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三肽自组装形成的生物活性水凝胶:末端修饰对生物催化的影响。

Tripeptide Self-Assembly into Bioactive Hydrogels: Effects of Terminus Modification on Biocatalysis.

机构信息

Chemical & Pharmaceutical Sciences Department, University of Trieste, 34127 Trieste, Italy.

出版信息

Molecules. 2020 Dec 31;26(1):173. doi: 10.3390/molecules26010173.

Abstract

Bioactive hydrogels based on the self-assembly of tripeptides have attracted great interest in recent years. In particular, the search is active for sequences that are able to mimic enzymes when they are self-organized in a nanostructured hydrogel, so as to provide a catalytic (bio)material whose activity can be switched on/off with assembly/disassembly. Within the diverse enzymes that have been targeted for mimicry, hydrolases find wide application in biomaterials, ranging from their use to convert prodrugs into active compounds to their ability to work in reverse and catalyze a plethora of reactions. We recently reported the minimalistic l-His-d-Phe-d-Phe for its ability to self-organize into thermoreversible and biocatalytic hydrogels for esterase mimicry. In this work, we analyze the effects of terminus modifications that mimic the inclusion of the tripeptide in a longer sequence. Therefore, three analogues, i.e., -acetylated, -amidated, or both, were synthesized, purified, characterized by several techniques, and probed for self-assembly, hydrogelation, and esterase-like biocatalysis. This work provides useful insights into how chemical modifications at the termini affect self-assembly into biocatalytic hydrogels, and these data may become useful for the future design of supramolecular catalysts for enhanced performance.

摘要

近年来,基于三肽自组装的生物活性水凝胶引起了极大的兴趣。特别是,人们积极地寻找能够在纳米结构化水凝胶中自组织时模拟酶的序列,从而提供一种可以通过组装/解组装来开启/关闭其活性的催化(生物)材料。在被模拟的各种酶中,水解酶在生物材料中得到了广泛的应用,从将前药转化为活性化合物到能够反向工作并催化大量反应的能力。我们最近报道了最小的 l-His-d-Phe-d-Phe,因为它能够自组装成热可逆和仿生催化水凝胶,以模拟酯酶。在这项工作中,我们分析了模拟将三肽包含在更长序列中的末端修饰的影响。因此,合成、纯化并通过多种技术对三种类似物(乙酰化、酰胺化或两者兼有)进行了表征,并对其自组装、水凝胶化和酯酶样生物催化进行了探测。这项工作深入了解了末端的化学修饰如何影响生物催化水凝胶的自组装,这些数据可能对未来设计用于提高性能的超分子催化剂有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e7a7/7794889/9775a0bda7a3/molecules-26-00173-sch001.jpg

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