Protein engineering strategies to develop lectins by design.

IF 3.4 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Ryoma Hombu, Lauren E Beatty, Sriram Neelamegham
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引用次数: 0

Abstract

Glycans regulate a wide array of biological processes, making them central to studies of cell biology. Thus, it is essential to characterize the spatiotemporal dynamics of glycans on cells and tissues, and to elucidate how glycan structures affect protein and cell function. Among the available molecular tools, glycan-binding proteins (GBPs), including naturally occurring lectins, are uniquely suited to provide this information at single-cell resolution. However, the diversity of cell-surface glycans far exceeds the number of readily available GBPs. Moreover, conventional lectins often possess shallow binding pockets that limit their recognition to terminal glycan epitopes, and such recognition often proceeds with low binding affinity. Protein engineering offers a promising strategy to expand GBP specificity, enhance affinity, and introduce novel binding capabilities. Currently large gaps remain between the available protein design principles and their application to GBP engineering. This has somewhat slowed progress in the development of glycan-targeted tools. In this review, we outline recent efforts that use rational design to inform GBP engineering for specific tasks. We also present methods to select suitable protein scaffolds and the application of directed evolution for optimizing lectin design. This includes our recent efforts to modify glycosyltransferases into GBPs, which potentially offers a predictive strategy to design lectins based on desired properties. Together, the presentation offers a roadmap for developing next-generation glycan binding proteins capable of decoding the complex glycan landscape of cells.

设计开发凝集素的蛋白质工程策略。
聚糖调节一系列广泛的生物过程,使其成为细胞生物学研究的中心。因此,表征多糖对细胞和组织的时空动态,并阐明多糖结构如何影响蛋白质和细胞功能是至关重要的。在可用的分子工具中,聚糖结合蛋白(GBPs),包括天然存在的凝集素,是唯一适合在单细胞分辨率上提供这些信息的工具。然而,细胞表面聚糖的多样性远远超过了现成的GBPs的数量。此外,传统的凝集素通常具有较浅的结合袋,这限制了它们对末端聚糖表位的识别,并且这种识别通常以低结合亲和力进行。蛋白质工程为扩大GBP特异性、增强亲和力和引入新的结合能力提供了一种有前途的策略。目前,可用的蛋白质设计原理与它们在GBP工程中的应用之间仍然存在很大的差距。这在一定程度上减缓了聚糖靶向工具的开发进程。在这篇综述中,我们概述了最近使用理性设计来告知特定任务的GBP工程的努力。我们还介绍了选择合适的蛋白质支架的方法以及定向进化在优化凝集素设计中的应用。这包括我们最近将糖基转移酶修饰成GBPs的努力,这可能提供一种基于所需性质设计凝集素的预测策略。总之,该报告为开发下一代能够解码细胞复杂聚糖景观的聚糖结合蛋白提供了路线图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Glycobiology
Glycobiology 生物-生化与分子生物学
CiteScore
7.50
自引率
4.70%
发文量
73
审稿时长
3 months
期刊介绍: Established as the leading journal in the field, Glycobiology provides a unique forum dedicated to research into the biological functions of glycans, including glycoproteins, glycolipids, proteoglycans and free oligosaccharides, and on proteins that specifically interact with glycans (including lectins, glycosyltransferases, and glycosidases). Glycobiology is essential reading for researchers in biomedicine, basic science, and the biotechnology industries. By providing a single forum, the journal aims to improve communication between glycobiologists working in different disciplines and to increase the overall visibility of the field.
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