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短杆菌肽S合成酶起始模块PheATE对底物的识别与选择

Substrate recognition and selection by the initiation module PheATE of gramicidin S synthetase.

作者信息

Luo L, Burkart M D, Stachelhaus T, Walsh C T

机构信息

Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, 240 Longwood Avenue, Boston, Massachusetts 02115, USA.

出版信息

J Am Chem Soc. 2001 Nov 14;123(45):11208-18. doi: 10.1021/ja0166646.

Abstract

The initiation module of non-ribosomal peptide synthetases (NRPS) selects and activates the first amino acid and serves as the aminoacyl donor in the first peptide bond-forming step of the NRPS assembly line. The gramicidin S synthetase initiation module (PheATE) is a three-domain subunit, recognizing L-phenylalanine (L-Phe) and activating it (by adenylation domain) as tightly bound L-phenylalanyl-adenosine-5'-monophosphate diester (L-Phe-AMP), transferring it to the HS-phosphopantetheine arm of the holo-thiolation (holo-T) domain, and then epimerizing it (by epimerization domain) to the D-Phe-S-4'-Ppant-acyl enzyme. In this study, we have assayed the selectivity of the PheATE adenylation domain with a number of proteinogenic amino acids and observed that three additional amino acids, L-Tyr, L-Trp, and L-Leu, were activated to the aminoacyl-AMPs and transferred to the HS-phosphopantetheine arm of the holo-T domain. Hydrolytic editing of noncognate aminoacyl-AMPs and/or aminoacyl-S-4'-Ppant-acyl enzymes by the enzyme was not observed by three different assays for adenylation domain function. The microscopic reaction rates and thermodynamic equilibrium constants obtained from single-turnover studies of reactions of L-Phe, L-Trp, L-Tyr, and L-Leu with holoPheATE allowed us to construct free energy profiles for the reactions, revealing the kinetic and thermodynamic basis for substrate recognition and selection. In particular, the rates of epimerization of the L-aminoacyl-S-enzyme to the D-aminoacyl-S-enzyme intermediate showed reductions of 245-, 300-, and 540-fold for L-Trp, L-Tyr, and L-Leu respectively, suggesting that the epimerization domain is an important gatekeeper for generation of the D-Phe-S-enzyme that starts gramicidin S chain growth.

摘要

非核糖体肽合成酶(NRPS)的起始模块选择并激活第一个氨基酸,并在NRPS装配线的第一个肽键形成步骤中作为氨酰基供体。短杆菌肽S合成酶起始模块(PheATE)是一个三结构域亚基,识别L-苯丙氨酸(L-Phe)并将其激活(通过腺苷化结构域)为紧密结合的L-苯丙氨酰-腺苷-5'-单磷酸二酯(L-Phe-AMP),将其转移到全硫醇化(全T)结构域的HS-磷酸泛酰巯基乙胺臂上,然后(通过差向异构化结构域)将其差向异构化为D-Phe-S-4'-Ppant-酰基酶。在本研究中,我们用多种蛋白质氨基酸测定了PheATE腺苷化结构域的选择性,观察到另外三种氨基酸,L-酪氨酸(L-Tyr)、L-色氨酸(L-Trp)和L-亮氨酸(L-Leu)被激活为氨酰基-AMP,并转移到全T结构域的HS-磷酸泛酰巯基乙胺臂上。通过三种不同的腺苷化结构域功能测定,未观察到该酶对非同源氨酰基-AMP和/或氨酰基-S-4'-Ppant-酰基酶的水解编辑作用。从L-Phe、L-Trp、L-Tyr和L-Leu与全PheATE反应的单周转研究中获得的微观反应速率和热力学平衡常数,使我们能够构建反应的自由能分布图,揭示底物识别和选择的动力学和热力学基础。特别是,L-氨酰基-S-酶向D-氨酰基-S-酶中间体的差向异构化速率分别降低了245倍、300倍和540倍,这表明差向异构化结构域是启动短杆菌肽S链生长的D-Phe-S-酶生成的重要守门人。

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