从蛋白质结构到功能生物仿生学

Synlett Pub Date : 2024-04-17 DOI:10.1055/a-2308-1795
Canan Durukan, T. Grossmann
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引用次数: 0

摘要

开发具有确定折叠特性的复杂分子支架是化学研究的核心挑战。蛋白质是一种天然支架,由结构复杂性的层次结构所定义,在进化过程中表现出独特的功能特性,如分子识别能力,可促进目标分子的高亲和性和高选择性结合。利用这些特点,蛋白质已被用作设计合成折叠器、增强型生物催化剂以及药物发现中生物活性试剂的起点。在这篇文章中,我们介绍了我们的研究小组为稳定蛋白质折叠所采用的策略,包括生物活性肽构象的限制和化学蛋白质工程。我们讨论了将多肽演变成拟肽物以抑制蛋白质-蛋白质和蛋白质-核酸相互作用,以及对蛋白质进行选择性化学修饰以增强其生物技术应用特性。所报道的多肽和蛋白质仿生结构涵盖了广泛的分子尺寸范围,它们凸显了结构稳定对于设计功能性生物仿生学的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

From Protein Structures to Functional Biomimetics

From Protein Structures to Functional Biomimetics
The development of complex molecular scaffolds with defined folding properties represents a central challenge in chemical research. Proteins are natural scaffolds defined by a hierarchy of structural complexity and have evolved to manifest unique functional characteristics e.g., molecular recognition capabilities that facilitate the binding of target molecules with high affinity and selectivity. Utilizing these features, proteins have been used as a starting point for the design of synthetic foldamers, enhanced biocatalysts as well as bioactive reagents in drug discovery. In this account, we describe the strategies used in our group to stabilize protein folds, ranging from the constraint of bioactive peptide conformations to chemical protein engineering. We discuss the evolution of peptides into peptidomimetics to inhibit protein-protein and protein-nucleic acid interactions, and the selective chemical modification of proteins to enhance their properties for biotechnological applications. The reported peptide- and proteomimetic structures cover a broad range of molecular size and they highlight the importance of structure stabilization for the design of functional biomimetics.
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