Buré Corinne, Le Sénéchal Caroline, Macias Luis, Tokarski Caroline, Vilain Sébastien, Brodbelt Jennifer S
Institute of Chemistry & Biology of Membranes & Nanoobjects, UMR 5248, CNRS, University of Bordeaux, Bordeaux INP, Bordeaux, Pessac F-33076, France.
Department of Chemistry, University of Texas, Austin, Texas 78712, United States.
Anal Chem. 2021 Mar 9;93(9):4255-4262. doi: 10.1021/acs.analchem.0c05069. Epub 2021 Feb 24.
Lipopolysaccharides (LPS) constitute the outermost layer of Gram-negative bacteria and consequently play an important role in bacterial infections. In order to address public health issues posed by Gram-negative bacteria, it is necessary to elucidate the structure of the molecular actors at the forefront of infections. LPS virulence and toxicity are partially modulated by lipid A, a hydrophobic saccharolipid that anchors LPS to the bacterial outer membrane. Understanding the lipid A structure is inherently intertwined with understanding its role as an endotoxin. Accordingly, several successful strategies incorporating tandem mass spectrometry have been applied toward the structural analysis of lipid A. Herein, a shotgun HCD strategy was applied toward the characterization of the lipid A profile of PAO1. This analysis was enhanced by the development of an LC-MS/MS approach to eliminate isomeric signals in the MS/MS spectra that confounded characterization. Importantly, combining reverse phase chromatography with HCD and ultraviolet photodissociation analyses of the lipid A profile revealed the presence of previously unreported lipid A acyl chain positional isomers. Altogether, these strategies provide the most in-depth structural and molecular characterization of PAO1 lipid A to date.
脂多糖(LPS)构成革兰氏阴性菌的最外层,因此在细菌感染中起重要作用。为了解决革兰氏阴性菌带来的公共卫生问题,有必要阐明感染前沿分子参与者的结构。LPS的毒力和毒性部分由脂质A调节,脂质A是一种将LPS锚定在细菌外膜上的疏水糖脂。了解脂质A的结构与理解其作为内毒素的作用有着内在的联系。因此,几种结合串联质谱的成功策略已被应用于脂质A的结构分析。在此,采用鸟枪法HCD策略对PAO1的脂质A谱进行表征。通过开发一种液相色谱-串联质谱方法来消除串联质谱谱图中混淆表征的异构体信号,增强了该分析。重要的是,将反相色谱与脂质A谱的HCD和紫外光解离分析相结合,揭示了以前未报道的脂质A酰基链位置异构体的存在。总之,这些策略提供了迄今为止对PAO1脂质A最深入的结构和分子表征。