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一个用于全面分析酰基辅酶A和酰基肉碱的强大、集成平台揭示了果蝇发育过程中脂肪酸酰基代谢命运的链长依赖性差异。

A robust, integrated platform for comprehensive analyses of acyl-coenzyme As and acyl-carnitines revealed chain length-dependent disparity in fatty acyl metabolic fates across Drosophila development.

作者信息

Lam Sin Man, Zhou Tianxing, Li Jie, Zhang Shaohua, Chua Gek Huey, Li Bowen, Shui Guanghou

机构信息

State Key Laboratory of Molecular Developmental Biology, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China.

LipidALL Technologies Company Limited, Changzhou 213022, China.

出版信息

Sci Bull (Beijing). 2020 Nov 15;65(21):1840-1848. doi: 10.1016/j.scib.2020.07.023. Epub 2020 Jul 11.

Abstract

Acyl-coenzyme A thioesters (acyl-CoAs) denote a key class of intermediary metabolites that lies at the hub of major metabolic pathways. The great diversity in polarity between short- and long-chain acyl-CoAs makes it technically challenging to cover an inclusive range of acyl-CoAs within a single method. Levels of acyl-carnitines, which function to convey fatty acyls into mitochondria matrix for β-oxidation, indicate the efficiency of mitochondrial import and utilization of corresponding acyl-CoAs. Herein, we report a robust, integrated platform to allow simultaneous quantitation of endogenous acyl-CoAs and acyl-carnitines. Using this method, we monitored changes in intermediary lipid profiles across Drosophila development under control (ND) and high-fat diet (HFD). We observed specific accumulations of medium-chain (C8-C12) and long-chain (≥C16) acyl-carnitines distinct to L3 larval and pupal stages, respectively. These observations suggested development-specific, chain length-dependent disparity in metabolic fates of acyl-CoAs across Drosophila development, which was validated by deploying the same platform to monitor isotope incorporation introduced from labelled 12:0 and 16:0 fatty acids into extra- and intra-mitochondrial acyl-CoA pools. We found that pupal mitochondria preferentially import and oxidise C12:0-CoAs (accumulated as C12:0-carnitines in L3 stage) over C16:0-CoAs. Preferential oxidation of medium-chain acyl-CoAs limits mitochondrial utilization of long-chain acyl-CoAs (C16-C18), leading to pupal-specific accumulation of long-chain acyl-carnitines mediated by enhanced CPT1-6A activity. HFD skewed C16:0-CoAs towards catabolism over anabolism in pupa, thereby adversely affecting overall development. Our developed platform emphasizes the importance of integrating biological knowledge in the design of pathway-oriented platforms to derive maximal physiological insights from analysis of complex biological systems.

摘要

酰基辅酶A硫酯(酰基-CoA)是一类关键的中间代谢产物,处于主要代谢途径的核心位置。短链和长链酰基-CoA在极性上的巨大差异使得在单一方法中涵盖所有类型的酰基-CoA在技术上具有挑战性。酰基肉碱的水平用于将脂肪酰基转运到线粒体基质中进行β氧化,它反映了线粒体对相应酰基-CoA的摄取和利用效率。在此,我们报告了一个强大的集成平台,可同时对内源性酰基-CoA和酰基肉碱进行定量分析。使用该方法,我们监测了在正常饮食(ND)和高脂饮食(HFD)条件下果蝇发育过程中中间脂质谱的变化。我们观察到中链(C8-C12)和长链(≥C16)酰基肉碱分别在L3幼虫期和蛹期有特异性积累。这些观察结果表明,在果蝇发育过程中,酰基-CoA的代谢命运存在发育特异性、链长依赖性差异,通过使用同一平台监测从标记的12:0和16:0脂肪酸引入到线粒体外和线粒体内酰基-CoA池中的同位素掺入情况,验证了这一差异。我们发现,蛹期线粒体优先摄取和氧化C12:0-CoA(在L3期积累为C12:0-肉碱)而非C16:0-CoA。中链酰基-CoA的优先氧化限制了长链酰基-CoA(C16-C18)的线粒体利用,导致蛹期特异性的长链酰基肉碱积累,这是由增强的CPT1-6A活性介导的。高脂饮食使蛹期的C16:0-CoA偏向分解代谢而非合成代谢,从而对整体发育产生不利影响。我们开发的平台强调了在设计面向途径的平台时整合生物学知识的重要性,以便从复杂生物系统的分析中获得最大的生理学见解。

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