Lactate as an Exercise Mimetic: Mitigating Disuse Atrophy and Improving Muscle Endurance in Aging SAMP8 Mice.

IF 2.7 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Zhen Qi, Xi Liu, Yifen Chen, Linglin Zhang, Longhe Yang, Caihua Huang, Donghai Lin
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Abstract

Lactate, historically considered a metabolic byproduct, has emerged as a key regulator of muscle physiology and metabolism. This study explores its potential as an exercise mimetic to counteract disuse muscle atrophy (DMA) in aging skeletal muscle using a hindlimb suspension model in senescence-accelerated prone 8 (SAMP8) mice. The mice were divided into four groups: Control, lactate-treated control, hindlimb suspension, and hindlimb suspension with lactate intervention. Lactate administration preserved gastrocnemius muscle mass, restored muscle strength, and attenuated oxidative fiber atrophy. Electrophoretic and histological analyses showed increased MyHC I expression, indicating protection of oxidative fibers. Functional assessments revealed improved muscle endurance and contractile force, while metabolomic profiling identified changes in energy metabolism, amino acid metabolism, and protein synthesis pathways. Specifically, lactate improved impaired branched-chain amino acid metabolism, suggesting enhanced protein synthesis. In addition, lactate boosted Cori cycle activity, upregulated hepatic lactate transporters, and increased lactate dehydrogenase B activity, facilitating efficient lactate metabolism and gluconeogenesis. These results provide new insights into the role of lactate as a metabolic regulator and highlight its potential as a therapeutic intervention to combat exercise-induced muscle wasting and preserve muscle function in aging and immobilized individuals.

乳酸作为运动模拟物:减轻衰老SAMP8小鼠的废用性萎缩和提高肌肉耐力。
乳酸,历史上被认为是代谢副产物,已成为肌肉生理和代谢的关键调节剂。本研究在衰老加速倾向8 (SAMP8)小鼠的后肢悬吊模型中探索了其作为运动模拟物的潜力,以抵消老化骨骼肌中的废用肌萎缩(DMA)。将小鼠分为四组:对照组、乳酸处理组、后肢悬吊组和乳酸干预后肢悬吊组。乳酸能保持腓肠肌质量,恢复肌肉力量,减轻氧化纤维萎缩。电泳和组织学分析显示MyHC I表达增加,表明氧化纤维受到保护。功能评估显示肌肉耐力和收缩力得到改善,而代谢组学分析发现能量代谢、氨基酸代谢和蛋白质合成途径发生了变化。具体来说,乳酸改善了受损的支链氨基酸代谢,表明增强了蛋白质合成。此外,乳酸提高了Cori循环活性,上调了肝脏乳酸转运蛋白,增加了乳酸脱氢酶B活性,促进了乳酸的高效代谢和糖异生。这些结果为乳酸盐作为代谢调节剂的作用提供了新的见解,并突出了其作为治疗干预的潜力,以对抗运动诱导的肌肉萎缩,并保持衰老和固定个体的肌肉功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular and Cellular Biology
Molecular and Cellular Biology 生物-生化与分子生物学
CiteScore
9.80
自引率
1.90%
发文量
120
审稿时长
1 months
期刊介绍: Molecular and Cellular Biology (MCB) showcases significant discoveries in cellular morphology and function, genome organization, regulation of genetic expression, morphogenesis, and somatic cell genetics. The journal also examines viral systems, publishing papers that emphasize their impact on the cell.
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