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单个金属配体在锌传感器金黄色葡萄球菌CzrA中发挥着不同的功能作用。

Individual metal ligands play distinct functional roles in the zinc sensor Staphylococcus aureus CzrA.

作者信息

Pennella Mario A, Arunkumar Alphonse I, Giedroc David P

机构信息

Department of Biochemistry and Biophysics, 2128 TAMU, Texas A&M University, College Station, TX 77843-2128, USA.

出版信息

J Mol Biol. 2006 Mar 10;356(5):1124-36. doi: 10.1016/j.jmb.2005.12.019. Epub 2005 Dec 22.

Abstract

Recent studies on metalloregulatory proteins suggest that coordination number/geometry and metal ion availability in a host cytosol are key determinants for biological specificity. Here, we investigate the contribution that individual metal ligands of the alpha5 sensing site of Staphylococcus aureus CzrA (Asp84, His86, His97', and His100') make to in vitro metal ion binding affinity, coordination geometry, and allosteric negative regulation of DNA operator/promoter region binding. All ligand substitution mutants exhibit significantly reduced metal ion binding affinity (K(Me)) by > or =10(3) M(-1). Substitutions of Asp84 and His97 give rise to non-native coordination geometries upon metal binding and are non-functional in allosteric coupling of metal and DNA binding (DeltaG(coupling) approximately 0 kcal mol(-1)). In contrast, His86 and His100 could be readily substituted with potentially liganding (Asp, Glu) and poorly liganding (Asn, Gln) residues with significant native-like tetrahedral metal coordination geometry retained in these mutants, leading to strong functional coupling (DeltaG(coupling) > or = +3.0 kcal mol(-1)). 1H-(15)N heteronuclear single quantum coherence (HSQC) spectra of wild-type and mutant CzrAs reveal that all H86 and H100 substitution mutants undergo 4 degrees structural switching on binding Zn(II), while D84N, H97N and H97D CzrAs do not. Thus, only those variant CzrAs that retain some tetrahedral coordination geometry characteristic of wild-type CzrA upon metal binding are capable of driving 4 degrees structural conformational changes linked to allosteric regulation of DNA binding in vitro, irrespective of the magnitude of K(Me).

摘要

近期关于金属调节蛋白的研究表明,宿主细胞质中的配位数/几何结构以及金属离子可用性是生物特异性的关键决定因素。在此,我们研究了金黄色葡萄球菌CzrA的α5传感位点的单个金属配体(Asp84、His86、His97'和His100')对体外金属离子结合亲和力、配位几何结构以及DNA操纵子/启动子区域结合的变构负调控的贡献。所有配体替代突变体的金属离子结合亲和力(K(Me))均显著降低,降幅≥10³ M⁻¹。Asp84和His97的替代导致金属结合时产生非天然的配位几何结构,并且在金属与DNA结合的变构偶联中无功能(ΔG(偶联)约为0 kcal mol⁻¹)。相比之下,His86和His100可以很容易地被潜在的配位残基(Asp、Glu)和配位能力差的残基(Asn、Gln)替代,这些突变体中保留了类似天然的四面体金属配位几何结构,导致强烈的功能偶联(ΔG(偶联)≥ +3.0 kcal mol⁻¹)。野生型和突变型CzrA的¹H-(¹⁵)N异核单量子相干(HSQC)光谱显示,所有H86和H100替代突变体在结合Zn(II)时都会发生4°的结构转换,而D84N、H97N和H97D CzrA则不会。因此,只有那些在金属结合时保留了野生型CzrA一些四面体配位几何结构特征的变体CzrA,才能够在体外驱动与DNA结合变构调节相关的4°结构构象变化,而与K(Me)的大小无关。

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