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利用 CuAAC 稳定 NMR 混合标记二聚体来可视化别构中间态。

Visualizing an Allosteric Intermediate Using CuAAC Stabilization of an NMR Mixed Labeled Dimer.

机构信息

Division of Chemical Biology and Medicinal Chemistry, Eshelman School of Pharmacy, The University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599, United States.

Lineberger Comprehensive Cancer Center, The University of North Carolina at Chapel Hill School of Medicine, Chapel Hill, North Carolina 27599, United States.

出版信息

ACS Chem Biol. 2021 Dec 17;16(12):2766-2775. doi: 10.1021/acschembio.1c00617. Epub 2021 Nov 16.

Abstract

Homodimers are the most abundant type of enzyme in cells, and as such, they represent the most elemental system for studying the phenomenon of allostery. In these systems, in which the allosteric features are manifest by the effect of the first binding event on a similar event at the second site, the most informative state is the asymmetric singly bound (lig) form, yet it tends to be thermodynamically elusive. Here we obtain milligram quantities of lig of the allosteric homodimer, chorismate mutase, in the form of a mixed isotopically labeled dimer stabilized by Cu-catalyzed azide-alkyne cycloaddition (CuAAC) between the subunits. Below, we outline several critical steps required to generate high yields of both types of unnatural amino acid-containing proteins and overcome multiple pitfalls intrinsic to CuAAC to obtain high yields of a highly purified, fully intact, active mixed labeled dimer, which provides the first glimpse of the lig intermediate. These data not only will make possible NMR-based investigations of allostery envisioned by us but also should facilitate other structural applications in which specific linkage of proteins is helpful.

摘要

同二聚体是细胞中最丰富的酶类型,因此,它们代表了研究变构现象的最基本体系。在这些系统中,变构特征表现为第一个结合事件对第二个位点上类似事件的影响,最具信息量的状态是不对称的单结合(lig)形式,但它往往在热力学上难以捉摸。在这里,我们以通过亚基间铜催化的叠氮化物-炔烃环加成(CuAAC)稳定的混合同位素标记二聚体的形式获得毫克量的变构同二聚体,犬尿氨酸酶。下面,我们概述了生成两种类型的非天然氨基酸含蛋白的高产率以及克服 CuAAC 固有的多个陷阱所需的几个关键步骤,以获得高纯度、完全完整、活性的混合标记二聚体的高产率,这为 lig 中间体提供了第一个 glimps。这些数据不仅将使我们所设想的基于 NMR 的变构研究成为可能,而且还应该促进其他结构应用,其中蛋白质的特异性连接是有帮助的。

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