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MerR的核心金属识别结构域。

The core metal-recognition domain of MerR.

作者信息

Zeng Q, Stålhandske C, Anderson M C, Scott R A, Summers A O

机构信息

The Department of Microbiology, University of Georgia, Athens 30602, USA.

出版信息

Biochemistry. 1998 Nov 10;37(45):15885-95. doi: 10.1021/bi9817562.

Abstract

MerR, the metalloregulatory protein of the mercury-resistance operon (mer) has unusually high affinity and specificity for ionic mercury, Hg(II). Prior genetic and biochemical evidence suggested that the protein has a structure consisting of an N-terminal DNA binding domain, a C-terminal Hg(II)-binding domain, and an intervening region involved with communication between these two domains. We have characterized a series of MerR deletion mutants and found that as little as 30% of the protein (residues 80-128) forms a stable dimer and retains high affinity for Hg(II). Biophysical measures indicate that this minimal Hg(II)-binding domain assumes the structural characteristics of the wild-type full-length protein both in the Hg(II) center itself and in an immediately adjacent helical protein domain. Our observations are consistent with the core Hg(II)-binding domain of the MerR dimer being constituted by a pair of antiparallel helices (possibly in a coiled-coil conformation) comprised of residues cysteine 82 through cysteine 117 from each monomer followed by a flexible loop through residue cysteine 126. These antiparallel helices would have a potential Hg(II)-binding site at each end. However, just as in the full-length protein, only one of these potential binding sites in the deleted proteins actually binds Hg(II).

摘要

MerR是汞抗性操纵子(mer)的金属调节蛋白,对离子汞Hg(II)具有异常高的亲和力和特异性。先前的遗传学和生物化学证据表明,该蛋白具有由N端DNA结合结构域、C端Hg(II)结合结构域以及这两个结构域之间参与通讯的中间区域组成的结构。我们对一系列MerR缺失突变体进行了表征,发现仅30%的蛋白(80 - 128位氨基酸残基)就能形成稳定的二聚体并保留对Hg(II)的高亲和力。生物物理测量表明,这个最小的Hg(II)结合结构域在Hg(II)中心本身以及紧邻的螺旋蛋白结构域中都呈现出野生型全长蛋白的结构特征。我们的观察结果与MerR二聚体的核心Hg(II)结合结构域由一对反平行螺旋(可能呈卷曲螺旋构象)构成一致,这对螺旋由每个单体的82位半胱氨酸至117位半胱氨酸残基组成,随后是一个延伸至126位半胱氨酸残基的柔性环。这些反平行螺旋在两端各有一个潜在的Hg(II)结合位点。然而,就像在全长蛋白中一样,缺失蛋白中的这些潜在结合位点只有一个实际结合Hg(II)。

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