Lactate promotes fatty acid oxidation by the tricarboxylic acid cycle and mitochondrial respiration in muscles of obese mice.

IF 5 2区 生物学 Q2 CELL BIOLOGY American journal of physiology. Cell physiology Pub Date : 2024-09-01 Epub Date: 2024-07-09 DOI:10.1152/ajpcell.00060.2024
Sol-Yi Park, Su-Ryun Jung, Jong-Yeon Kim, Yong-Woon Kim, Hoon-Ki Sung, So-Young Park, Kyung-Oh Doh, Jin-Ho Koh
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Abstract

Lower oxidative capacity in skeletal muscles (SKMs) is a prevailing cause of metabolic diseases. Exercise not only enhances the fatty acid oxidation (FAO) capacity of SKMs but also increases lactate levels. Given that lactate may contribute to tricarboxylic acid cycle (TCA) flux and impact monocarboxylate transporter 1 in the SKMs, we hypothesize that lactate can influence glucose and fatty acid (FA) metabolism. To test this hypothesis, we investigated the mechanism underlying lactate-driven FAO regulation in the SKM of mice with diet-induced obesity (DIO). Lactate was administered to DIO mice immediately after exercise for over 3 wk. We found that increased lactate levels enhanced energy expenditure mediated by fat metabolism during exercise recovery and decreased triglyceride levels in DIO mice SKMs. To determine the lactate-specific effects without exercise, we administered lactate to mice on a high-fat diet (HFD) for 8 wk. Similar to our exercise conditions, lactate increased FAO, TCA cycle activity, and mitochondrial respiration in the SKMs of HFD-fed mice. In addition, under sufficient FA conditions, lactate increased uncoupling protein-3 abundance via the NADH-NAD+ shuttle. Conversely, ATP synthase abundance decreased in the SKMs of HFD mice. Taken together, our results suggest that lactate amplifies the adaptive increase in FAO capacity mediated by the TCA cycle and mitochondrial respiration in SKMs under sufficient FA abundance.NEW & NOTEWORTHY Lactate administration post-exercise promotes triglyceride content loss in skeletal muscles (SKMs) and reduced body weight. Lactate enhances fatty acid oxidation in the SKMs of high-fat diet (HFD)-fed mice due to enhanced mitochondrial oxygen consumption. In addition, lactate restores the malate-aspartate shuttle, which is reduced by a HFD, and activates the tricarboxylic acid cycle (TCA) cycle in SKMs. Interestingly, supraphysiological lactate facilitates uncoupling protein-3 expression through NADH/NAD+, which is enhanced under high-fat levels in SKMs.

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乳酸促进肥胖小鼠肌肉中 TCA 循环和线粒体呼吸的脂肪酸氧化。
骨骼肌(SKM)氧化能力较低是代谢性疾病的一个主要原因。运动不仅能增强骨骼肌的脂肪酸氧化能力,还能提高乳酸盐水平。鉴于乳酸盐可能有助于三羧酸循环(TCA)通量并影响 SKM 中的单羧酸转运体 1,我们假设乳酸盐可影响葡萄糖和脂肪酸(FA)代谢。为了验证这一假设,我们研究了饮食诱导肥胖(DIO)小鼠 SKM 中乳酸驱动的 FAO 调节机制。DIO 小鼠在运动后立即摄入乳酸盐,持续三周。我们发现,在运动恢复期间,乳酸盐水平的增加增强了由脂肪代谢介导的能量消耗,并降低了 DIO 小鼠 SKM 中的甘油三酯水平。为了确定乳酸盐在不运动的情况下的特异性效应,我们对高脂饮食(HFD)小鼠进行了为期八周的乳酸盐喂养。与我们的运动条件类似,乳酸盐增加了高脂饮食小鼠 SKM 的 FAO、TCA 循环活性和线粒体呼吸。此外,在充足的足量脂肪酸条件下,乳酸盐通过 NADH/NAD+ 穿梭作用增加了解偶联蛋白-3 的丰度。相反,HFD 小鼠 SKM 中的 ATP 合酶丰度降低。综上所述,我们的研究结果表明,在足量足量脂肪酸的条件下,乳酸盐会放大由TCA循环和线粒体呼吸介导的SKM中FAO能力的适应性增加。
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来源期刊
CiteScore
9.10
自引率
1.80%
发文量
252
审稿时长
1 months
期刊介绍: The American Journal of Physiology-Cell Physiology is dedicated to innovative approaches to the study of cell and molecular physiology. Contributions that use cellular and molecular approaches to shed light on mechanisms of physiological control at higher levels of organization also appear regularly. Manuscripts dealing with the structure and function of cell membranes, contractile systems, cellular organelles, and membrane channels, transporters, and pumps are encouraged. Studies dealing with integrated regulation of cellular function, including mechanisms of signal transduction, development, gene expression, cell-to-cell interactions, and the cell physiology of pathophysiological states, are also eagerly sought. Interdisciplinary studies that apply the approaches of biochemistry, biophysics, molecular biology, morphology, and immunology to the determination of new principles in cell physiology are especially welcome.
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