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调整杂化金属氧簇与蛋白质之间的非共价相互作用。

Fine-tuning non-covalent interactions between hybrid metal-oxo clusters and proteins.

机构信息

Department of Chemistry, KU Leuven, Celestijnenlaan 200F, Leuven 3001, Belgium.

出版信息

Faraday Discuss. 2023 Aug 11;244(0):21-38. doi: 10.1039/d2fd00161f.

Abstract

Interactions between the protein Hen Egg White Lysozyme (HEWL) and three different hybrid Anderson-Evans polyoxometalate clusters - AE-NH2 (δ-[MnMoO{(OCH)CNH}]), AE-CH3 (δ-[MnMoO{(OCH)CCH}]) and AE-Biot (δ-[MnMoO{(OCH)CNHCOCHNOS}]) - were studied tryptophan fluorescence spectroscopy and single crystal X-ray diffraction. Quenching of tryptophan fluorescence was observed in the presence of all three hybrid polyoxometalate clusters (HPOMs), but the extent of quenching and the binding affinity were greatly dependent on the nature of the organic groups attached to the cluster. Control experiments further revealed the synergistic effect of the anionic polyoxometalate core and organic ligands towards enhanced protein interactions. Furthermore, the protein was co-crystallised with each of the three HPOMs, resulting in four different crystal structures, thus allowing for the binding modes of HPOM-protein interactions to be investigated with near-atomic precision. All crystal structures displayed a unique mode of binding of the HPOMs to the protein, with both functionalisation and the pH of the crystallisation conditions influencing the interactions. From the crystal structures, it was determined that HPOM-protein non-covalent complexes formed through a combination of electrostatic attraction between the polyoxometalate cluster and positively charged surface regions of HEWL, and direct and water-mediated hydrogen bonds with both the metal-oxo inorganic core and the functional groups of the ligand, where possible. Hence, functionalisation of metal-oxo clusters shows great potential in tuning their interactions with proteins, which is of interest for several biomedical applications.

摘要

研究了蛋白质鸡卵清溶菌酶(HEWL)与三种不同的杂交安德森-埃文斯多金属氧酸盐簇——AE-NH2(δ-[MnMoO{(OCH)CNH}])、AE-CH3(δ-[MnMoO{(OCH)CCH}])和 AE-Biot(δ-[MnMoO{(OCH)CNHCOCHNOS}])之间的相互作用。通过色氨酸荧光光谱法和单晶 X 射线衍射法进行了研究。在存在所有三种杂化多金属氧酸盐簇(HPOMs)的情况下,观察到色氨酸荧光猝灭,但猝灭程度和结合亲和力在很大程度上取决于附着在簇上的有机基团的性质。对照实验进一步揭示了阴离子多金属氧酸盐核心和有机配体对增强蛋白质相互作用的协同效应。此外,该蛋白质与三种 HPOM 中的每一种共结晶,得到四个不同的晶体结构,从而可以以近原子精度研究 HPOM-蛋白质相互作用的结合模式。所有晶体结构都显示出 HPOM 与蛋白质结合的独特模式,功能化和结晶条件的 pH 值都影响相互作用。从晶体结构中可以确定,HPOM-蛋白质非共价复合物是通过多金属氧酸盐簇与 HEWL 带正电荷的表面区域之间的静电吸引以及与金属-氧无机核和配体的官能团之间的直接和水介导氢键形成的,在可能的情况下。因此,金属-氧簇的功能化在调节其与蛋白质的相互作用方面显示出巨大的潜力,这对几种生物医学应用很有意义。

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