The three-sided right-handed β-helix is a versatile fold for glycan interactions.

IF 3.4 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Glycobiology Pub Date : 2024-05-26 DOI:10.1093/glycob/cwae037
Audrey A Burnim, Keith Dufault-Thompson, Xiaofang Jiang
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Abstract

Interactions between proteins and glycans are critical to various biological processes. With databases of carbohydrate-interacting proteins and increasing amounts of structural data, the three-sided right-handed β-helix (RHBH) has emerged as a significant structural fold for glycan interactions. In this review, we provide an overview of the sequence, mechanistic, and structural features that enable the RHBH to interact with glycans. The RHBH is a prevalent fold that exists in eukaryotes, prokaryotes, and viruses associated with adhesin and carbohydrate-active enzyme (CAZyme) functions. An evolutionary trajectory analysis on structurally characterized RHBH-containing proteins shows that they likely evolved from carbohydrate-binding proteins with their carbohydrate-degrading activities evolving later. By examining three polysaccharide lyase and three glycoside hydrolase structures, we provide a detailed view of the modes of glycan binding in RHBH proteins. The 3-dimensional shape of the RHBH creates an electrostatically and spatially favorable glycan binding surface that allows for extensive hydrogen bonding interactions, leading to favorable and stable glycan binding. The RHBH is observed to be an adaptable domain capable of being modified with loop insertions and charge inversions to accommodate heterogeneous and flexible glycans and diverse reaction mechanisms. Understanding this prevalent protein fold can advance our knowledge of glycan binding in biological systems and help guide the efficient design and utilization of RHBH-containing proteins in glycobiology research.

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三面右旋 "绊脚石 "螺旋是一种多用途的糖相互作用折叠结构。
蛋白质与聚糖之间的相互作用对各种生物过程至关重要。随着碳水化合物相互作用蛋白数据库的建立和结构数据量的不断增加,三面右旋 "绊脚石 "螺旋(RHBH)已成为聚糖相互作用的一个重要结构折叠。在本综述中,我们将概述 RHBH 与聚糖相互作用的序列、机理和结构特征。RHBH 是真核生物、原核生物和病毒中普遍存在的折叠结构,与粘附素和碳水化合物活性酶(CAZyme)功能有关。对具有结构特征的含 RHBH 蛋白的进化轨迹分析表明,它们很可能是由碳水化合物结合蛋白进化而来,其碳水化合物降解活性是后来进化的。通过研究三种多糖裂解酶和三种糖苷水解酶的结构,我们详细了解了 RHBH 蛋白的糖结合模式。RHBH 的三维形状创造了一个在静电和空间上都有利的聚糖结合表面,允许广泛的氢键相互作用,导致有利和稳定的聚糖结合。据观察,RHBH 是一个适应性很强的结构域,能够通过环路插入和电荷反转进行修饰,以适应异质、灵活的聚糖和不同的反应机制。了解这种普遍存在的蛋白质折叠可以增进我们对生物系统中聚糖结合的了解,并有助于指导在糖生物学研究中有效设计和利用含 RHBH 的蛋白质。
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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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