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2
Phosphorylation of KasB regulates virulence and acid-fastness in Mycobacterium tuberculosis.结核分枝杆菌中KasB的磷酸化调节其毒力和抗酸性。
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[Koch's stain for tubercle bacilli].[用于结核杆菌的科赫氏染色法]
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本文引用的文献

1
Performance of light-emitting diode fluorescence microscope for diagnosis of tuberculosis.发光二极管荧光显微镜在结核病诊断中的性能
Int J Mycobacteriol. 2013 Sep;2(3):174-8. doi: 10.1016/j.ijmyco.2013.05.001. Epub 2013 Jun 19.
2
The Molecular Genetics of Mycolic Acid Biosynthesis.分枝菌酸生物合成的分子遗传学。
Microbiol Spectr. 2014 Aug;2(4):MGM2-0003-2013. doi: 10.1128/microbiolspec.MGM2-0003-2013.
3
Improving acid-fast fluorescent staining for the detection of mycobacteria using a new nucleic acid staining approach.使用一种新的核酸染色方法改进抗酸荧光染色以检测分枝杆菌。
Tuberculosis (Edinb). 2014 Sep;94(5):511-8. doi: 10.1016/j.tube.2014.07.004. Epub 2014 Jul 28.
4
Phosphorylation of KasB regulates virulence and acid-fastness in Mycobacterium tuberculosis.结核分枝杆菌中KasB的磷酸化调节其毒力和抗酸性。
PLoS Pathog. 2014 May 8;10(5):e1004115. doi: 10.1371/journal.ppat.1004115. eCollection 2014 May.
5
Reversible lipid accumulation and associated division arrest of Mycobacterium avium in lipoprotein-induced foamy macrophages may resemble key events during latency and reactivation of tuberculosis.鸟分枝杆菌在脂蛋白诱导的泡沫巨噬细胞中可逆的脂质积累及相关的分裂停滞,可能类似于结核病潜伏和再激活过程中的关键事件。
Infect Immun. 2014 Feb;82(2):476-90. doi: 10.1128/IAI.01196-13. Epub 2013 Nov 25.
6
Critical roles for lipomannan and lipoarabinomannan in cell wall integrity of mycobacteria and pathogenesis of tuberculosis.脂甘露聚糖和脂阿拉伯甘露聚糖在分枝杆菌细胞壁完整性和结核病发病机制中的关键作用。
mBio. 2013 Feb 19;4(1):e00472-12. doi: 10.1128/mBio.00472-12.
7
Human granuloma in vitro model, for TB dormancy and resuscitation.体外人类肉芽肿模型,用于结核休眠和复苏研究。
PLoS One. 2013;8(1):e53657. doi: 10.1371/journal.pone.0053657. Epub 2013 Jan 7.
8
Mycobacterial lipolytic enzymes: a gold mine for tuberculosis research.分枝杆菌脂肪酶:结核分枝杆菌研究的金矿。
Biochimie. 2013 Jan;95(1):66-73. doi: 10.1016/j.biochi.2012.07.008. Epub 2012 Jul 20.
9
Non-acid-fastness in Mycobacterium tuberculosis ΔkasB mutant correlates with the cell envelope electron density.结核分枝杆菌ΔkasB 突变体的非酸抗性与细胞包膜电子密度相关。
Tuberculosis (Edinb). 2012 Jul;92(4):351-7. doi: 10.1016/j.tube.2012.02.006. Epub 2012 Apr 18.
10
Mycobacterium tuberculosis lacking all mycolic acid cyclopropanation is viable but highly attenuated and hyperinflammatory in mice.结核分枝杆菌缺乏所有的分枝菌酸环丙烷化是可行的,但在小鼠中高度减毒和过度炎症。
Infect Immun. 2012 Jun;80(6):1958-68. doi: 10.1128/IAI.00021-12. Epub 2012 Mar 19.

抗酸阳性和抗酸阴性结核分枝杆菌:科赫悖论。

Acid-Fast Positive and Acid-Fast Negative Mycobacterium tuberculosis: The Koch Paradox.

机构信息

Howard Hughes Medical Institute, Department of Microbiology and Immunology, Albert Einstein College of Medicine, Bronx, NY 10461.

IRIM (ex-CPBS) UMR 9004, Infectious Disease Research Institute of Montpellier (IDRIM), Université de Montpellier, CNRS, 34293 Montpellier, France.

出版信息

Microbiol Spectr. 2017 Mar;5(2). doi: 10.1128/microbiolspec.TBTB2-0003-2015.

DOI:10.1128/microbiolspec.TBTB2-0003-2015
PMID:28337966
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11687472/
Abstract

Acid-fast (AF) staining, also known as Ziehl-Neelsen stain microscopic detection, developed over a century ago, is even today the most widely used diagnostic method for tuberculosis. Herein we present a short historical review of the evolution of AF staining methods and discuss Koch's paradox, in which non-AF tubercle bacilli can be detected in tuberculosis patients or in experimentally infected animals. The conversion of Mycobacterium tuberculosis from an actively growing, AF-positive form to a nonreplicating, AF-negative form during the course of infection is now well documented. The mechanisms of loss of acid-fastness are not fully understood but involve important metabolic processes, such as the accumulation of triacylglycerol-containing intracellular inclusions and changes in the composition and spatial architecture of the cell wall. Although the precise component(s) responsible for the AF staining method remains largely unknown, analysis of a series of genetically defined M. tuberculosis mutants, which are attenuated in mice, pointed to the primary role of mycolic acids and other cell wall-associated (glyco)lipids as molecular markers responsible for the AF property of mycobacteria. Further studies are now required to better describe the cell wall reorganization that occurs during dormancy and to develop new staining procedures that are not affected by such cell wall alterations and that are capable of detecting AF-negative cells.

摘要

抗酸染色(AF),又称齐-尼氏染色显微镜检测,一百多年前就已发展起来,即使在今天,它仍然是最广泛用于结核病诊断的方法。本文简要回顾了 AF 染色方法的发展历程,并讨论了科赫悖论,即在结核病患者或实验感染的动物中可以检测到非抗酸结核分枝杆菌。在感染过程中,结核分枝杆菌从活跃生长、抗酸阳性形式转变为非复制、抗酸阴性形式,这一现象现在已经得到充分证实。失去抗酸能力的机制尚未完全阐明,但涉及重要的代谢过程,例如含有三酰基甘油的细胞内包涵体的积累以及细胞壁组成和空间结构的变化。虽然负责抗酸染色方法的确切成分仍知之甚少,但对一系列遗传定义的结核分枝杆菌突变体的分析表明,分枝菌酸和其他与细胞壁相关的(糖)脂类作为负责分枝杆菌抗酸特性的分子标记物起着主要作用。现在需要进一步研究,以更好地描述休眠期间发生的细胞壁重组,并开发新的染色程序,这些程序不受细胞壁改变的影响,并能够检测抗酸阴性细胞。