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LpxK对ATCC 19606的生长至关重要:与脂多糖A途径中间体的毒性积累的关系。

LpxK Is Essential for Growth of ATCC 19606: Relationship to Toxic Accumulation of Lipid A Pathway Intermediates.

作者信息

Wei Jun-Rong, Richie Daryl L, Mostafavi Mina, Metzger Louis E, Rath Christopher M, Sawyer William S, Takeoka Kenneth T, Dean Charles R

机构信息

Novartis Institutes for BioMedical Research, Emeryville, California, USA.

出版信息

mSphere. 2017 Jul 26;2(4). doi: 10.1128/mSphere.00199-17. eCollection 2017 Jul-Aug.

Abstract

ATCC 19606 can grow without lipid A, the major component of lipooligosaccharide. However, we previously reported that depletion of LpxH (the fourth enzyme in the lipid A biosynthetic pathway) prevented growth of this strain due to toxic accumulation of lipid A pathway intermediates. Here, we explored whether a similar phenomenon occurred with depletion of LpxK, a kinase that phosphorylates disaccharide 1-monophosphate (DSMP) at the 4' position to yield lipid IV. An ATCC 19606 derivative with LpxK expression under the control of an isopropyl β-d-1-thiogalactopyranoside (IPTG)-regulated expression system failed to grow without induction, indicating that LpxK is essential for growth. Light and electron microscopy of LpxK-depleted cells revealed morphological changes relating to the cell envelope, consistent with toxic accumulation of lipid A pathway intermediates disrupting cell membranes. Using liquid chromatography-mass spectrometry (LCMS), cellular accumulation of the detergent-like pathway intermediates DSMP and lipid X was shown. Toxic accumulation was further supported by restoration of growth upon chemical inhibition of LpxC (upstream of LpxK and the first committed step of lipid A biosynthesis) using CHIR-090. Inhibitors of fatty acid synthesis also abrogated the requirement for LpxK expression. Growth rescue with these inhibitors was possible on Mueller-Hinton agar but not on MacConkey agar. The latter contains outer membrane-impermeable bile salts, suggesting that despite growth restoration, the cell membrane permeability barrier was not restored. Therefore, LpxK is essential for growth of , since loss of LpxK causes accumulation of detergent-like pathway intermediates that inhibit cell growth. is a Gram-negative pathogen for which new therapies are needed. The lipid A biosynthetic pathway has several potential enzyme targets for the development of anti-Gram-negative agents (e.g., LpxC). However, ATCC 19606 can grow in the absence of LpxC and, correspondingly, of lipid A. In contrast, we show that cellular depletion of LpxK, a kinase occurring later in the pathway, inhibits growth. Growth inhibition results from toxic accumulation of lipid A pathway intermediates, since chemical inhibition of LpxC or fatty acid biosynthesis rescues cell growth upon loss of LpxK. Overall, this suggests that targets such as LpxK can be essential for growth even in those Gram-negative bacteria that do not require lipid A biosynthesis . This strain provides an elegant tool to derive a better understanding of the steps in a pathway that is the focus of intense interest for the development of novel antibacterials.

摘要

美国典型培养物保藏中心(ATCC)19606菌株能够在缺乏脂寡糖主要成分脂多糖A的情况下生长。然而,我们之前报道过,LpxH(脂多糖A生物合成途径中的第四个酶)缺失会导致该菌株生长受阻,原因是脂多糖A途径中间体的毒性积累。在此,我们探究了在LpxK缺失时是否会出现类似现象,LpxK是一种激酶,可将二糖1 - 单磷酸(DSMP)在4' 位磷酸化生成脂质IV。一株在异丙基β - D - 1 - 硫代半乳糖苷(IPTG)调控表达系统控制下表达LpxK的ATCC 19606衍生物在未诱导时无法生长,这表明LpxK对生长至关重要。对LpxK缺失细胞的光学和电子显微镜观察揭示了与细胞膜相关的形态变化,这与脂多糖A途径中间体的毒性积累破坏细胞膜一致。使用液相色谱 - 质谱联用(LCMS)技术,显示出细胞内类似去污剂的途径中间体DSMP和脂质X的积累。使用CHIR - 090对LpxC(LpxK上游且是脂多糖A生物合成的第一个关键步骤)进行化学抑制后细胞恢复生长,进一步支持了毒性积累的观点。脂肪酸合成抑制剂也消除了对LpxK表达的需求。使用这些抑制剂在穆勒 - 欣顿琼脂上可以实现生长挽救,但在麦康凯琼脂上不行。后者含有不能透过外膜的胆盐,这表明尽管恢复了生长,但细胞膜通透性屏障并未恢复。因此,LpxK对ATCC 19606的生长至关重要,因为LpxK缺失会导致类似去污剂的途径中间体积累,从而抑制细胞生长。ATCC 19606是一种革兰氏阴性病原体,需要新的治疗方法。脂多糖A生物合成途径有几个潜在的酶靶点可用于开发抗革兰氏阴性菌药物(例如LpxC)。然而,ATCC 19606可以在没有LpxC以及相应地没有脂多糖A的情况下生长。相比之下,我们表明该途径中较靠后的激酶LpxK在细胞内缺失会抑制生长。生长抑制是由于脂多糖A途径中间体的毒性积累所致,因为在LpxK缺失时对LpxC或脂肪酸生物合成进行化学抑制可挽救细胞生长。总体而言,这表明即使在那些不需要脂多糖A生物合成的革兰氏阴性细菌中,像LpxK这样的靶点对生长也可能至关重要。该菌株为更好地理解一条对新型抗菌药物开发具有浓厚研究兴趣的途径中的步骤提供了一个很好的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a687/5555675/65a1c50eaa76/sph0041723280001.jpg

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