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基因敲除小鼠的表型表明,含黄素单加氧酶5(FMO5)是代谢性衰老的一个调节因子。

The phenotype of a knockout mouse identifies flavin-containing monooxygenase 5 (FMO5) as a regulator of metabolic ageing.

作者信息

Gonzalez Malagon Sandra G, Melidoni Anna N, Hernandez Diana, Omar Bilal A, Houseman Lyndsey, Veeravalli Sunil, Scott Flora, Varshavi Dorsa, Everett Jeremy, Tsuchiya Yugo, Timms John F, Phillips Ian R, Shephard Elizabeth A

机构信息

Institute of Structural and Molecular Biology, University College London, London WC1E 6BT, UK.

School of Biological and Chemical Sciences, Queen Mary University of London, London E1 4NS, UK.

出版信息

Biochem Pharmacol. 2015 Aug 1;96(3):267-77. doi: 10.1016/j.bcp.2015.05.013. Epub 2015 Jun 4.

Abstract

We report the production and metabolic phenotype of a mouse line in which the Fmo5 gene is disrupted. In comparison with wild-type (WT) mice, Fmo5(-/-) mice exhibit a lean phenotype, which is age-related, becoming apparent after 20 weeks of age. Despite greater food intake, Fmo5(-/-) mice weigh less, store less fat in white adipose tissue (WAT), have lower plasma glucose and cholesterol concentrations and enhanced whole-body energy expenditure, due mostly to increased resting energy expenditure, with no increase in physical activity. An increase in respiratory exchange ratio during the dark phase, the period in which the mice are active, indicates a switch from fat to carbohydrate oxidation. In comparison with WT mice, the rate of fatty acid oxidation in Fmo5(-/-) mice is higher in WAT, which would contribute to depletion of lipid stores in this tissue, and lower in skeletal muscle. Five proteins were down regulated in the liver of Fmo5(-/-) mice: aldolase B, ketohexokinase and cytosolic glycerol 3-phosphate dehydrogenase (GPD1) are involved in glucose or fructose metabolism and GPD1 also in production of glycerol 3-phosphate, a precursor of triglyceride biosynthesis; HMG-CoA synthase 1 is involved in cholesterol biosynthesis; and malic enzyme 1 catalyzes the oxidative decarboxylation of malate to pyruvate, in the process producing NADPH for use in lipid and cholesterol biosynthesis. Down regulation of these proteins provides a potential explanation for the reduced fat deposits and lower plasma cholesterol characteristic of Fmo5(-/-) mice. Our results indicate that disruption of the Fmo5 gene slows metabolic ageing via pleiotropic effects.

摘要

我们报告了一种Fmo5基因被破坏的小鼠品系的产生及其代谢表型。与野生型(WT)小鼠相比,Fmo5基因敲除(Fmo5(-/-))小鼠表现出消瘦的表型,这与年龄相关,在20周龄后变得明显。尽管食物摄入量增加,但Fmo5(-/-)小鼠体重更轻,白色脂肪组织(WAT)中储存的脂肪更少,血浆葡萄糖和胆固醇浓度更低,全身能量消耗增加,这主要是由于静息能量消耗增加,而身体活动没有增加。在小鼠活跃的黑暗阶段,呼吸交换率增加,表明从脂肪氧化转变为碳水化合物氧化。与WT小鼠相比,Fmo5(-/-)小鼠WAT中的脂肪酸氧化速率更高,这将导致该组织中脂质储存的消耗,而骨骼肌中的脂肪酸氧化速率更低。Fmo5(-/-)小鼠肝脏中有5种蛋白质表达下调:醛缩酶B、己糖激酶和胞质甘油-3-磷酸脱氢酶(GPD1)参与葡萄糖或果糖代谢,GPD1还参与甘油-3-磷酸的产生,甘油-3-磷酸是甘油三酯生物合成的前体;HMG-CoA合酶1参与胆固醇生物合成;苹果酸酶1催化苹果酸氧化脱羧生成丙酮酸,在此过程中产生NADPH用于脂质和胆固醇生物合成。这些蛋白质的下调为Fmo5(-/-)小鼠脂肪沉积减少和血浆胆固醇降低的特征提供了一个潜在的解释。我们的结果表明,Fmo5基因的破坏通过多效性作用减缓了代谢衰老。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c998/4509511/57c6a8ff6e02/fx1.jpg

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