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Asymmetric phospholipid: lipopolysaccharide bilayers; a Gram-negative bacterial outer membrane mimic

机译:不对称磷脂:脂多糖双层;革兰氏阴性细菌外膜模拟物

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摘要

The Gram-negative bacterial outer membrane (OM) is a complex and highly asymmetric biological barrier but the small size of bacteria has hindered advances in in vivo examination of membrane dynamics. Thus, model OMs, amenable to physical study, are important sources of data. Here, we present data from asymmetric bilayers which emulate the OM and are formed by a simple two-step approach. The bilayers were deposited on an SiO2 surface by Langmuir-Blodgett deposition of phosphatidylcholine as the inner leaflet and, via Langmuir-Schaefer deposition, an outer leaflet of either Lipid A or Escherichia coli rough lipopolysaccharides (LPS). The membranes were examined using neutron reflectometry (NR) to examine the coverage and mixing of lipids between the bilayer leaflets. NR data showed that in all cases, the initial deposition asymmetry was mostly maintained for more than 16 h. This stability enabled the sizes of the headgroups and bilayer roughness of l,2-dipalmitoyl-sn-glycero-3-phosphocholine and Lipid A, Rc-LPS and Ra-LPS to be clearly resolved. The results show that rough LPS can be manipulated like phospholipids and used to fabricate advanced asymmetric bacterial membrane models using well-known bilayer deposition techniques. Such models will enable OM dynamics and interactions to be studied under in vivo-like conditions.
机译:革兰氏阴性细菌外膜(OM)是复杂且高度不对称的生物屏障,但细菌的小尺寸阻碍了体内对膜动力学的检查的进展。因此,适合进行物理研究的模型OM是重要的数据来源。在这里,我们介绍了来自非对称双层的数据,这些双层仿真OM是通过简单的两步方法形成的。通过磷脂酰胆碱的Langmuir-Blodgett沉积作为内部小叶,以及通过Langmuir-Schaefer沉积,脂质A或大肠杆菌粗脂多糖(LPS)的外部小叶,将双层沉积在SiO2表面上。使用中子反射计(NR)检查膜,以检查双层小叶之间脂质的覆盖和混合。 NR数据表明,在所有情况下,最初的沉积不对称现象大部分都保持了16小时以上。这种稳定性使得1,2-二棕榈酰-sn-甘油-3-磷酸胆碱和脂质A,Rc-LPS和Ra-LPS的头基的大小和双层粗糙度得以清楚地分辨。结果表明,粗糙的LPS可以像磷脂一样被处理,并可以使用众所周知的双层沉积技术来制造高级的不对称细菌膜模型。这样的模型将使OM动力学和相互作用能够在类似体内的条件下进行研究。

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