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小白蛋白Ca(2+)结合环变体在“通道”位置修饰的分子动力学研究

Molecular dynamics study of Ca(2+) binding loop variants of parvalbumin with modifications at the "gateway" position.

作者信息

Elkins K M, Gatzeva-Topalova P Z, Nelson D J

机构信息

Gustaf H. Carlson School of Chemistry and Biochemistry, Clark University, Worcester, MA 01610, USA.

出版信息

Protein Eng. 2001 Feb;14(2):115-26. doi: 10.1093/protein/14.2.115.

Abstract

The helix-loop-helix (i.e. EF-hand) Ca(2+) ion binding motif is characteristic of a large family of high-affinity Ca(2+) ion binding proteins, including the parvalbumins and calmodulins. In this paper we describe a set of molecular dynamics computations on the major parvalbumin from the silver hake (SHPV-B). In all variants examined, both whole protein and fragments thereof, the ninth loop residue in the Ca(2+) binding coordination site in the CD helix-loop-helix region (the so-called "gateway" residue) has been mutated. The three gateway mutations examined are arginine, which has never been found at the gateway position of any EF-hand protein, cysteine, which is the residue observed least in natural EF-hand sites, and serine, which is the most common (by far) non-acidic residue substitution at this position in EF-hand proteins in general, but never in parvalbumins. Results of the molecular dynamics simulations indicate that all three modifications are disruptive to the integrity of the mutated Ca(2+) binding site in the whole parvalbumin protein. In contrast, only the arginine and cysteine mutations are disruptive to the integrity of the mutated Ca(2+) binding site in the CD fragment of the parvalbumin protein. Surprisingly, the serine variant of the CD helix-loop-helix fragment exhibited remarkable stability during the entire molecular dynamics simulation, with retention of the Ca(2+) binding site. These results indicate that there are no inherent problems (for Ca(2+) ion binding) associated with the sequence of the CD helix-loop-helix fragment that precludes the incorporation of serine at the gateway position. Since the CD site is totally disrupted in the whole protein serine variant, this indicates that the Ca(2+) ion binding deficiencies are most likely related to the unique interaction that exists between the paired EF-hands in the whole protein. Our theoretical results correlate well with previous studies on engineered EF-hand proteins and with all of our experimental evidence on the silver hake parvalbumin.

摘要

螺旋-环-螺旋(即EF手型)钙离子结合基序是一大类高亲和力钙离子结合蛋白的特征,包括小白蛋白和钙调蛋白。在本文中,我们描述了对银无须鳕主要小白蛋白(SHPV-B)进行的一组分子动力学计算。在所有研究的变体中,包括整个蛋白质及其片段,CD螺旋-环-螺旋区域中钙离子结合配位位点的第九个环残基(即所谓的“门户”残基)都发生了突变。所研究的三个门户突变分别是精氨酸,在任何EF手型蛋白的门户位置都从未发现过;半胱氨酸,在天然EF手型位点中观察到最少的残基;丝氨酸,一般来说是EF手型蛋白中该位置最常见(到目前为止)的非酸性残基替代,但在小白蛋白中从未出现过。分子动力学模拟结果表明,所有这三种修饰都会破坏整个小白蛋白中突变的钙离子结合位点的完整性。相比之下,只有精氨酸和半胱氨酸突变会破坏小白蛋白CD片段中突变的钙离子结合位点的完整性。令人惊讶的是,CD螺旋-环-螺旋片段的丝氨酸变体在整个分子动力学模拟过程中表现出显著的稳定性,并保留了钙离子结合位点。这些结果表明,CD螺旋-环-螺旋片段的序列不存在(与钙离子结合相关的)内在问题,不会排除在门户位置掺入丝氨酸。由于在整个蛋白质丝氨酸变体中CD位点完全被破坏,这表明钙离子结合缺陷很可能与整个蛋白质中配对的EF手型之间存在的独特相互作用有关。我们的理论结果与先前对工程化EF手型蛋白的研究以及我们关于银无须鳕小白蛋白的所有实验证据都有很好的相关性。

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