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超小金纳米团簇表面配体对溶菌酶酶活性的调控:疏水相互作用的作用。

Regulation of the Enzymatic Activities of Lysozyme by the Surface Ligands of Ultrasmall Gold Nanoclusters: The Role of Hydrophobic Interactions.

机构信息

Sauvage Center for Molecular Sciences, College of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, P. R. China.

College of Chemistry and Chemical Engineering, Tiangong University, Tianjin 300387, P. R. China.

出版信息

Langmuir. 2021 Nov 23;37(46):13787-13797. doi: 10.1021/acs.langmuir.1c02719. Epub 2021 Nov 15.

Abstract

Nanomaterials for biological applications would inevitably encounter and interact with biomolecules, which have a profound impact on the properties, functions, and even fates of both nanomaterials and biomolecules. Among the biomolecules, lysozyme (Lys) is of great importance in defending the bacterial intruder and maintaining health. Here, the interactions between fluorescent gold nanoclusters (AuNCs) (∼2 nm) capped with different surface ligands and Lys were thoroughly investigated. Fluorescence spectroscopic studies showed that dihydrolipoic acid (DHLA)-capped and glutathione (GSH)-capped AuNCs both quenched the intrinsic fluorescence of Lys by different quenching mechanisms. Agarose gel electrophoresis and zeta-potential assays showed that statistically one DHLA-AuNC could bind one Lys, while one GSH-AuNC could bind 3-4 Lys, providing new examples for the concept of a "protein complex". Activity assays indicated that DHLA-AuNCs heavily inhibited the enzymatic activity of Lys, while GSH-AuNCs had little effect. By synchronous fluorescence and circular dichroism spectroscopic studies, it was deduced that both AuNCs would interact with Lys by electrostatic attractions due to the distinct surface charges, and then DHLA-AuNCs would further interact with Lys by hydrophobic interactions, probably due to the hydrophobic carbon chain of DHLA and the hydrophobic side chains of amino acid residues in Lys, which was proved by the significant secondary structure changes caused by DHLA-AuNCs. Meanwhile, conformational changes induced by GSH-AuNCs with zwitterionic ligands were neglectable. Therefore, this work provided a comprehensive study of the consequences and mechanisms of the interactions between Lys and AuNCs, which was essential for the design and better use of nanomaterials as biological agents.

摘要

用于生物应用的纳米材料不可避免地会与生物分子相遇并发生相互作用,这对纳米材料和生物分子的性质、功能甚至命运都有深远的影响。在这些生物分子中,溶菌酶(Lys)在抵御细菌入侵和维持健康方面非常重要。在这里,我们深入研究了不同表面配体修饰的荧光金纳米簇(AuNCs)(∼2nm)与 Lys 之间的相互作用。荧光光谱研究表明,二氢硫辛酸(DHLA)和谷胱甘肽(GSH)修饰的 AuNCs 通过不同的猝灭机制猝灭 Lys 的本征荧光。琼脂糖凝胶电泳和 zeta-电位测定表明,统计上一个 DHLA-AuNC 可以结合一个 Lys,而一个 GSH-AuNC 可以结合 3-4 个 Lys,为“蛋白质复合物”的概念提供了新的例证。活性测定表明,DHLA-AuNCs 严重抑制 Lys 的酶活性,而 GSH-AuNCs 几乎没有影响。通过同步荧光和圆二色光谱研究,推断由于表面电荷的差异,两种 AuNCs 都将通过静电吸引与 Lys 相互作用,然后 DHLA-AuNC 还将通过疏水相互作用与 Lys 进一步相互作用,这可能是由于 DHLA 的疏水性碳链和 Lys 中氨基酸残基的疏水性侧链所致,这一点通过 DHLA-AuNCs 引起的显著二级结构变化得到了证明。同时,带两性离子配体的 GSH-AuNCs 引起的构象变化可以忽略不计。因此,这项工作对 Lys 与 AuNCs 相互作用的后果和机制进行了全面研究,这对于设计和更好地将纳米材料用作生物制剂至关重要。

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