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Synthetic Arabinomannan Heptasaccharide Glycolipids Inhibit Biofilm Growth and Augment Isoniazid Effects in Mycobacterium smegmatis.合成阿拉伯甘露聚糖七糖糖脂抑制耻垢分枝杆菌生物膜生长并增强异烟肼的作用。
Chembiochem. 2017 Oct 5;18(19):1959-1970. doi: 10.1002/cbic.201700247. Epub 2017 Sep 7.
2
The EXIT Strategy: an Approach for Identifying Bacterial Proteins Exported during Host Infection.退出策略:一种识别宿主感染期间分泌的细菌蛋白质的方法。
mBio. 2017 Apr 25;8(2):e00333-17. doi: 10.1128/mBio.00333-17.
3
Identification of a Membrane Protein Required for Lipomannan Maturation and Lipoarabinomannan Synthesis in Corynebacterineae.棒杆菌属中脂甘露聚糖成熟和脂阿拉伯甘露聚糖合成所需膜蛋白的鉴定
J Biol Chem. 2017 Mar 24;292(12):4976-4986. doi: 10.1074/jbc.M116.772202. Epub 2017 Feb 6.
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Recognition of Mycobacterial Lipids by Immune Receptors.免疫受体对分枝杆菌脂质的识别。
Trends Immunol. 2017 Jan;38(1):66-76. doi: 10.1016/j.it.2016.10.009. Epub 2016 Nov 23.
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Golgi self-correction generates bioequivalent glycans to preserve cellular homeostasis.高尔基体自我校正产生生物等效聚糖以维持细胞稳态。
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Spatially distinct and metabolically active membrane domain in mycobacteria.分枝杆菌中空间上不同且具有代谢活性的膜结构域。
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The TULIP superfamily of eukaryotic lipid-binding proteins as a mediator of lipid sensing and transport.真核生物脂质结合蛋白的郁金香(TULIP)超家族作为脂质传感和转运的介质。
Biochim Biophys Acta. 2016 Aug;1861(8 Pt B):913-923. doi: 10.1016/j.bbalip.2016.01.016. Epub 2016 Jan 26.
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Immunoevasion and immunosuppression of the macrophage by Mycobacterium tuberculosis.结核分枝杆菌对巨噬细胞的免疫逃逸和免疫抑制。
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Orchestrating high-throughput genomic analysis with Bioconductor.使用Bioconductor编排高通量基因组分析。
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10
Manipulation of the endocytic pathway and phagocyte functions by Mycobacterium tuberculosis lipoarabinomannan.结核分枝杆菌脂阿拉伯甘露聚糖对胞吞途径和吞噬细胞功能的调控
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细胞包膜相关磷脂结合蛋白LmeA是分枝杆菌中甘露聚糖聚合所必需的。

The cell envelope-associated phospholipid-binding protein LmeA is required for mannan polymerization in mycobacteria.

作者信息

Rahlwes Kathryn C, Ha Stephanie A, Motooka Daisuke, Mayfield Jacob A, Baumoel Lisa R, Strickland Justin N, Torres-Ocampo Ana P, Nakamura Shota, Morita Yasu S

机构信息

From the Department of Microbiology, University of Massachusetts, Amherst, MA 01003.

the Department of Infection Metagenomics, Research Institute for Microbial Diseases, Osaka University, Osaka 565-0871, Japan.

出版信息

J Biol Chem. 2017 Oct 20;292(42):17407-17417. doi: 10.1074/jbc.M117.804377. Epub 2017 Aug 29.

DOI:10.1074/jbc.M117.804377
PMID:28855252
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5655517/
Abstract

The integrity of the distinguishing, multilaminate cell envelope surrounding mycobacteria is critical to their survival and pathogenesis. The prevalence of phosphatidylinositol mannosides in the cell envelope suggests an important role in the mycobacterial life cycle. Indeed, deletion of the gene (Δ) encoding the first committed step in phosphatidylinositol hexamannoside biosynthesis in results in the formation of smaller colonies than wild-type colonies on Middlebrook 7H10 agar. To further investigate potential contributors to cell-envelope mannan biosynthesis while taking advantage of this colony morphology defect, we isolated spontaneous suppressor mutants of Δ that reverted to wild-type colony size. Of 22 suppressor mutants, 6 accumulated significantly shorter lipomannan or lipoarabinomannan. Genome sequencing of these mutants revealed mutations in genes involved in the lipomannan/lipoarabinomannan biosynthesis, such as those encoding the arabinosyltransferase EmbC and the mannosyltransferase MptA. Furthermore, we identified three mutants carrying a mutation in a previously uncharacterized gene, _, that we designated Complementation of these suppressor mutants with restored the original Δ phenotypes and deletion of in wild-type resulted in smaller lipomannan, as observed in the suppressor mutants. LmeA carries a predicted N-terminal signal peptide, and density gradient fractionation and detergent extractability experiments indicated that LmeA localizes to the cell envelope. Using a lipid ELISA, we found that LmeA binds to plasma membrane phospholipids, such as phosphatidylethanolamine and phosphatidylinositol. LmeA is widespread throughout the Corynebacteriales; therefore, we concluded that LmeA is an evolutionarily conserved cell-envelope protein critical for controlling the mannan chain length of lipomannan/lipoarabinomannan.

摘要

分枝杆菌周围独特的多层细胞包膜的完整性对其生存和致病机制至关重要。细胞包膜中磷脂酰肌醇甘露糖苷的普遍存在表明其在分枝杆菌生命周期中具有重要作用。事实上,在结核分枝杆菌中,编码磷脂酰肌醇六甘露糖苷生物合成第一步的基因(Δ)缺失后,在Middlebrook 7H10琼脂上形成的菌落比野生型菌落小。为了利用这种菌落形态缺陷进一步研究细胞包膜甘露聚糖生物合成的潜在影响因素,我们分离了Δ的自发抑制突变体,这些突变体恢复到了野生型菌落大小。在22个抑制突变体中,有6个积累了明显更短的脂甘露聚糖或脂阿拉伯甘露聚糖。对这些突变体的基因组测序揭示了参与脂甘露聚糖/脂阿拉伯甘露聚糖生物合成的基因突变,例如编码阿拉伯糖基转移酶EmbC和甘露糖基转移酶MptA的基因。此外,我们鉴定出三个在一个以前未表征的基因_中发生突变的突变体,我们将其命名为 用 对这些抑制突变体进行互补恢复了原始的Δ表型,并且在野生型结核分枝杆菌中缺失 导致脂甘露聚糖变小,这与抑制突变体中观察到的情况相同。LmeA带有一个预测的N端信号肽,密度梯度分级分离和去污剂可提取性实验表明LmeA定位于细胞包膜。使用脂质ELISA,我们发现LmeA与质膜磷脂如磷脂酰乙醇胺和磷脂酰肌醇结合。LmeA在棒杆菌目中广泛存在;因此,我们得出结论,LmeA是一种进化上保守的细胞包膜蛋白,对控制脂甘露聚糖/脂阿拉伯甘露聚糖的甘露聚糖链长度至关重要。