Suppr超能文献

产生不同肽聚糖化学类型的革兰氏阳性细菌中L,D-转肽酶的特异性。

Specificity of L,D-transpeptidases from gram-positive bacteria producing different peptidoglycan chemotypes.

作者信息

Magnet Sophie, Arbeloa Ana, Mainardi Jean-Luc, Hugonnet Jean-Emmanuel, Fourgeaud Martine, Dubost Lionel, Marie Arul, Delfosse Vanessa, Mayer Claudine, Rice Louis B, Arthur Michel

机构信息

INSERM, U655-LRMA F-75006 Paris France.

出版信息

J Biol Chem. 2007 May 4;282(18):13151-9. doi: 10.1074/jbc.M610911200. Epub 2007 Feb 20.

Abstract

We report here the first direct assessment of the specificity of a class of peptidoglycan cross-linking enzymes, the L,D-transpeptidases, for the highly diverse structure of peptidoglycan precursors of Gram-positive bacteria. The lone functionally characterized member of this new family of active site cysteine peptidases, Ldt(fm) from Enterococcus faecium, was previously shown to bypass the D,D-transpeptidase activity of the classical penicillin-binding proteins leading to high level cross-resistance to glycopeptide and beta-lactam antibiotics. Ldt(fm) homologues from Bacillus subtilis (Ldt(Bs)) and E. faecalis (Ldt(fs)) were found here to cross-link their cognate disaccharide-peptide subunits containing meso-diaminopimelic acid (mesoDAP(3)) and L-Lys(3)-L-Ala-L-Ala at the third position of the stem peptide, respectively, instead of L-Lys(3)-d-iAsn in E. faecium. Ldt(fs) differed from Ldt(fm) and Ldt(Bs) by its capacity to hydrolyze the L-Lys(3)-D-Ala(4) bond of tetrapeptide (L,D-carboxypeptidase activity) and pentapeptide (L,D-endopeptidase activity) stems, in addition to the common cross-linking activity. The three enzymes were specific for their cognate acyl acceptors in the cross-linking reaction. In contrast to Ldt(fs), which was also specific for its cognate acyl donor, Ldt(fm) tolerated substitution of L-Lys(3)-D-iAsn by L-Lys(3)-L-Ala-L-Ala. Likewise, Ldt(Bs) tolerated substitution of mesoDAP(3) by L-Lys(3)-D-iAsn and L-Lys(3)-L-Ala-L-Ala in the acyl donor. Thus, diversification of the structure of peptidoglycan precursors associated with speciation has led to a parallel evolution of the substrate specificity of the L,D-transpeptidases affecting mainly the recognition of the acyl acceptor. Blocking the assembly of the side chain could therefore be used to combat antibiotic resistance involving L,D-transpeptidases.

摘要

我们在此报告了对一类肽聚糖交联酶(L,D-转肽酶)针对革兰氏阳性菌肽聚糖前体高度多样结构的特异性的首次直接评估。这个新的活性位点半胱氨酸肽酶家族中唯一功能已明确的成员,来自粪肠球菌的Ldt(fm),先前已表明它绕过了经典青霉素结合蛋白的D,D-转肽酶活性,导致对糖肽和β-内酰胺抗生素产生高水平交叉耐药性。在此发现,来自枯草芽孢杆菌的Ldt(Bs)和粪肠球菌的Ldt(fs)的同源物分别将其同源的含有内消旋二氨基庚二酸(mesoDAP(3))和在茎肽第三位的L-Lys(3)-L-Ala-L-Ala的二糖肽亚基进行交联,而不是像粪肠球菌中那样的L-Lys(3)-d-iAsn。Ldt(fs)与Ldt(fm)和Ldt(Bs)的不同之处在于,除了常见的交联活性外,它还具有水解四肽(L,D-羧肽酶活性)和五肽(L,D-内肽酶活性)茎的L-Lys(3)-D-Ala(4)键的能力。这三种酶在交联反应中对其同源的酰基受体具有特异性。与同样对其同源酰基供体具有特异性的Ldt(fs)不同,Ldt(fm)能耐受L-Lys(3)-L-Ala-L-Ala取代L-Lys(3)-D-iAsn。同样,Ldt(Bs)能耐受酰基供体中mesoDAP(3)被L-Lys(3)-D-iAsn和L-Lys(3)-L-Ala-L-Ala取代。因此,与物种形成相关的肽聚糖前体结构的多样化导致了L,D-转肽酶底物特异性的平行进化,主要影响酰基受体的识别。因此,阻断侧链的组装可用于对抗涉及L,D-转肽酶的抗生素耐药性。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验