二萜环化酶 fusicoccadiene 合酶的制备和分析方法。

4区 生物学 Q3 Biochemistry, Genetics and Molecular Biology
Methods in enzymology Pub Date : 2024-01-01 Epub Date: 2023-12-08 DOI:10.1016/bs.mie.2023.11.003
Eliott S Wenger, David W Christianson
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引用次数: 0

摘要

异戊烯基转移酶是一种萜烯合成酶,可将 5 个碳的前体分子结合成不同长度的线性异戊烯,作为萜烯环化酶的底物。萜烯及其衍生物是天然产品中最大的一类,在自然界中具有无数的功能和多种商业用途。一类新出现的双功能萜烯合成酶包含前酰转移酶和环化酶两个结构域,它们通过单个多肽链中的无序连接体连接在一起。来自拟杏鲍菇(Phomopsis amygdali)的木犀草二烯合酶(PaFS)是这一亚类中表征最完善的成员之一,也是探索结构-功能关系的模型系统。利用多种生物物理技术对 PaFS 进行了结构表征。这种酶通过寡聚形成由六个或八个前酰转移酶结构域组成的稳定核心,产生 20 碳线性异戊二烯--香叶基纯丙基二磷酸酯(GGPP),然后转移到环化酶结构域,生成松香二烯。环化酶结构域在随机铺展开的位置和前酰基转移酶相关位置之间处于动态平衡状态;GGPP 从前酰基转移酶核心转移到环化酶结构域的过程中涉及簇通道。在本章中,我们将概述我们正在开发的用于探究 PaFS 中团簇通道性质的方法,包括酶活性和产物分析测定、连接前酰基转移酶和环化酶结构域的连接段工程学方法以及低温电子显微镜结构分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Methods for the preparation and analysis of the diterpene cyclase fusicoccadiene synthase.

Prenyltransferases are terpene synthases that combine 5-carbon precursor molecules into linear isoprenoids of varying length that serve as substrates for terpene cyclases, enzymes that catalyze fascinating cyclization reactions to form diverse terpene natural products. Terpenes and their derivatives comprise the largest class of natural products and have myriad functions in nature and diverse commercial uses. An emerging class of bifunctional terpene synthases contains both prenyltransferase and cyclase domains connected by a disordered linker in a single polypeptide chain. Fusicoccadiene synthase from Phomopsis amygdali (PaFS) is one of the most well-characterized members of this subclass and serves as a model system for the exploration of structure-function relationships. PaFS has been structurally characterized using a variety of biophysical techniques. The enzyme oligomerizes to form a stable core of six or eight prenyltransferase domains that produce a 20-carbon linear isoprenoid, geranylgeranyl diphosphate (GGPP), which then transits to the cyclase domains for the generation of fusicoccadiene. Cyclase domains are in dynamic equilibrium between randomly splayed-out and prenyltransferase-associated positions; cluster channeling is implicated for GGPP transit from the prenyltransferase core to the cyclase domains. In this chapter, we outline the methods we are developing to interrogate the nature of cluster channeling in PaFS, including enzyme activity and product analysis assays, approaches for engineering the linker segment connecting the prenyltransferase and cyclase domains, and structural analysis by cryo-EM.

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来源期刊
Methods in enzymology
Methods in enzymology 生物-生化研究方法
CiteScore
2.90
自引率
0.00%
发文量
308
审稿时长
3-6 weeks
期刊介绍: The critically acclaimed laboratory standard for almost 50 years, Methods in Enzymology is one of the most highly respected publications in the field of biochemistry. Each volume is eagerly awaited, frequently consulted, and praised by researchers and reviewers alike. Now with over 500 volumes the series contains much material still relevant today and is truly an essential publication for researchers in all fields of life sciences, including microbiology, biochemistry, cancer research and genetics-just to name a few. Five of the 2013 Nobel Laureates have edited or contributed to volumes of MIE.
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