Department of Pediatrics, Cincinnati Children's Hospital Medical Center, University of Cincinnati, Cincinnati, Ohio, USA.
Department of Pediatrics, Division of Cardiovascular Biology, Emory University School of Medicine, Atlanta, Georgia, USA.
JCI Insight. 2018 Nov 15;3(22):121689. doi: 10.1172/jci.insight.121689.
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.
线粒体钙单向转运体(MCU)复合物介导急性线粒体钙内流。在骨骼肌中,MCU 通过直接增强线粒体中关键代谢酶的活性将钙信号与能量产生联系起来。在这里,我们通过生成靶向敲除胚胎期、出生后和成年骨骼肌中 Mcu 的小鼠模型,研究了 MCU 在骨骼肌发育和代谢功能中的作用。Mcu 的缺失并不影响肌肉生长和成熟,也不会导致病理学变化。在小鼠中,骨骼肌特异性敲除 Mcu 也不会影响肌纤维内钙处理,但它会抑制钙刺激的急性线粒体钙内流和线粒体呼吸,导致小鼠急性运动性能下降。然而,Mcu 的缺失也导致疲劳条件下肌肉性能增强,优先转向脂肪酸代谢,导致衰老时体脂减少。总之,这些结果表明,MCU 介导的线粒体钙调节是骨骼肌在基线和增强的生理需求下燃料选择的基础,这影响整体稳态代谢。