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细菌细胞膜中鞭毛旋转的方向。

Direction of flagellar rotation in bacterial cell envelopes.

作者信息

Ravid S, Eisenbach M

出版信息

J Bacteriol. 1984 Apr;158(1):222-30. doi: 10.1128/jb.158.1.222-230.1984.

DOI:10.1128/jb.158.1.222-230.1984
PMID:6370958
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC215402/
Abstract

Cell envelopes with functional flagella, isolated from wild-type strains of Escherichia coli and Salmonella typhimurium by formation of spheroplasts with penicillin and subsequent osmotic lysis, demonstrate counterclockwise (CCW)-biased rotation when energized with an electron donor for respiration, DL-lactate. Since the direction of flagellar rotation in bacteria is central to the expression of chemotaxis, we studied the cause of this bias. Our main observations were: (i) spheroplasts acquired a clockwise (CW) bias if instead of being lysed they were further incubated with penicillin; (ii) repellents temporarily caused CW rotation of tethered bacteria and spheroplasts but not of their derived cell envelopes; (iii) deenergizing CW-rotating cheV bacteria by KCN or arsenate treatment caused CCW bias; (iv) cell envelopes isolated from CW-rotating cheC and cheV mutants retained the CW bias, unlike envelopes isolated from cheB and cheZ mutants, which upon cytoplasmic release lost this bias and acquired CCW bias; and (v) an inwardly directed, artificially induced proton current rotated tethered envelopes in CCW direction, but an outwardly directed current was unable to rotate the envelopes. It is concluded that (i) a cytoplasmic constituent is required for the expression of CW rotation (or repression of CCW rotation) in strains which are not defective in the switch; (ii) in the absence of this cytoplasmic constituent, the motor is not reversible in such strains, and it probably is mechanically constricted so as to permit CCW sense of rotation only; (iii) the requirement of CW rotation for ATP is not at the level of the motor or the switch but at one of the preceding functional steps of the chemotaxis machinery; (iv) the cheC and cheV gene products are associated with the cytoplasmic membrane; and (v) direct interaction between the switch-motor system and the repellent sensors is improbable.

摘要

通过用青霉素形成原生质球并随后进行渗透裂解,从大肠杆菌和鼠伤寒沙门氏菌的野生型菌株中分离出具有功能性鞭毛的细胞膜,当用电子供体DL-乳酸进行呼吸供能时,这些细胞膜呈现逆时针(CCW)偏向旋转。由于细菌中鞭毛旋转的方向对于趋化性的表达至关重要,我们研究了这种偏向的原因。我们的主要观察结果如下:(i)如果原生质球不进行裂解而是用青霉素进一步孵育,它们会获得顺时针(CW)偏向;(ii)驱避剂会暂时导致拴系细菌和原生质球顺时针旋转,但不会导致其衍生的细胞膜顺时针旋转;(iii)用氰化钾或砷酸盐处理使顺时针旋转的cheV细菌失去能量会导致逆时针偏向;(iv)从顺时针旋转的cheC和cheV突变体中分离出的细胞膜保留了顺时针偏向,这与从cheB和cheZ突变体中分离出的细胞膜不同,后者在细胞质释放后失去了这种偏向并获得了逆时针偏向;(v)向内定向的人工诱导质子电流使拴系的细胞膜沿逆时针方向旋转,但向外定向的电流无法使细胞膜旋转。得出的结论是:(i)在开关没有缺陷的菌株中,顺时针旋转(或逆时针旋转的抑制)的表达需要一种细胞质成分;(ii)在没有这种细胞质成分的情况下,这些菌株中的马达是不可逆的,并且它可能在机械上受到限制,从而仅允许逆时针旋转方向;(iii)顺时针旋转对ATP的需求不是在马达或开关的水平,而是在趋化性机制的前一个功能步骤之一;(iv)cheC和cheV基因产物与细胞质膜相关;(v)开关-马达系统与驱避剂传感器之间不太可能存在直接相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3627/215402/3a88cb073be2/jbacter00233-0234-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3627/215402/36518e214fda/jbacter00233-0232-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3627/215402/3a88cb073be2/jbacter00233-0234-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3627/215402/36518e214fda/jbacter00233-0232-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3627/215402/3a88cb073be2/jbacter00233-0234-a.jpg

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本文引用的文献

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BACTERIAL PROTOPLASTS INDUCED BY PENICILLIN.青霉素诱导的细菌原生质体
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FLAGELLA OF SALMONELLA TYPHIMURIUM SPHEROPLASTS.鼠伤寒沙门氏菌原生质体的鞭毛
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