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The mitochondrial calcium uniporter underlies metabolic fuel preference in skeletal muscle
Jennifer Q. Kwong, Jiuzhou Huo, Michael J. Bround, Justin G. Boyer, Jennifer A. Schwanekamp, Nasab Ghazal, Joshua T. Maxwell, Young C. Jang, Zaza Khuchua, Kevin Shi, Donald M. Bers, Jennifer Davis, Jeffery D. Molkentin
Jennifer Q. Kwong, Jiuzhou Huo, Michael J. Bround, Justin G. Boyer, Jennifer A. Schwanekamp, Nasab Ghazal, Joshua T. Maxwell, Young C. Jang, Zaza Khuchua, Kevin Shi, Donald M. Bers, Jennifer Davis, Jeffery D. Molkentin
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Research Article Cardiology Muscle biology

The mitochondrial calcium uniporter underlies metabolic fuel preference in skeletal muscle

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Abstract

The mitochondrial Ca2+ uniporter (MCU) complex mediates acute mitochondrial Ca2+ influx. In skeletal muscle, MCU links Ca2+ signaling to energy production by directly enhancing the activity of key metabolic enzymes in the mitochondria. Here, we examined the role of MCU in skeletal muscle development and metabolic function by generating mouse models for the targeted deletion of Mcu in embryonic, postnatal, and adult skeletal muscle. Loss of Mcu did not affect muscle growth and maturation or otherwise cause pathology. Skeletal muscle–specific deletion of Mcu in mice also did not affect myofiber intracellular Ca2+ handling, but it did inhibit acute mitochondrial Ca2+ influx and mitochondrial respiration stimulated by Ca2+, resulting in reduced acute exercise performance in mice. However, loss of Mcu also resulted in enhanced muscle performance under conditions of fatigue, with a preferential shift toward fatty acid metabolism, resulting in reduced body fat with aging. Together, these results demonstrate that MCU-mediated mitochondrial Ca2+ regulation underlies skeletal muscle fuel selection at baseline and under enhanced physiological demands, which affects total homeostatic metabolism.

Authors

Jennifer Q. Kwong, Jiuzhou Huo, Michael J. Bround, Justin G. Boyer, Jennifer A. Schwanekamp, Nasab Ghazal, Joshua T. Maxwell, Young C. Jang, Zaza Khuchua, Kevin Shi, Donald M. Bers, Jennifer Davis, Jeffery D. Molkentin

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Figure 4

Mcu deletion in skeletal muscle causes a metabolic shift toward fatty acid oxidation.

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Mcu deletion in skeletal muscle causes a metabolic shift toward fatty a...
(A) Quantification of TA muscle–specific force following multiple rounds of fatigue in the indicated genotypes of mice. n = 6 (Mcufl/fl), n = 9 (Mcufl/fl-MyoD-Cre). Student’s 2-tailed t-test was used to analyze groups for statistical significance. *P < 0.05 versus Mcufl/fl control. kN, kilonewton. (B) Average RER values from 2-month-old mice of the indicated genotypes following 24 hours of fasting or (C) 24 hours of feeding. n = 4 per group. (D) Representative graph tracing of RER measurements taken throughout the rest-exhaustion-recovery experiment for mice subjected to treadmill running in metabolic cages. Exhaustion, recovery time, and recovery phases are indicated. (E) Quantification of average RER values at exhaustion and (F) during recovery time in the indicated groups. n = 8 per group. (G) O2 consumption rate (OCR) of isolated FDB myofibers when glucose was given as a metabolic substrate or (H) palmitate was given at the shown concentrations. The myofibers were isolated from n = 4 (Mcufl/fl), n = 4 (Mcufl/fl-MyoD-Cre) mice. (I) Western blot analysis-based quantification of phosphorylated PDHE1α (p-PDHE1α) and total PDH in gastrocnemius muscle harvested at exhaustion (n = 2 per group), 2 minutes after exhaustion (n = 3 per group), 5 minutes after exhaustion (n = 3 per group), and during recovery (n = 2 per group). (J) Malonyl-CoA levels measured by ELISA from quadriceps taken from mice 2 minutes after exhaustion. n = 3 per group. Student’s 2-tailed t-test was used for statistical analysis. Scatter plots show individual values and mean ± SEM. *P < 0.05 versus Mcufl/fl control.

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