Gil-Moreno Selene, Jiménez-Martí Elena, Palacios Òscar, Zerbe Oliver, Dallinger Reinhard, Capdevila Mercè, Atrian Sílvia
Departament de Química, Facultat de Ciències, Universitat Autònoma de Barcelona, E-08193 Cerdanyola del Vallès, Spain.
Departament de Genètica, Facultat de Biologia, Universitat de Barcelona, Av. Diagonal 643, E-08028 Barcelona, Spain.
Int J Mol Sci. 2015 Dec 22;17(1):6. doi: 10.3390/ijms17010006.
Snail metallothioneins (MTs) constitute an ideal model to study structure/function relationships in these metal-binding polypeptides. Helix pomatia harbours three MT isoforms: the highly specific CdMT and CuMT, and an unspecific Cd/CuMT, which represent paralogous proteins with extremely different metal binding preferences while sharing high sequence similarity. Preceding work allowed assessing that, although, the Cys residues are responsible for metal ion coordination, metal specificity or preference is achieved by diversification of the amino acids interspersed between them. The metal-specific MT polypeptides fold into unique, energetically-optimized complexes of defined metal content, when binding their cognate metal ions, while they produce a mixture of complexes, none of them representing a clear energy minimum, with non-cognate metal ions. Another critical, and so far mostly unexplored, region is the stretch linking the individual MT domains, each of which represents an independent metal cluster. In this work, we have designed and analyzed two HpCdMT constructs with substituted linker segments, and determined their coordination behavior when exposed to both cognate and non-cognate metal ions. Results unequivocally show that neither length nor composition of the inter-domain linker alter the features of the Zn(II)- and Cd(II)-complexes, but surprisingly that they influence their ability to bind Cu(I), the non-cognate metal ion.
蜗牛金属硫蛋白(MTs)是研究这些金属结合多肽结构/功能关系的理想模型。蛾螺含有三种MT亚型:高度特异性的CdMT和CuMT,以及一种非特异性的Cd/CuMT,它们是旁系同源蛋白,虽然序列相似度高,但金属结合偏好却截然不同。先前的研究表明,尽管半胱氨酸残基负责金属离子的配位,但金属特异性或偏好是通过它们之间散布的氨基酸多样化来实现的。当结合其同源金属离子时,金属特异性MT多肽折叠成具有特定金属含量的独特、能量优化的复合物,而与非同源金属离子结合时,它们会产生一系列复合物,其中没有一个代表明显的能量最小值。另一个关键且迄今为止大多未被探索的区域是连接各个MT结构域的延伸部分,每个结构域代表一个独立的金属簇。在这项工作中,我们设计并分析了两种具有取代连接片段的HpCdMT构建体,并确定了它们在暴露于同源和非同源金属离子时的配位行为。结果明确表明,结构域间连接子的长度和组成均不会改变Zn(II)和Cd(II)复合物的特征,但令人惊讶的是,它们会影响其结合非同源金属离子Cu(I)的能力。