以脂肪酸转运蛋白(FATP)为目标,了解脂肪酸转运与代谢的机制。

Paul N Black, Angel Sandoval, Elsa Arias-Barrau, Concetta C DiRusso
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引用次数: 0

摘要

驱动脂肪酸运输的一个主要过程是载体酰化,其中脂肪酸穿过膜并活化为辅酶a硫酯。目前的证据与特定的脂肪酸运输(FATP)异构体单独或与特定的长链酰基辅酶a合成酶(Acsl)异构体一起驱动这一能量依赖过程的建议一致。了解载体酰化的细节尤其重要,因为脂质代谢紊乱多次导致循环游离脂肪酸水平升高,从而增加脂肪酸内化和甘油三酯的异位积累。这与脂肪酸氧化速率的变化、活性氧的积累、神经酰胺的合成和内质网应激有关。血浆游离脂肪酸和甘油三酯的长期升高与肥胖、胰岛素抵抗和心血管疾病的发展之间的相关性导致了胰腺胰岛素分泌减少、心力衰竭、心律失常和肥厚是由于这些组织中脂质异常积累所致的假设。为此,详细了解脂肪酸如何穿过质膜,被激活并转运到下游代谢池,以及不同的FATP和Acsl亚型提供的确切作用是特别重要的问题。我们回顾了我们目前对载体酰化的理解,特定的FATP和Acsl亚型的贡献,以及从高通量筛选中发现的抑制这一过程的小分子抑制剂,从而为这一过程的潜在机制基础提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Targeting the fatty acid transport proteins (FATP) to understand the mechanisms linking fatty acid transport to metabolism.

One principal process driving fatty acid transport is vectorial acylation, where fatty acids traverse the membrane concomitant with activation to CoA thioesters. Current evidence is consistent with the proposal that specific fatty acid transport (FATP) isoforms alone or in concert with specific long chain acyl CoA synthetase (Acsl) isoforms function to drive this energy-dependent process. Understanding the details of vectorial acylation is of particular importance as disturbances in lipid metabolism many times leads to elevated levels of circulating free fatty acids, which in turn increases fatty acid internalization and ectopic accumulation of triglycerides. This is associated with changes in fatty acid oxidation rates, accumulation of reactive oxygen species, the synthesis of ceramide and ER stress. The correlation between chronically elevated plasma free fatty acids and triglycerides with the development of obesity, insulin resistance and cardiovascular disease has led to the hypothesis that decreases in pancreatic insulin production, cardiac failure, arrhythmias, and hypertrophy are due to aberrant accumulation of lipids in these tissues. To this end, a detailed understanding of how fatty acids traverse the plasma membrane, become activated and trafficked into downstream metabolic pools and the precise roles provided by the different FATP and Acsl isoforms are especially important questions. We review our current understanding of vectorial acylation and the contributions by specific FATP and Acsl isoforms and the identification of small molecule inhibitors from high throughput screens that inhibit this process and thus provide new insights into the underlying mechanistic basis of this process.

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