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脂肪酸酰胺水解酶催化中脂质选择的关键:结构灵活性、门控残基和多个结合口袋。

Keys to Lipid Selection in Fatty Acid Amide Hydrolase Catalysis: Structural Flexibility, Gating Residues and Multiple Binding Pockets.

作者信息

Palermo Giulia, Bauer Inga, Campomanes Pablo, Cavalli Andrea, Armirotti Andrea, Girotto Stefania, Rothlisberger Ursula, De Vivo Marco

机构信息

Laboratory of Molecular Modeling and Drug Discovery, Istituto Italiano di Tecnologia, Genova, Italy.

CompuNet, Istituto Italiano di Tecnologia, Genova, Italy.

出版信息

PLoS Comput Biol. 2015 Jun 25;11(6):e1004231. doi: 10.1371/journal.pcbi.1004231. eCollection 2015 Jun.

Abstract

The fatty acid amide hydrolase (FAAH) regulates the endocannabinoid system cleaving primarily the lipid messenger anandamide. FAAH has been well characterized over the years and, importantly, it represents a promising drug target to treat several diseases, including inflammatory-related diseases and cancer. But its enzymatic mechanism for lipid selection to specifically hydrolyze anandamide, rather than similar bioactive lipids, remains elusive. Here, we clarify this mechanism in FAAH, examining the role of the dynamic paddle, which is formed by the gating residues Phe432 and Trp531 at the boundary between two cavities that form the FAAH catalytic site (the "membrane-access" and the "acyl chain-binding" pockets). We integrate microsecond-long MD simulations of wild type and double mutant model systems (Phe432Ala and Trp531Ala) of FAAH, embedded in a realistic membrane/water environment, with mutagenesis and kinetic experiments. We comparatively analyze three fatty acid substrates with different hydrolysis rates (anandamide > oleamide > palmitoylethanolamide). Our findings identify FAAH's mechanism to selectively accommodate anandamide into a multi-pocket binding site, and to properly orient the substrate in pre-reactive conformations for efficient hydrolysis that is interceded by the dynamic paddle. Our findings therefore endorse a structural framework for a lipid selection mechanism mediated by structural flexibility and gating residues between multiple binding cavities, as found in FAAH. Based on the available structural data, this exquisite catalytic strategy for substrate specificity seems to be shared by other lipid-degrading enzymes with similar enzymatic architecture. The mechanistic insights for lipid selection might assist de-novo enzyme design or drug discovery efforts.

摘要

脂肪酸酰胺水解酶(FAAH)主要通过切割脂质信使分子花生四烯乙醇胺来调节内源性大麻素系统。多年来,FAAH已得到充分表征,重要的是,它是治疗多种疾病(包括炎症相关疾病和癌症)的一个有前景的药物靶点。但其特异性水解花生四烯乙醇胺而非类似生物活性脂质的脂质选择酶促机制仍不清楚。在这里,我们阐明了FAAH中的这一机制,研究了动态桨叶的作用,它由位于形成FAAH催化位点的两个腔室(“膜通道”和“酰基链结合”口袋)之间边界处的门控残基苯丙氨酸432和色氨酸531形成。我们将野生型和双突变模型系统(苯丙氨酸432丙氨酸和色氨酸531丙氨酸)的FAAH在真实膜/水环境中的微秒级分子动力学模拟与诱变和动力学实验相结合。我们比较分析了三种具有不同水解速率的脂肪酸底物(花生四烯乙醇胺>油酰胺>棕榈酰乙醇胺)。我们的研究结果确定了FAAH将花生四烯乙醇胺选择性容纳到多口袋结合位点并将底物正确定向为预反应构象以进行高效水解的机制,这一过程由动态桨叶介导。因此,我们的研究结果支持了一种由多个结合腔之间的结构灵活性和门控残基介导的脂质选择机制的结构框架,如在FAAH中所发现的那样。基于现有的结构数据,这种用于底物特异性的精妙催化策略似乎为其他具有相似酶结构的脂质降解酶所共有。脂质选择的机制见解可能有助于从头酶设计或药物发现工作。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/948b/4481349/3c8008f3fc46/pcbi.1004231.g001.jpg

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