardial gene expression in sedentary and EHP mice. Genetic manipulation of Pdk4 (pyruvate dehydrogenase kinase 4) was achieved via adeno-associated virus–mediated overexpression and tamoxifen-inducible, cardiac-specific Pdk4 knockout. Pressure overload was induced by transverse aortic constriction in cardiac-specific Pdk4 knockout and control (MCM Myh6 -MerCreMer) mice. Epigenetic regulation of Pdk4 by EHP was investigated using pyrosequencing, single-base elongation- and ligation-based quantitative polymerase chain reaction and dual-luciferase assays. Untargeted metabolomics and molecular docking, molecular dynamics simulation, and cellular thermal shift assay were performed on heart tissues and neonatal rat cardiomyocytes/fibroblasts to identify key metabolites and their mechanisms of action. Results: EHP conferred sustained myocardial glucose preference even after regression of physiological hypertrophy, mediated through METTL3-dependent m6A RNA methylation that suppressed Pdk4 expression. Pdk4 overexpression abolished EHP-mediated cardioprotection, whereas Pdk4 deletion enhanced cardiac function and attenuated fibrosis under pressure overload. Metabolomic profiling identified arachidonic acid–derived metabolites 5-KETE, 12-keto-leukotriene B4, and 20-hydroxy-leukotriene B4 as novel inhibitors of hypertrophy and fibrosis. These metabolites attenuated cardiomyocyte hypertrophy and fibroblast transdifferentiation through inhibition of the ERK (extracellular signal–regulated kinase) 2/MAPK1 pathway. Conclusions: This study establishes a unified mechanism by which EHP induces metabolic memory through RNA methylation–dependent suppression of Pdk4 , leading to altered arachidonic acid metabolism and the accumulation of protective lipid mediators. These findings highlight the therapeutic potential of targeting the PDK4–arachidonic acid metabolites axis to mitigate pathological cardiac remodeling.

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Cite This Study

Zheng et al. (2026) studied this question. Exercise-induced metabolic memory prevents pathological cardiac hypertrophy by suppressing Pdk4 expression, leading to the accumulation of protective arachidonic acid metabolites.

synapsesocial.com/papers/69e866ad6e0dea528ddeafb8https://doi.org/10.1161/circresaha.125.326889
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