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用神经氨酸类似物进行糖基工程改造,标记脂寡糖,并检测革兰氏阴性菌中天然唾液酸转移酶的活性。

Glycoengineering with neuraminic acid analogs to label lipooligosaccharides and detect native sialyltransferase activity in gram-negative bacteria.

机构信息

Department of Chemical Biology and Drug Discovery, Utrecht Institute for Pharmaceutical Sciences and Bijvoet Center for Biomedical Research, Utrecht University, Universiteitsweg 99, 3584CG, Utrecht, The Netherlands.

Department of Biomolecular Health Sciences, Division Infectious Diseases and Immunology, Faculty of Veterinary Medicine, Utrecht University, Yalelaan 1, 3584CL, Utrecht, The Netherlands.

出版信息

Glycobiology. 2024 Aug 30;34(10). doi: 10.1093/glycob/cwae071.

Abstract

Lipooligosaccharides are the most abundant cell surface glycoconjugates on the outer membrane of Gram-negative bacteria. They play important roles in host-microbe interactions. Certain Gram-negative pathogenic bacteria cap their lipooligosaccharides with the sialic acid, N-acetylneuraminic acid (Neu5Ac), to mimic host glycans that among others protects these bacteria from recognition by the hosts immune system. This process of molecular mimicry is not fully understood and remains under investigated. To explore the functional role of sialic acid-capped lipooligosaccharides at the molecular level, it is important to have tools readily available for the detection and manipulation of both Neu5Ac on glycoconjugates and the involved sialyltransferases, preferably in live bacteria. We and others have shown that the native sialyltransferases of some Gram-negative bacteria can incorporate extracellular unnatural sialic acid nucleotides onto their lipooligosaccharides. We here report on the expanded use of native bacterial sialyltransferases to incorporate neuraminic acids analogs with a reporter group into the lipooligosaccharides of a variety of Gram-negative bacteria. We show that this approach offers a quick strategy to screen bacteria for the expression of functional sialyltransferases and the ability to use exogenous CMP-Neu5Ac to decorate their glycoconjugates. For selected bacteria we also show this strategy complements two other glycoengineering techniques, Metabolic Oligosaccharide Engineering and Selective Exo-Enzymatic Labeling, and that together they provide tools to modify, label, detect and visualize sialylation of bacterial lipooligosaccharides.

摘要

脂寡糖是革兰氏阴性细菌外膜上最丰富的细胞表面糖缀合物。它们在宿主-微生物相互作用中发挥重要作用。某些革兰氏阴性致病细菌在其脂寡糖上加上唾液酸,N-乙酰神经氨酸(Neu5Ac),以模拟宿主糖,从而使这些细菌免受宿主免疫系统的识别。这种分子模拟的过程尚未完全了解,仍在研究中。为了在分子水平上探索唾液酸封端脂寡糖的功能作用,重要的是要有工具可用于检测和操作糖缀合物上的 Neu5Ac 和涉及的唾液酸转移酶,最好是在活细菌中。我们和其他人已经表明,一些革兰氏阴性细菌的天然唾液酸转移酶可以将细胞外非天然唾液酸核苷酸掺入其脂寡糖中。我们在这里报告了天然细菌唾液酸转移酶的扩展用途,将带有报告基团的神经氨酸类似物掺入各种革兰氏阴性细菌的脂寡糖中。我们表明,这种方法提供了一种快速筛选具有功能性唾液酸转移酶的细菌的策略,以及利用外源性 CMP-Neu5Ac 来修饰其糖缀合物的能力。对于选定的细菌,我们还表明,这种策略补充了另外两种糖工程技术,代谢寡糖工程和选择性外切酶标记,它们共同提供了修饰、标记、检测和可视化细菌脂寡糖唾液酸化的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4afb/11413452/2dd258ef8e57/cwae071sc1.jpg

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