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Insight into Elongation Stages of Peptidoglycan Processing in Bacterial Cytoplasmic Membranes

机译:深入了解细菌胞质膜中肽聚糖加工的延伸阶段

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摘要

Peptidoglycan (PG) biosynthesis and assembly are needed for bacterial cell wall formation. Lipid II is the precursor in the PG biosynthetic pathway and carries a nascent PG unit that is processed by glycosyltransferases. Despite its immense therapeutic value as a target of several classes of antibiotics, the conformational ensemble of lipid II in bacterial membranes and its interactions with membrane-anchored enzymes remain elusive. In this work, lipid II and its elongated forms (lipid VI and lipid XII) were modeled and simulated in bilayers of POPE (palmitoyl-oleoyl-phosphatidyl-ethanolamine) and POPG (palmitoyl-oleoyl-phosphatidyl-glycerol) that mimic the prototypical composition of Gram-negative cytoplasmic membranes. In addition, penicillin-binding protein 1b (PBP1b) from Escherichia coli was modeled and simulated in the presence of a nascent PG to investigate their interactions. Trajectory analysis reveals that as the glycan chain grows, the non-reducing end of the nascent PG displays much greater fluctuation along the membrane normal and minimally interacts with the membrane surface. In addition, dihedral angles within the pyrophosphate moiety are determined by the length of the PG moiety and its surrounding environment. When a nascent PG is bound to PBP1b, the stem peptide remains in close contact with PBP1b by structural rearrangement of the glycan chain. Most importantly, the number of nascent PG units required to reach the transpeptidase domain are determined to be 7 or 8. Our findings complement experimental results to further understand how the structure of nascent PG can dictate the assembly of the PG scaffold.
机译:肽聚糖(PG)的生物合成和组装是细菌细胞壁形成所必需的。脂质II是PG生物合成途径中的前体,并带有由糖基转移酶处理的新生PG单元。尽管它作为几种抗生素的靶标具有巨大的治疗价值,但细菌膜中脂质II的构象集合及其与膜锚定酶的相互作用仍然难以捉摸。在这项工作中,脂质II及其延长形式(脂质VI和脂质XII)在模仿原型组成的POPE(棕榈酰-油酰-磷脂酰-乙醇胺)和POPG(棕榈酰-油酰-磷脂酰-甘油)的双层中建模和模拟。革兰氏阴性细胞质膜。此外,在新生的PG存在下对来自大肠杆菌的青霉素结合蛋白1b(PBP1b)进行建模和模拟,以研究它们之间的相互作用。轨迹分析表明,随着聚糖链的增长,新生PG的非还原末端沿膜正常方向显示出更大的波动,并且与膜表面的相互作用最小。另外,焦磷酸盐部分内的二面角由PG部分的长度及其周围环境决定。当新生的PG与PBP1b结合时,干肽通过聚糖链的结构重排保持与PBP1b紧密接触。最重要的是,确定达到转肽酶结构域所需的新生PG单元数为7或8。我们的发现对实验结果进行了补充,以进一步了解新生PG的结构如何决定PG支架的组装。

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