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革兰氏阳性菌中通过杂合肽聚糖组装途径合成镶嵌肽聚糖交联桥。

Synthesis of mosaic peptidoglycan cross-bridges by hybrid peptidoglycan assembly pathways in gram-positive bacteria.

作者信息

Arbeloa Ana, Hugonnet Jean-Emmanuel, Sentilhes Anne-Charlotte, Josseaume Nathalie, Dubost Lionnel, Monsempes Christelle, Blanot Didier, Brouard Jean-Paul, Arthur Michel

机构信息

INSERM E0004, Laboratoire de Recherche Moléculaire sur les Antibiotiques, 15 rue de l'Ecole de Médecine, 75270 Paris, cedex 06, France.

出版信息

J Biol Chem. 2004 Oct 1;279(40):41546-56. doi: 10.1074/jbc.M407149200. Epub 2004 Jul 26.

DOI:10.1074/jbc.M407149200
PMID:15280360
Abstract

The peptidoglycan cross-bridges of Staphylococcus aureus, Enterococcus faecalis, and Enterococcus faecium consist of the sequences Gly(5), l-Ala(2), and d-Asx, respectively. Expression of the fmhB, femA, and femB genes of S. aureus in E. faecalis led to the production of peptidoglycan precursors substituted by mosaic side chains that were efficiently used by the penicillin-binding proteins for cross-bridge formation. The Fem transferases were specific for incorporation of glycyl residues at defined positions of the side chains in the absence of any additional S. aureus factors such as tRNAs used for amino acid activation. The PBPs of E. faecalis displayed a broad substrate specificity because mosaic side chains containing from 1 to 5 residues and Gly instead of l-Ala at the N-terminal position were used for peptidoglycan cross-linking. Low affinity PBP2a of S. aureus conferred beta-lactam resistance in E. faecalis and E. faecium, thereby indicating that there was no barrier to heterospecific expression of resistance caused by variations in the structure of peptidoglycan precursors. Thus, conservation of the structure of the peptidoglycan cross-bridges in members of the same species reflects the high specificity of the enzymes for side chain synthesis, although this is not essential for the activity of the PBPs.

摘要

金黄色葡萄球菌、粪肠球菌和屎肠球菌的肽聚糖交联桥分别由Gly(5)、l - Ala(2)和d - Asx序列组成。金黄色葡萄球菌的fmhB、femA和femB基因在粪肠球菌中的表达导致产生了被镶嵌侧链取代的肽聚糖前体,这些前体被青霉素结合蛋白有效地用于交联桥的形成。在没有任何额外的金黄色葡萄球菌因子(如用于氨基酸活化的tRNA)的情况下,Fem转移酶对在侧链特定位置掺入甘氨酰残基具有特异性。粪肠球菌的青霉素结合蛋白表现出广泛的底物特异性,因为含有1至5个残基且N端位置为Gly而非l - Ala的镶嵌侧链被用于肽聚糖交联。金黄色葡萄球菌的低亲和力PBP2a赋予粪肠球菌和屎肠球菌β - 内酰胺抗性,从而表明肽聚糖前体结构的变化不会对异源特异性抗性表达造成障碍。因此,同一物种成员中肽聚糖交联桥结构的保守性反映了酶对侧链合成的高度特异性,尽管这对青霉素结合蛋白的活性并非必不可少。

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