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大肠杆菌外膜生物合成过程中脂多糖与磷脂途径之间的相互作用。

Crosstalk between the lipopolysaccharide and phospholipid pathways during outer membrane biogenesis in Escherichia coli.

作者信息

Emiola Akintunde, Andrews Steven S, Heller Carolin, George John

机构信息

School of Health, Sport and Bioscience, University of East London, Stratford Campus, London E15 4LZ, United Kingdom;

Fred Hutchinson Cancer Research Center, Seattle, WA 98109-1024.

出版信息

Proc Natl Acad Sci U S A. 2016 Mar 15;113(11):3108-13. doi: 10.1073/pnas.1521168113. Epub 2016 Feb 29.

Abstract

The outer membrane of gram-negative bacteria is composed of phospholipids in the inner leaflet and lipopolysaccharides (LPS) in the outer leaflet. LPS is an endotoxin that elicits a strong immune response from humans, and its biosynthesis is in part regulated via degradation of LpxC (EC 3.5.1.108) and WaaA (EC 2.4.99.12/13) enzymes by the protease FtsH (EC 3.4.24.-). Because the synthetic pathways for both molecules are complex, in addition to being produced in strict ratios, we developed a computational model to interrogate the regulatory mechanisms involved. Our model findings indicate that the catalytic activity of LpxK (EC 2.7.1.130) appears to be dependent on the concentration of unsaturated fatty acids. This is biologically important because it assists in maintaining LPS/phospholipids homeostasis. Further crosstalk between the phospholipid and LPS biosynthetic pathways was revealed by experimental observations that LpxC is additionally regulated by an unidentified protease whose activity is independent of lipid A disaccharide concentration (the feedback source for FtsH-mediated LpxC regulation) but could be induced in vitro by palmitic acid. Further experimental analysis provided evidence on the rationale for WaaA regulation. Overexpression of waaA resulted in increased levels of 3-deoxy-d-manno-oct-2-ulosonic acid (Kdo) sugar in membrane extracts, whereas Kdo and heptose levels were not elevated in LPS. This implies that uncontrolled production of WaaA does not increase the LPS production rate but rather reglycosylates lipid A precursors. Overall, the findings of this work provide previously unidentified insights into the complex biogenesis of the Escherichia coli outer membrane.

摘要

革兰氏阴性菌的外膜由内膜中的磷脂和外膜中的脂多糖(LPS)组成。LPS是一种内毒素,可引发人类强烈的免疫反应,其生物合成部分通过蛋白酶FtsH(EC 3.4.24.-)对LpxC(EC 3.5.1.108)和WaaA(EC 2.4.99.12/13)酶的降解来调节。由于这两种分子的合成途径都很复杂,除了要以严格的比例产生外,我们还开发了一个计算模型来探究其中涉及的调控机制。我们的模型研究结果表明,LpxK(EC 2.7.1.130)的催化活性似乎取决于不饱和脂肪酸的浓度。这在生物学上很重要,因为它有助于维持LPS/磷脂的稳态。实验观察还揭示了磷脂和LPS生物合成途径之间的进一步相互作用,即LpxC还受到一种未鉴定的蛋白酶的调节,该蛋白酶的活性与脂多糖A二糖浓度(FtsH介导的LpxC调节的反馈源)无关,但可在体外被棕榈酸诱导。进一步的实验分析为WaaA调节的原理提供了证据。WaaA的过表达导致膜提取物中3-脱氧-D-甘露糖-辛-2-酮糖酸(Kdo)糖水平升高,而LPS中的Kdo和庚糖水平并未升高。这意味着WaaA的不受控制的产生不会提高LPS的产生速率,而是会使脂多糖A前体重新糖基化。总体而言,这项工作的研究结果为大肠杆菌外膜复杂的生物合成提供了以前未被发现的见解。

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