Chemical-genetic induction of Malonyl-CoA decarboxylase in skeletal muscle.

Q2 Biochemistry, Genetics and Molecular Biology
Susana Rodriguez, Jessica M Ellis, Michael J Wolfgang
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引用次数: 9

Abstract

Background: Defects in skeletal muscle fatty acid oxidation have been implicated in the etiology of insulin resistance. Malonyl-CoA decarboxylase (MCD) has been a target of investigation because it reduces the concentration of malonyl-CoA, a metabolite that inhibits fatty acid oxidation. The in vivo role of muscle MCD expression in the development of insulin resistance remains unclear.

Results: To determine the role of MCD in skeletal muscle of diet induced obese and insulin resistant mouse models we generated mice expressing a muscle specific transgene for MCD (Tg-fMCD(Skel)) stabilized posttranslationally by the small molecule, Shield-1. Tg-fMCD(Skel) and control mice were placed on either a high fat or low fat diet for 3.5 months. Obese and glucose intolerant as well as lean control Tg-fMCD(Skel) and nontransgenic control mice were treated with Shield-1 and changes in their body weight and insulin sensitivity were determined upon induction of MCD. Inducing MCD activity >5-fold in skeletal muscle over two weeks did not alter body weight or glucose intolerance of obese mice. MCD induction further potentiated the defects in insulin signaling of obese mice. In addition, key enzymes in fatty acid oxidation were suppressed following MCD induction.

Conclusion: Acute induction of MCD in the skeletal muscle of obese and glucose intolerant mice did not improve body weight and decreased insulin sensitivity compared to obese nontransgenic controls. Induction of MCD in skeletal muscle resulted in a suppression of mitochondrial oxidative genes suggesting a redundant and metabolite driven regulation of gene expression.

Abstract Image

Abstract Image

Abstract Image

骨骼肌丙二酰辅酶a脱羧酶的化学-遗传诱导。
背景:骨骼肌脂肪酸氧化缺陷与胰岛素抵抗的病因有关。丙二酰辅酶a脱羧酶(MCD)一直是研究的目标,因为它降低了丙二酰辅酶a的浓度,丙二酰辅酶a是一种抑制脂肪酸氧化的代谢物。肌肉MCD表达在胰岛素抵抗发展中的体内作用尚不清楚。结果:为了确定MCD在饮食性肥胖和胰岛素抵抗小鼠模型骨骼肌中的作用,我们培养了表达MCD肌肉特异性转基因(Tg-fMCD(Skel))的小鼠,该基因在翻译后由小分子Shield-1稳定。Tg-fMCD(skkel)和对照小鼠分别饲喂高脂或低脂饮食3.5个月。用Shield-1治疗肥胖、葡萄糖不耐受、瘦对照Tg-fMCD(Skel)和非转基因对照小鼠,观察诱导MCD后小鼠体重和胰岛素敏感性的变化。在两周内诱导骨骼肌MCD活性超过5倍,并没有改变肥胖小鼠的体重或葡萄糖耐受不良。MCD的诱导进一步增强了肥胖小鼠胰岛素信号的缺陷。此外,MCD诱导后脂肪酸氧化的关键酶被抑制。结论:与非转基因肥胖小鼠相比,急性诱导肥胖和葡萄糖不耐受小鼠骨骼肌MCD并没有改善体重和降低胰岛素敏感性。骨骼肌MCD的诱导导致线粒体氧化基因的抑制,表明基因表达的冗余和代谢物驱动调控。
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
BMC Biochemistry
BMC Biochemistry BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
4.80
自引率
0.00%
发文量
0
审稿时长
3 months
期刊介绍: BMC Biochemistry is an open access journal publishing original peer-reviewed research articles in all aspects of biochemical processes, including the structure, function and dynamics of metabolic pathways, supramolecular complexes, enzymes, proteins, nucleic acids and small molecular components of organelles, cells and tissues. BMC Biochemistry (ISSN 1471-2091) is indexed/tracked/covered by PubMed, MEDLINE, BIOSIS, CAS, EMBASE, Scopus, Zoological Record, Thomson Reuters (ISI) and Google Scholar.
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