...
首页> 外文期刊>PLoS Computational Biology >Keys to Lipid Selection in Fatty Acid Amide Hydrolase Catalysis: Structural Flexibility, Gating Residues and Multiple Binding Pockets
【24h】

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

机译:脂肪酸酰胺水解酶催化剂中脂肪选择的键:结构柔韧性,门控残留物和多个绑定口袋

获取原文

摘要

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.
机译:脂肪酸酰胺水解酶(FAAH)调节Endonocannabinoid系统主要是脂质信使Andamide的裂解。多年来,由于多年来,粮农组织已经很好地表现出一种有希望的药物靶向治疗几种疾病,包括炎症相关的疾病和癌症。但其对特异性水解的脂质选择的酶促机制,而不是类似的生物活性脂质,仍然难以捉摸。在这里,我们在FAAH中阐明了这种机制,检查了动态桨的作用,该机制由门控残留物PHE432和TRP531在形成FAAH催化位点(“膜接入”和“酰基”的两个腔之间的边界处形成的。链绑定的“口袋”。我们整合了FAAH的野生型和双突变模型系统(PHE432ALA和TRP531ALA)的微秒MD模拟,嵌入了现实膜/水环境中,具有诱变和动力学实验。我们比较分析三种具有不同水解速率的脂肪酸基材(Anandamide> Oleamide>棕榈酰乙醇酰胺)。我们的研究结果确定了FAAH的机制,以选择性地将Anandamide纳入多重袖珍粘合位点,并适当地将基材定向在由动态桨式调节的有效水解的预反应性兼容中。因此,我们的发现通过在FAAH中发现,通过结构柔韧性和多个结合腔之间的凝聚介导的脂质选择机制来支持脂质选择机制的结构框架。基于可用的结构数据,这种底物特异性的这种精致的催化策略似乎被具有类似酶促结构的其他脂质降解酶共享。脂质选择的机械洞察力可以帮助De-Novo酶设计或药物发现努力。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号