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用于实现构象选择性材料表面结合的变质蛋白。

Metamorphic Proteins to Achieve Conformationally Selective Material Surface Binding.

作者信息

Meerbott Kyle B, Monhemi Hassan, Travaglini Lorenzo, Sawicki Artur, Ramamurthy Sakthirupini, Slocik Joseph M, Dennis Patrick B, Glover Dominic J, Walsh Tiffany R, Knecht Marc R

机构信息

Department of Chemistry, University of Miami, Coral Gables, FL, 33146, USA.

Institute for Frontier Materials, Deakin University, Geelong, VIC, 3216, Australia.

出版信息

Small. 2025 Feb;21(7):e2408141. doi: 10.1002/smll.202408141. Epub 2025 Jan 10.

Abstract

The controlled binding of proteins on nanoparticle surfaces remains a grand challenge required for many applications ranging from biomedical to energy storage. The difficulty in achieving this ability arises from the different functional groups of the biomolecule that can adsorb on the nanoparticle surface. While most proteins can only adopt a single structure, metamorphic proteins can access at least two different conformations, which presents intriguing opportunities to exploit such structural variations for binding to nanoparticles. Such effects are examined using calmodulin, a sensing messenger protein, that can adopt two conformations based on Ca binding. The affinity of the apo and holo forms of the protein for Au is examined using a highly integrated set of experimental and computation studies, which demonstrated significantly enhanced binding for the holo protein as compared to the apo. Such effects are proposed to arise from changes in the protein structure, which lead to substantially varied biomolecular surfaces that facilitate both Au adsorption and protein-protein assembly once adsorbed. Such studies provide critical information for protein structural design to control nanoparticle adsorption for wide-ranging applications.

摘要

蛋白质在纳米颗粒表面的可控结合仍是一个巨大挑战,这是从生物医学到能量存储等众多应用所必需的。实现这种能力的困难源于可吸附在纳米颗粒表面的生物分子的不同官能团。虽然大多数蛋白质只能采用单一结构,但变构蛋白可以呈现至少两种不同的构象,这为利用这种结构变化与纳米颗粒结合提供了有趣的机会。使用钙调蛋白(一种传感信使蛋白)来研究此类效应,该蛋白可基于钙结合采用两种构象。通过一套高度集成的实验和计算研究来考察该蛋白的脱辅基形式和全蛋白形式对金的亲和力,结果表明与脱辅基蛋白相比,全蛋白的结合力显著增强。这些效应被认为是由蛋白质结构的变化引起的,这导致生物分子表面发生显著变化,一旦吸附后既有利于金的吸附,也有利于蛋白质 - 蛋白质组装。此类研究为蛋白质结构设计提供了关键信息,以控制纳米颗粒吸附,从而实现广泛应用。

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