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金属蛋白亲和力测定的原理与实践。

Principles and practice of determining metal-protein affinities.

机构信息

Department of Biosciences, Durham University, Durham, U.K.

Department of Chemistry, Durham University, Durham, U.K.

出版信息

Biochem J. 2021 Mar 12;478(5):1085-1116. doi: 10.1042/BCJ20200838.

Abstract

Metal ions play many critical roles in biology, as structural and catalytic cofactors, and as cell regulatory and signalling elements. The metal-protein affinity, expressed conveniently by the metal dissociation constant, KD, describes the thermodynamic strength of a metal-protein interaction and is a key parameter that can be used, for example, to understand how proteins may acquire metals in a cell and to identify dynamic elements (e.g. cofactor binding, changing metal availabilities) which regulate protein metalation in vivo. Here, we outline the fundamental principles and practical considerations that are key to the reliable quantification of metal-protein affinities. We review a selection of spectroscopic probes which can be used to determine protein affinities for essential biological transition metals (including Mn(II), Fe(II), Co(II), Ni(II), Cu(I), Cu(II) and Zn(II)) and, using selected examples, demonstrate how rational probe selection combined with prudent experimental design can be applied to determine accurate KD values.

摘要

金属离子在生物学中发挥着许多关键作用,它们既是结构和催化辅助因子,也是细胞调节和信号元素。金属蛋白亲和力,通常用金属离解常数 KD 来表示,描述了金属与蛋白质相互作用的热力学强度,是一个关键参数,可用于例如,了解蛋白质在细胞中如何获得金属,并识别调节蛋白质体内金属化的动态元件(例如辅助因子结合、改变金属可用性)。在这里,我们概述了可靠量化金属-蛋白亲和力的关键基本原则和实际考虑因素。我们回顾了一些可用于测定蛋白质对必需生物过渡金属(包括 Mn(II)、Fe(II)、Co(II)、Ni(II)、Cu(I)、Cu(II)和 Zn(II))亲和力的光谱探针,并通过选择的例子,展示了如何合理选择探针结合谨慎的实验设计,以确定准确的 KD 值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d66c/7959690/1a4e59fbfb76/BCJ-478-1085-g0001.jpg

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