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通过时间依赖性同位素标记和定量液相色谱/质谱法揭示细菌细胞壁结构的方法。

Method revealing bacterial cell-wall architecture by time-dependent isotope labeling and quantitative liquid chromatography/mass spectrometry.

作者信息

Patti Gary J, Chen Jiawei, Gross Michael L

机构信息

Department of Chemistry, Washington University, One Brookings Drive, St. Louis, Missouri 63130, USA.

出版信息

Anal Chem. 2009 Apr 1;81(7):2437-45. doi: 10.1021/ac802587r.

Abstract

The molecular details of the biosynthesis and resulting architecture of the bacterial cell wall remain unclear but are essential to understanding the activity of glycopeptide antibiotics, the recognition of pathogens by hosts, and the processes of bacterial growth and division. Here we report a new strategy to elucidate bacterial cell-wall architecture based on time-dependent isotope labeling of bacterial cells quantified by liquid chromatography/accurate mass measurement mass spectrometry. The results allow us to track the fate of cell-wall precursors (which contain the vancomycin-binding site) in Enterococcus faecium, a leading antibiotic-resistant pathogen. By comparing isotopic enrichments of postinsertionally modified cell-wall precursors, we find that tripeptides and species without aspartic acid/asparagine (Asp/Asn, Asx) bridges are specific to mature cell wall. Additionally, we find that the sequence of cell-wall maturation varies throughout a cell cycle. We suggest that actively dividing E. faecium cells have three zones of unique peptidoglycan processing. Our results reveal new organizational characteristics of the bacterial cell wall that are important to understanding tertiary structure and designing novel drugs for antibiotic-resistant pathogens.

摘要

细菌细胞壁生物合成的分子细节及其最终结构仍不清楚,但对于理解糖肽类抗生素的活性、宿主对病原体的识别以及细菌生长和分裂过程至关重要。在此,我们报告一种基于液相色谱/精确质量测量质谱法定量的细菌细胞时间依赖性同位素标记来阐明细菌细胞壁结构的新策略。这些结果使我们能够追踪粪肠球菌(一种主要的耐抗生素病原体)中细胞壁前体(其含有万古霉素结合位点)的命运。通过比较插入后修饰的细胞壁前体的同位素富集情况,我们发现三肽和没有天冬氨酸/天冬酰胺(Asp/Asn,Asx)桥的种类是成熟细胞壁所特有的。此外,我们发现细胞壁成熟的顺序在整个细胞周期中有所不同。我们认为,正在积极分裂的粪肠球菌细胞具有三个独特肽聚糖加工区域。我们的结果揭示了细菌细胞壁新的组织特征,这对于理解三级结构和设计针对耐抗生素病原体的新型药物很重要。

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