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协同计算与实验研究磷酸糖基转移酶膜/配体组合体。

Synergistic computational and experimental studies of a phosphoglycosyl transferase membrane/ligand ensemble.

机构信息

Department of Chemistry, Boston University, Boston, Massachusetts, USA.

Program in Biomolecular Pharmacology, Boston University School of Medicine, Boston, Massachusetts, USA.

出版信息

J Biol Chem. 2023 Oct;299(10):105194. doi: 10.1016/j.jbc.2023.105194. Epub 2023 Aug 25.

Abstract

Complex glycans serve essential functions in all living systems. Many of these intricate and byzantine biomolecules are assembled employing biosynthetic pathways wherein the constituent enzymes are membrane-associated. A signature feature of the stepwise assembly processes is the essentiality of unusual linear long-chain polyprenol phosphate-linked substrates of specific isoprene unit geometry, such as undecaprenol phosphate (UndP) in bacteria. How these enzymes and substrates interact within a lipid bilayer needs further investigation. Here, we focus on a small enzyme, PglC from Campylobacter, structurally characterized for the first time in 2018 as a detergent-solubilized construct. PglC is a monotopic phosphoglycosyl transferase that embodies the functional core structure of the entire enzyme superfamily and catalyzes the first membrane-committed step in a glycoprotein assembly pathway. The size of the enzyme is significant as it enables high-level computation and relatively facile, for a membrane protein, experimental analysis. Our ensemble computational and experimental results provided a high-level view of the membrane-embedded PglC/UndP complex. The findings suggested that it is advantageous for the polyprenol phosphate to adopt a conformation in the same leaflet where the monotopic membrane protein resides as opposed to additionally disrupting the opposing leaflet of the bilayer. Further, the analysis showed that electrostatic steering acts as a major driving force contributing to the recognition and binding of both UndP and the soluble nucleotide sugar substrate. Iterative computational and experimental mutagenesis support a specific interaction of UndP with phosphoglycosyl transferase cationic residues and suggest a role for critical conformational transitions in substrate binding and specificity.

摘要

复杂糖在所有生命系统中都发挥着重要的功能。这些复杂而错综复杂的生物分子中的许多都是通过生物合成途径组装而成的,其中组成酶与膜相关。逐步组装过程的一个显著特征是需要特殊异质线性长链聚异戊二烯磷酸连接的底物,例如细菌中的十一碳烯磷酸(UndP)。这些酶和底物如何在双层脂膜中相互作用需要进一步研究。在这里,我们专注于一种来自弯曲杆菌的小酶,PglC,它于 2018 年首次被结构表征为一种去污剂可溶的构建体。PglC 是一种单跨磷酸糖基转移酶,它体现了整个酶超家族的功能核心结构,并催化糖蛋白组装途径中的第一个膜承诺步骤。该酶的大小很重要,因为它可以实现高水平的计算和相对容易的实验分析,对于膜蛋白而言。我们的整体计算和实验结果提供了一个膜嵌入的 PglC/UndP 复合物的高级视图。研究结果表明,对于聚异戊二烯磷酸来说,采用与单跨膜蛋白所在的同一叶层中的构象是有利的,而不是另外破坏双层的对面叶层。此外,分析表明,静电导向作为一种主要驱动力,有助于识别和结合 UndP 和可溶性核苷酸糖底物。迭代计算和实验诱变支持 UndP 与磷酸糖基转移酶阳离子残基的特定相互作用,并表明关键构象转变在底物结合和特异性中起作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2eaa/10519829/eaf55c9e019b/gr1.jpg

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