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首页> 外文期刊>American Journal of Physiology >FAT/CD36-null mice reveal that mitochondrial FAT/CD36 is required to upregulate mitochondrial fatty acid oxidation in contracting muscle.
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FAT/CD36-null mice reveal that mitochondrial FAT/CD36 is required to upregulate mitochondrial fatty acid oxidation in contracting muscle.

机译:FAT / CD36-null小鼠显示线粒体FAT / CD36是上调收缩肌肉中线粒体脂肪酸氧化所必需的。

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The plasma membrane fatty acid transport protein FAT/CD36 is also present at the mitochondria, where it may contribute to the regulation of fatty acid oxidation, although this has been challenged. Therefore, we have compared enzyme activities and rates of mitochondrial palmitate oxidation in muscles of wild-type (WT) and FAT/CD36 knockout (KO) mice, at rest and after muscle contraction. In WT and KO mice, carnitine palmitoyltransferase-I, citrate synthase, and beta-hydroxyacyl-CoA dehydrogenase activities did not differ in subsarcolemmal (SS) and intermyofibrillar (IMF) mitochondria of WT and FAT/CD36 KO mice. Basal palmitate oxidation rates were lower (P < 0.05) in KO mice (SS -18%; IMF -13%). Muscle contraction increased fatty acid oxidation (+18%) and mitochondrial FAT/CD36 protein (+16%) in WT IMF but not in WT SS, or in either mitochondrial subpopulation in KO mice. This revealed that the difference in IMF mitochondrial fatty acid oxidation between WT and KO mice can be increased approximately 2.5-fold from 13% under basal conditions to 35% during muscle contraction. The FAT/CD36 inhibitor sulfo-N-succinimidyl oleate (SSO), inhibited palmitate transport across the plasma membrane in WT, but not in KO mice. In contrast, SSO bound to mitochondrial membranes and reduced palmitate oxidation rates to a similar extent in both WT and KO mitochondria ( approximately 80%; P < 0.05). In addition, SSO reduced state III respiration with succinate as a substrate, without altering mitochondrial coupling (P/O ratios). Thus, while SSO inhibits FAT/CD36-mediated palmitate transport at the plasma membrane, SSO has undefined effects on mitochondria. Nevertheless, the KO animals reveal that FAT/CD36 contributes to the regulation of mitochondrial fatty acid oxidation, which is especially important for meeting the increased metabolic demands during muscle contraction.
机译:质膜脂肪酸转运蛋白FAT / CD36也存在于线粒体中,尽管它已经受到挑战,但它可能有助于调节脂肪酸氧化。因此,我们比较了野生型(WT)和FAT / CD36基因敲除(KO)小鼠的肌肉在静止和收缩后的酶活性和线粒体棕榈酸酯氧化速率。在WT和KO小鼠中,肉碱棕榈酰转移酶-I,柠檬酸合酶和β-羟酰基-CoA脱氢酶活性在WT和FAT / CD36 KO小鼠的肌膜下(SS)和肌原纤维间(IMF)线粒体中没有差异。 KO小鼠(SS -18%; IMF -13%)的基础棕榈酸酯氧化率较低(P <0.05)。肌肉收缩在WT IMF中增加了脂肪酸氧化(+ 18%)和线粒体FAT / CD36蛋白(+ 16%),但在WT SS中或在KO小鼠的线粒体亚群中均没有。这表明WT和KO小鼠之间IMF线粒体脂肪酸氧化的差异可从基础条件下的13%增加到肌肉收缩期间的35%的大约2.5倍。 FAT / CD36抑制剂磺基-N-琥珀酰亚胺基油酸酯(SSO)在WT小鼠中抑制棕榈酸酯穿过质膜的转运,但在KO小鼠中却没有。相反,在WT和KO线粒体中,SSO与线粒体膜结合并降低了棕榈酸酯的氧化速率(相似程度约为80%; P <0.05)。此外,SSO以琥珀酸酯为底物可降低III型呼吸,而不会改变线粒体偶联(P / O比)。因此,尽管SSO抑制FAT / CD36介导的棕榈酸酯在质膜的运输,但SSO对线粒体的作用尚不确定。尽管如此,KO动物显示FAT / CD36有助于线粒体脂肪酸氧化的调节,这对于满足肌肉收缩过程中新陈代谢需求的增加尤其重要。

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