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确定活性位点残基在传导ATP诱导的牛70 kDa热休克同源蛋白构象变化中的作用。

Mapping the role of active site residues for transducing an ATP-induced conformational change in the bovine 70-kDa heat shock cognate protein.

作者信息

Johnson E R, McKay D B

机构信息

Department of Structural Biology, Stanford University School of Medicine, California 94305-5126, USA.

出版信息

Biochemistry. 1999 Aug 17;38(33):10823-30. doi: 10.1021/bi990816g.

DOI:10.1021/bi990816g
PMID:10451379
Abstract

ATP binding induces a conformational change in 70-kDa heat shock proteins (Hsp70s) that facilitates release of bound polypeptides. Using the bovine heat shock cognate protein (Hsc70) as a representative of the Hsp70 family, we have characterized the effect of mutations on the coupling between ATP binding and the nucleotide-induced conformational change. Steady-state solution small-angle X-ray scattering and kinetic fluorescence measurements on a 60-kDa fragment of Hsc70 show that point mutations K71M, E175S, D199S, and D206S in the nucleotide binding cleft impair the ability of ATP to induce a conformational change. A secondary mutation in the peptide binding domain, E543K, "rescues" the ATP-induced transition for three of these mutations (E175S/E543K, D199S/E543K, and D206S/E543K) but not for K71M/E543K. Analysis of kinetics of the ATPase cycle confirm that these effects do not result from unexpectedly rapid ATP hydrolysis or slow ATP binding. Crystallographic structures of E175S, D199S, and D206S mutant ATPase fragment proteins show that the mutations do not perturb the tertiary structure of the protein but do significantly alter the protein-ligand interactions, due in part to an apparent charge compensation effect whereby mutating a (probably) negatively charged carboxyl group to a neutral serine displaces a K+ ion from the nucleotide binding cleft in two out of three cases (E175S and D199S but not D206S).

摘要

ATP结合会诱导70 kDa热休克蛋白(Hsp70s)发生构象变化,从而促进结合多肽的释放。我们以牛热休克同源蛋白(Hsc70)作为Hsp70家族的代表,研究了突变对ATP结合与核苷酸诱导的构象变化之间偶联的影响。对Hsc70的60 kDa片段进行稳态溶液小角X射线散射和动力学荧光测量表明,核苷酸结合裂隙中的点突变K71M、E175S、D199S和D206S损害了ATP诱导构象变化的能力。肽结合结构域中的二次突变E543K“挽救”了其中三个突变(E175S/E543K、D199S/E543K和D206S/E543K)的ATP诱导转变,但对K71M/E543K无效。ATP酶循环动力学分析证实,这些影响并非由意外快速的ATP水解或缓慢的ATP结合所致。E175S、D199S和D206S突变体ATP酶片段蛋白的晶体结构表明,这些突变不会扰乱蛋白质的三级结构,但会显著改变蛋白质-配体相互作用,部分原因是一种明显的电荷补偿效应,即三个案例中有两个案例(E175S和D199S,但不是D206S)将一个(可能)带负电荷的羧基突变为中性丝氨酸会使一个K+离子从核苷酸结合裂隙中移出。

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