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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Mechanism of Assembling Isoprenoid Building Blocks 1. Elucidation of the Structural Motifs for Substrate Binding in Geranyl Pyrophosphate Synthase
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Mechanism of Assembling Isoprenoid Building Blocks 1. Elucidation of the Structural Motifs for Substrate Binding in Geranyl Pyrophosphate Synthase

机译:组装类异戊二烯构件的机理1.阐明在香叶基焦磷酸合酶中底物结合的结构基序

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摘要

Terpenes (isoprenoids) represent the most functionally and structurally diverse group of natural products. Terpenes are assembled from two building blocks, isopentenyl diphosphate (IPP) and dimethylallyl diphosphate (DMAPP or DPP), by prenyltransferases (PTSs). Geranyl pyrophosphate synthase (GPPS) is the enzyme that assembles DPP and IPP in the first step of chain elongation during isoprenoid biosynthesis. The mechanism by which GPPS assembles the terpene precursor remains unknown; elucidating this mechanism will help in development of new technology to generate novel natural product-like scaffolds. With classic and QM/MM MD simulations, an "open-closed" conformation change of the catalytic pocket was observed in the GPPS active site at its large subunit (LSU), and a critical salt bridge between Asp91(in loop 1) and Lys239(in loop 2) was identified. The salt bridge is responsible for opening or closing the catalytic pocket. Meanwhile, the small subunit (SSU) regulates the size and shape of the hydrophobic pocket to flexibly host substrates with different shapes and sizes (DPP/ GPP/FPP, C5/C_(10)/C_(15)), Further QM/MM MD simulations were carried out to explore the binding modes for the different substrates catalyzed by GPPS. Our simulations suggest that the key residues (Asp91, Lys239, and Glnl56) are good candidates for site-directed mutagenesis and may help in protein engineering.
机译:萜烯(异戊二烯)是天然产物中功能和结构最多样化的一组。萜烯是通过异戊烯基转移酶(PTS)从两个结构单元(异戊烯基二磷酸酯(IPP)和二甲基烯丙基二磷酸酯(DMAPP或DPP))组装而成的。香叶基焦磷酸合酶(GPPS)是在类异戊二烯生物合成过程中链延长的第一步中组装DPP和IPP的酶。 GPPS组装萜烯前体的机制仍然未知;阐明这种机制将有助于新技术的开发,以产生新型的天然产物状支架。通过经典和QM / MM MD模拟,在GPPS活性位点的大亚基(LSU)以及Asp91(回路1)和Lys239之间的关键盐桥中观察到催化口袋的“开-关”构象变化。 (在循环2中)被识别。盐桥负责打开或关闭催化腔。同时,小亚基(SSU)调节疏水袋的大小和形状,以灵活地容纳具有不同形状和大小(DPP / GPP / FPP,C5 / C_(10)/ C_(15))和不同QM / MM的基板进行了MD模拟以探索GPPS催化的不同底物的结合模式。我们的模拟表明关键残基(Asp91,Lys239和Glnl56)是定点诱变的良好候选者,可能有助于蛋白质工程。

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