Differential activation of TCA cycle activity and PDH flux by dichloroacetate in skeletal muscle measured by hyperpolarized [2-13C,3-2H3]pyruvate

Despite the central role of skeletal muscle bioenergetics in whole-body metabolic health, assessing mitochondrial oxidative phosphorylation and tricarboxylic acid (TCA) cycle activity in vivo remains a major challenge. While hyperpolarized [1- 13 C]pyruvate has been used to probe pyruvate dehydrogenase (PDH) flux to approximate TCA cycle activity, this approach relies on the unreliable assumption that PDH and TCA cycle fluxes are tightly coupled. Here, we demonstrate that hyperpolarized [2- 13 C,3- 2 H 3 ]pyruvate can track label-incorporation into TCA cycle-derived glutamate in rat skeletal muscle. Following intravenous dichloroacetate administration, we observed a greater increase in hyperpolarized [1- 13 C]acetyl-L-carnitine relative to [5- 13 C]glutamate, suggesting disproportionately increased PDH flux relative to TCA cycle flux. A similar trend was also observed in ex vivo GC-MS analysis of skeletal muscle tissue collected from rats injected with [U- 13 C 3 ]pyruvate. Together, these findings highlight the complex interplay between PDH and TCA cycle fluxes and establish hyperpolarized [2- 13 C,3- 2 H 3 ]pyruvate as a robust agent for assessing mitochondrial metabolism in skeletal muscle.

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Journal
iScience
Published
2026-08-27
DOI
https://doi.org/10.1016/j.isci.2026.117325
Primary Topic
Advanced NMR Techniques and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Differential activation of TCA cycle activity and PDH flux by dichloroacetate in skeletal muscle measured by hyperpolarized [2-13C,3-2H3]pyruvate

Blanka Kucejová, Jae Mo Park, Xiaorong Fu, Mai T. Huynh et al.
iScience
Advanced NMR Techniques and Applications
article

Differential activation of TCA cycle activity and PDH flux by dichloroacetate in skeletal muscle measured by hyperpolarized [2-13C,3-2H3]pyruvate

Blanka Kucejová, Jae Mo Park, Xiaorong Fu, Mai T. Huynh, Shawn C. Burgess, Thomas Jue, Sasanka Wathukara Dewage, Andrew Cho, Sung-Han Lin, Zohreh Erfani, Zoltán Kovács
article en

Abstract

Despite the central role of skeletal muscle bioenergetics in whole-body metabolic health, assessing mitochondrial oxidative phosphorylation and tricarboxylic acid (TCA) cycle activity in vivo remains a major challenge. While hyperpolarized [1- 13 C]pyruvate has been used to probe pyruvate dehydrogenase (PDH) flux to approximate TCA cycle activity, this approach relies on the unreliable assumption that PDH and TCA cycle fluxes are tightly coupled. Here, we demonstrate that hyperpolarized [2- 13 C,3- 2 H 3 ]pyruvate can track label-incorporation into TCA cycle-derived glutamate in rat skeletal muscle. Following intravenous dichloroacetate administration, we observed a greater increase in hyperpolarized [1- 13 C]acetyl-L-carnitine relative to [5- 13 C]glutamate, suggesting disproportionately increased PDH flux relative to TCA cycle flux. A similar trend was also observed in ex vivo GC-MS analysis of skeletal muscle tissue collected from rats injected with [U- 13 C 3 ]pyruvate. Together, these findings highlight the complex interplay between PDH and TCA cycle fluxes and establish hyperpolarized [2- 13 C,3- 2 H 3 ]pyruvate as a robust agent for assessing mitochondrial metabolism in skeletal muscle.

iScienceVol. 29(9)
Southwestern Medical Center (US), Advanced Imaging Research (United States) (US), University of California, Davis (US), The University of Texas Southwestern Medical Center (US)
Cancer Prevention and Research Institute of Texas, National Heart, Lung, and Blood Institute, NIH Office of the Director, National Institute of Diabetes and Digestive and Kidney Diseases, National Institute of Neurological Disorders and Stroke, National Institute of Biomedical Imaging and Bioengineering, National Center for Advancing Translational Sciences, U.S. Army Medical Research Acquisition Activity
Openalex Percentile: Top 20%
Advanced NMR Techniques and Applications
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