Chemo-enzymatic synthesis of tetrasaccharide linker peptides to study the divergent step in glycosaminoglycan biosynthesis.

IF 3.4 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Glycobiology Pub Date : 2024-04-19 DOI:10.1093/glycob/cwae016
Marie Bourgeais, Farah Fouladkar, Margot Weber, Elisabetta Boeri-Erba, Rebekka Wild
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Abstract

Glycosaminoglycans are extended linear polysaccharides present on cell surfaces and within the extracellular matrix that play crucial roles in various biological processes. Two prominent glycosaminoglycans, heparan sulfate and chondroitin sulfate, are covalently linked to proteoglycan core proteins through a common tetrasaccharide linker comprising glucuronic acid, galactose, galactose, and xylose moities. This tetrasaccharide linker is meticulously assembled step by step by four Golgi-localized glycosyltransferases. The addition of the fifth sugar moiety, either N-acetylglucosamine or N-acetylgalactosamine, initiates further chain elongation, resulting in the formation of heparan sulfate or chondroitin sulfate, respectively. Despite the fundamental significance of this step in glycosaminoglycan biosynthesis, its regulatory mechanisms have remained elusive. In this study, we detail the expression and purification of the four linker-synthesizing glycosyltransferases and their utilization in the production of fluorescent peptides carrying the native tetrasaccharide linker. We generated five tetrasaccharide peptides, mimicking the core proteins of either heparan sulfate or chondroitin sulfate proteoglycans. These peptides were readily accepted as substrates by the EXTL3 enzyme, which adds an N-acetylglucosamine moiety, thereby initiating heparan sulfate biosynthesis. Importantly, EXTL3 showed a preference towards peptides mimicking the core proteins of heparan sulfate proteoglycans over the ones from chondroitin sulfate proteoglycans. This suggests that EXTL3 could play a role in the decision-making step during glycosaminoglycan biosynthesis. The innovative strategy for chemo-enzymatic synthesis of fluorescent-labeled linker-peptides promises to be instrumental in advancing future investigations into the initial steps and the divergent step of glycosaminoglycan biosynthesis.

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用化学酶法合成四糖连接肽,研究糖胺聚糖生物合成的分化步骤。
糖胺聚糖是存在于细胞表面和细胞外基质内的延伸线性多糖,在各种生物过程中发挥着至关重要的作用。硫酸肝素和硫酸软骨素是两种主要的糖胺聚糖,它们通过由葡萄糖醛酸、半乳糖、半乳糖和木糖组成的共同四糖连接体与蛋白多糖核心蛋白共价连接。这种四糖连接体由四种定位在高尔基的糖基转移酶一步步精心组装而成。加入第五个糖分子(N-乙酰葡糖胺或 N-乙酰半乳糖胺)后,链会进一步拉长,分别形成硫酸肝素或硫酸软骨素。尽管这一步骤在糖胺聚糖生物合成中具有重要意义,但其调控机制却一直难以捉摸。在本研究中,我们详细介绍了四种连接体合成糖基转移酶的表达和纯化,以及利用它们生产携带原生四糖连接体的荧光肽的过程。我们生成了五种四糖肽,模拟硫酸肝素或硫酸软骨素蛋白多糖的核心蛋白。这些多肽很容易被 EXTL3 酶作为底物接受,EXTL3 酶会添加一个 N-乙酰葡糖胺分子,从而启动硫酸肝素的生物合成。重要的是,EXTL3 对模仿硫酸肝素蛋白聚糖核心蛋白的肽表现出偏好,而不是硫酸软骨素蛋白聚糖的肽。这表明,EXTL3 可能在糖胺聚糖生物合成过程中的决策步骤中发挥作用。用化学酶法合成荧光标记连接肽的创新策略有望推动未来对糖胺聚糖生物合成的初始步骤和分化步骤的研究。
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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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