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在肽骨架内设计富含硫醇盐的金属结合位点。

Design of thiolate rich metal binding sites within a peptidic framework.

作者信息

Łuczkowski Marek, Stachura Monika, Schirf Virgil, Demeler Borries, Hemmingsen Lars, Pecoraro Vincent L

机构信息

Department of Chemistry, UniVersity of Michigan, Ann Arbor, Michigan 48109-1055, USA.

出版信息

Inorg Chem. 2008 Dec 1;47(23):10875-88. doi: 10.1021/ic8009817.

Abstract

A de novo protein design strategy provides a powerful tool to elucidate how heavy metals interact with proteins.Cysteine derivatives of the TRI peptide family (Ac-G(LKALEEK)4G-NH2) have been shown to bind heavy metals in an unusual trigonal geometry. Our present objective was to design binding sites in R-helical scaffolds that are able to form higher coordination number complexes with Cd(II) and Hg(II). Herein, we evaluate the binding of Cd(II) and Hg(II) to double cysteine substituted TRI peptides lacking intervening leucines between sulfurs in the heptads. We compare a -Cysd-X-X-X-Cysa- binding motif found in TRIL12CL16C to the more common -Cysa-X-X-Cysd- sequence of native proteins found in TRIL9CL12C. Compared to TRI, these substitutions destabilize the helical aggregates,leading to mixtures of two- and three-stranded bundles. The three-stranded coiled coils are stabilized by the addition of metals. TRIL9CL12C forms distorted tetrahedral complexes with both Cd(II) and Hg(II), as supported by UV-vis,CD, 113Cd NMR, 199Hg NMR and 111mCd PAC spectroscopy. Additionally, these signatures are very similar to those found for heavy metal substituted rubredoxin. These results suggest that in terms of Hg(II) binding, TRIL9CL12Ccan be considered as a good mimic of the metallochaperone HAH1, that has previously been shown to form protein dimers. TRIL12CL16C has limited ability to generate homoleptic tetrahedral complexes (Cd(SR)42-). These type of complexes were identified only for Hg(II). However, the spectroscopic signatures suggest a different geometry around the metal ion, demonstrating that effective metal sequestration into the hydrophobic interior of the bundle requires more than simply adding two sulfur residues in adjacent layers of the peptide core. Thus, proper design of metal binding sites must also consider the orientation of cysteine sidechains in a vs d positions of the heptads.

摘要

一种从头开始的蛋白质设计策略为阐明重金属与蛋白质如何相互作用提供了强大工具。TRI肽家族(Ac-G(LKALEEK)4G-NH2)的半胱氨酸衍生物已被证明能以一种不寻常的三角几何结构结合重金属。我们当前的目标是在α-螺旋支架中设计结合位点,使其能够与Cd(II)和Hg(II)形成更高配位数的配合物。在此,我们评估Cd(II)和Hg(II)与七肽重复序列中硫原子之间缺少中间亮氨酸的双半胱氨酸取代TRI肽的结合情况。我们将在TRIL12CL16C中发现的-Cysd-X-X-X-Cysa-结合基序与在TRIL9CL12C中发现的天然蛋白质中更常见的-Cysa-X-X-Cysd-序列进行比较。与TRI相比,这些取代使螺旋聚集体不稳定,导致双链和三链束的混合物。通过添加金属可使三链卷曲螺旋稳定下来。UV-vis、CD、113Cd NMR、199Hg NMR和111mCd PAC光谱表明,TRIL9CL12C与Cd(II)和Hg(II)均形成扭曲的四面体配合物。此外,这些特征与重金属取代的铁氧化还原蛋白的特征非常相似。这些结果表明,就Hg(II)结合而言,TRIL9CL12C可被视为金属伴侣蛋白HAH1的良好模拟物,此前已证明HAH1能形成蛋白质二聚体。TRIL12CL16C生成同配四面体配合物(Cd(SR)42-)的能力有限。仅在Hg(II)的情况下鉴定出了这类配合物。然而,光谱特征表明金属离子周围的几何结构不同,这表明要将金属有效地螯合到束的疏水内部,不仅仅是在肽核心的相邻层中简单地添加两个硫残基。因此,金属结合位点的合理设计还必须考虑七肽重复序列a位和d位中半胱氨酸侧链的取向。

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