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Crystal structure of FabZ-ACP complex reveals a dynamic seesaw-like catalytic mechanism of dehydratase in fatty acid biosynthesis

机译:FabZ-ACP复合物的晶体结构揭示了脂肪酸生物合成中脱水酶的动态跷跷板样催化机制

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摘要

Fatty acid biosynthesis (FAS) is a vital process in cells. Fatty acids are essential for cell assembly and cellular metabolism. Abnormal FAS directly correlates with cell growth delay and human diseases, such as metabolic syndromes and various cancers. The FAS system utilizes an acyl carrier protein (ACP) as a transporter to stabilize and shuttle the growing fatty acid chain throughout enzymatic modules for stepwise catalysis. Studying the interactions between enzymatic modules and ACP is, therefore, critical for understanding the biological function of the FAS system. However, the information remains unclear due to the high flexibility of ACP and its weak interaction with enzymatic modules. We present here a 2.55 Å crystal structure of type II FAS dehydratase FabZ in complex with holo-ACP, which exhibits a highly symmetrical FabZ hexamer-ACP3 stoichiometry with each ACP binding to a FabZ dimer subunit. Further structural analysis, together with biophysical and computational results, reveals a novel dynamic seesaw-like ACP binding and catalysis mechanism for the dehydratase module in the FAS system, which is regulated by a critical gatekeeper residue (Tyr100 in FabZ) that manipulates the movements of the β-sheet layer. These findings improve the general understanding of the dehydration process in the FAS system and will potentially facilitate drug and therapeutic design for diseases associated with abnormalities in FAS.
机译:脂肪酸生物合成(FAS)是细胞中至关重要的过程。脂肪酸对于细胞组装和细胞代谢至关重要。 FAS异常与细胞生长延迟和人类疾病(例如代谢综合征和各种癌症)直接相关。 FAS系统利用酰基载体蛋白(ACP)作为转运蛋白来稳定和穿梭不断增长的脂肪酸链遍及整个酶模块,以进行逐步催化。因此,研究酶促模块与ACP之间的相互作用对于理解FAS系统的生物学功能至关重要。但是,由于ACP的高度灵活性及其与酶模块的弱相互作用,因此信息尚不清楚。我们在这里介绍与完整ACP复合的II型FAS脱水酶FabZ的2.55Å晶体结构,该结构展示了高度对称的FabZ六聚体-ACP3化学计量,每个ACP与FabZ二聚体亚基结合。进一步的结构分析,以及生物物理和计算结果,揭示了FAS系统中脱水酶模块的新型动态跷跷板状ACP结合和催化机制,该机制由关键的网守残基(FabZ中的Tyr100)调控,该残基控制着细胞的运动。 β-折叠层。这些发现提高了人们对FAS系统脱水过程的一般理解,并可能促进与FAS异常相关的疾病的药物和治疗设计。

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