Metabolic cycles: A unifying concept for energy transfer in the heart.

J Mol Cell Cardiol

McGovern Medical School - The University of Texas Health Science Center at Houston Department of Internal Medicine, Division of Cardiology, 6431 Fannin St. Houston, TX 77030, United States of America. Electronic address:

Published: October 2024

AI Article Synopsis

  • * Recent interest in iron supplementation to improve oxygen availability in heart failure aligns with observations that it can enhance mitochondrial pyruvate carrier (MPC) expression and increase levels of pyruvate, which may benefit energy transfer in heart cells.
  • * Data indicates that heart failure leads to reduced MPC expression and altered metabolite levels, suggesting that addressing MPC deficiency could support metabolic functions and potentially reverse heart dysfunction, such as cardiac hypertrophy and dilated cardiomyopathy.

Article Abstract

It is still debated whether changes in metabolic flux are cause or consequence of contractile dysfunction in non-ischemic heart disease. We have previously proposed a model of cardiac metabolism grounded in a series of six moiety-conserved, interconnected cycles. In view of a recent interest to augment oxygen availability in heart failure through iron supplementation, we integrated this intervention in terms of moiety conservation. Examining published work from both human and murine models, we argue this strategy restores a mitochondrial cycle of energy transfer by enhancing mitochondrial pyruvate carrier (MPC) expression and providing pyruvate as a substrate for carboxylation and anaplerosis. Metabolomic data from failing heart muscle reveal elevated pyruvate levels with a concomitant decrease in the levels of Krebs cycle intermediates. Additionally, MPC is downregulated in the same failing hearts, as well as under hypoxic conditions. MPC expression increases upon mechanical unloading in the failing human heart, as does contractile function. We note that MPC deficiency also alters expression of enzymes involved in pyruvate carboxylation and decarboxylation, increases intermediates of biosynthetic pathways, and eventually leads to cardiac hypertrophy and dilated cardiomyopathy. Collectively, we propose that an unbroken chain of moiety-conserved cycles facilitates energy transfer in the heart. We refer to the transport and subsequent carboxylation of pyruvate in the mitochondrial matrix as an example and a proposed target for metabolic support to reverse impaired contractile function.

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Source
http://dx.doi.org/10.1016/j.yjmcc.2024.08.002DOI Listing

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