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利用肉毒梭菌 Maf 糖基转移酶对受体底物的混杂性对小型菌毛蛋白嵌合体进行糖基工程改造。

Harnessing the acceptor substrate promiscuity of Clostridium botulinum Maf glycosyltransferase to glyco-engineer mini-flagellin protein chimeras.

机构信息

CSIR- Institute of Microbial Technology, Sector 39-A, Chandigarh, 160036, India.

出版信息

Commun Biol. 2024 Aug 21;7(1):1029. doi: 10.1038/s42003-024-06736-y.

Abstract

Several bacterial flagellins are O-glycosylated with nonulosonic acids on surface-exposed Serine/Threonine residues by Maf glycosyltransferases. The Clostridium botulinum Maf glycosyltransferase (CbMaf) displays considerable donor substrate promiscuity, enabling flagellin O-glycosylation with N-acetyl neuraminic acid (Neu5Ac) and 3-deoxy-D-manno-octulosonic acid in the absence of the native nonulosonic acid, a legionaminic acid derivative. Here, we have explored the sequence/structure attributes of the acceptor substrate, flagellin, required by CbMaf glycosyltransferase for glycosylation with Neu5Ac and KDO, by co-expressing C. botulinum flagellin constructs with CbMaf glycosyltransferase in an E. coli strain producing cytidine-5'-monophosphate (CMP)-activated Neu5Ac, and employing intact mass spectrometry analysis and sialic acid-specific flagellin biotinylation as readouts. We found that CbMaf was able to glycosylate mini-flagellin constructs containing shortened alpha-helical secondary structural scaffolds and reduced surface-accessible loop regions, but not non-cognate flagellin. Our experiments indicated that CbMaf glycosyltransferase recognizes individual Ser/Thr residues in their local surface-accessible conformations, in turn, supported in place by the secondary structural scaffold. Further, CbMaf glycosyltransferase also robustly glycosylated chimeric proteins constructed by grafting cognate mini-flagellin sequences onto an unrelated beta-sandwich protein. Our recombinant engineering experiments highlight the potential of CbMaf glycosyltransferase in future glycoengineering applications, especially for the neo-O-sialylation of proteins, employing E. coli strains expressing CMP-Neu5Ac (and not CMP-KDO).

摘要

几种细菌鞭毛蛋白通过 maf 糖基转移酶在暴露于表面的丝氨酸/苏氨酸残基上用非环庚酮酸进行 o-糖基化。肉毒梭菌 maf 糖基转移酶 (CbMaf) 显示出相当大的供体底物混杂性,能够在没有天然非环庚酮酸( legionaminic 酸衍生物)的情况下,用 n-乙酰神经氨酸 (Neu5Ac) 和 3-脱氧-d-甘露-o-辛酮酸对鞭毛蛋白进行 o-糖基化。在这里,我们通过在产生胞苷-5'-单磷酸 (CMP)-激活的 Neu5Ac 的大肠杆菌菌株中共同表达 C. botulinum 鞭毛蛋白构建体和 CbMaf 糖基转移酶,探索了 CbMaf 糖基转移酶用于 Neu5Ac 和 KDO 糖基化的受体底物(鞭毛蛋白)的序列/结构属性,并采用完整质量分析和唾液酸特异性鞭毛蛋白生物素化作为读出。我们发现 CbMaf 能够糖基化包含缩短的α-螺旋二级结构支架和减少的表面可及环区域的 mini-flagellin 构建体,但不能糖基化非同源鞭毛蛋白。我们的实验表明,CbMaf 糖基转移酶能够识别局部表面可及构象中的单个 Ser/Thr 残基,反过来又得到二级结构支架的支持。此外,CbMaf 糖基转移酶还能够强烈糖基化通过将同源 mini-flagellin 序列嫁接到不相关的β-三明治蛋白上构建的嵌合蛋白。我们的重组工程实验突出了 CbMaf 糖基转移酶在未来糖基工程应用中的潜力,特别是在使用表达 CMP-Neu5Ac(而不是 CMP-KDO)的大肠杆菌菌株进行新的 o-唾液酸化蛋白方面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bdcd/11339370/00aff050691d/42003_2024_6736_Fig1_HTML.jpg

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