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Structural Basis for Metal Binding Specificity: the N-terminal Cadmium Binding Domain of the P1-type ATPase CadA

机译:金属结合特异性的结构基础:P1型ATPase CadA的N末端镉结合结构域

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摘要

In bacteria, P1-type ATPases are responsible for resistance to di- and monovalent toxic heavy metals by taking them out of the cell. These ATPases have a cytoplasmic N terminus comprising metal binding domains defined by a βαββαβ fold and a CXXC metal binding motif. To check how the structural properties of the metal binding site in the N terminus can influence the metal specificity of the ATPase, the first structure of a Cd(II)-ATPase N terminus was determined by NMR and its coordination sphere was investigated by X-ray absorption spectroscopy. A novel metal binding environment was found, comprising the two conserved Cys residues of the metal binding motif and a Glu in loop 5. A bioinformatic search identifies an ensemble of highly homologous sequences presumably with the same function. Another group of highly homologous sequences is found which can be referred to as zinc-detoxifying P1-type ATPases with the metal binding pattern DCXXC in the N terminus. Because no carboxylate groups participate in Cu(I) or Ag(I) binding sites, we suggest that the acidic residue plays a key role in the coordination properties of divalent cations, hence conferring a function to the N terminus in the metal specificity of the ATPase.
机译:在细菌中,P1型ATP酶通过将其从细胞中带走,从而对二价和一价有毒重金属产生抗性。这些ATP酶具有胞质N末端,其包含由βαββαβ折叠和CXXC金属结合基序限定的金属结合域。为了检查N末端金属结合位点的结构特性如何影响ATPase的金属特异性,通过NMR确定了Cd(II)-ATPase N末端的第一结构,并通过X-光谱研究了其配位球射线吸收光谱法。发现了一种新颖的金属结合环境,其包括金属结合基序的两个保守的Cys残基和环5中的Glu。生物信息学搜索鉴定了高度同源序列的集合,推测其具有相同的功能。发现另一组高度同源的序列,其可以被称为在N末端具有金属结合模式DCXXC的锌解毒P1-型ATP酶。因为没有羧酸盐基团参与Cu(I)或Ag(I)的结合位点,所以我们建议酸性残基在二价阳离子的配位特性中起关键作用,因此赋予N端金属离子特异性的功能。 ATP酶。

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