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通过细菌培养中氨基酸的稳定同位素标记对粪肠球菌生物膜进行肽聚糖组成分析。

Peptidoglycan Compositional Analysis of Enterococcus faecalis Biofilm by Stable Isotope Labeling by Amino Acids in a Bacterial Culture.

作者信息

Chang James D, Wallace Ashley G, Foster Erin E, Kim Sung Joon

机构信息

Department of Chemistry and Biochemistry, Baylor University , Waco, Texas 76798, United States.

出版信息

Biochemistry. 2018 Feb 20;57(7):1274-1283. doi: 10.1021/acs.biochem.7b01207. Epub 2018 Feb 2.

Abstract

Peptidoglycan (PG) is a major component of the cell wall in Enterococcus faecalis. Accurate analysis of PG composition provides crucial insights into the bacterium's cellular functions and responses to external stimuli, but this analysis remains challenging because of various chemical modifications to PG-repeat subunits. We characterized changes to the PG composition of E. faecalis grown as planktonic bacteria and biofilm by developing "stable isotope labeling by amino acids in bacterial culture" (SILAB), optimized for bacterial cultures with incomplete amino acid labeling. This comparative analysis by mass spectrometry was performed by labeling E. faecalis in biofilm with heavy Lys (l-[C,D,N]Lys) and planktonic bacteria with natural abundance l-Lys, then mixing equal amounts of bacteria from each condition, and performing cell wall isolation and mutanolysin digestion necessary for liquid chromatography and mass spectrometry. An analytical method was developed to determine muropeptide abundances using correction factors to compensate for incomplete heavy Lys isotopic enrichment (98.33 ± 0.05%) and incorporation (83.23 ± 1.16%). Forty-seven pairs of PG fragment ions from isolated cell walls of planktonic and biofilm samples were selected for SILAB analysis. We found that the PG in biofilm showed an increased level of PG cross-linking, an increased level of N-deacetylation of GlcNAc, a decreased level of O-acetylation of MurNAc, and an increased number of stem modifications by d,d- and l,d-carboxypeptidases.

摘要

肽聚糖(PG)是粪肠球菌细胞壁的主要成分。准确分析PG组成对于深入了解该细菌的细胞功能和对外部刺激的反应至关重要,但由于PG重复亚基存在各种化学修饰,这种分析仍然具有挑战性。我们通过开发“细菌培养中氨基酸稳定同位素标记”(SILAB)来表征浮游细菌和生物膜形式生长的粪肠球菌的PG组成变化,该方法针对氨基酸标记不完全的细菌培养进行了优化。通过用重赖氨酸(l-[C,D,N]Lys)标记生物膜中的粪肠球菌,用天然丰度的l-赖氨酸标记浮游细菌,然后将每种条件下等量的细菌混合,并进行液相色谱和质谱分析所需的细胞壁分离和变溶菌素消化,从而进行这种基于质谱的比较分析。开发了一种分析方法,使用校正因子来补偿重赖氨酸同位素富集不完全(98.33±0.05%)和掺入不完全(83.23±1.16%),以确定胞壁肽丰度。从浮游和生物膜样品的分离细胞壁中选择了47对PG碎片离子进行SILAB分析。我们发现生物膜中的PG显示出PG交联水平增加、GlcNAc的N-脱乙酰化水平增加、MurNAc的O-乙酰化水平降低以及d,d-和l,d-羧肽酶引起的茎修饰数量增加。

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7
Towards an automated analysis of bacterial peptidoglycan structure.
Anal Bioanal Chem. 2017 Jan;409(2):551-560. doi: 10.1007/s00216-016-9857-5. Epub 2016 Aug 13.
8
An enhanced in vivo stable isotope labeling by amino acids in cell culture (SILAC) model for quantification of drug metabolism enzymes.
Mol Cell Proteomics. 2015 Mar;14(3):750-60. doi: 10.1074/mcp.M114.043661. Epub 2015 Jan 5.
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REDOR constraints on the peptidoglycan lattice architecture of Staphylococcus aureus and its FemA mutant.
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10
Peptidoglycan architecture of Gram-positive bacteria by solid-state NMR.
Biochim Biophys Acta. 2015 Jan;1848(1 Pt B):350-62. doi: 10.1016/j.bbamem.2014.05.031. Epub 2014 Jun 8.

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