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细菌趋化性中行为反应的反转:分子水平的解释

Inversion of a behavioral response in bacterial chemotaxis: explanation at the molecular level.

作者信息

Khan S, Macnab R M, DeFranco A L, Koshland D E

出版信息

Proc Natl Acad Sci U S A. 1978 Sep;75(9):4150-4. doi: 10.1073/pnas.75.9.4150.

Abstract

Certain cheU mutants of Salmonella show inverted chemotactic behavior, being repelled by attractants and attracted by repellents. Such a dramatic change in behavioral pattern would seem at first glance to require drastic and complex alterations in the sensory processing system. In fact, the behavior can be explained by a simple shift in the level of a response regulator and the subtle effects of this shift on flagellar function. Flagella can exist in either a left-handed or a right-handed structure depending on applied torsion. Wild-type cells swim smoothly by counterclockwise rotation of a left-handed helical bundle and tumble when the motors briefly reverse to clockwise rotation (normal random motility). The cheU mutation causes a shift in response regulator level relative to the critical threshold value, resulting in extended clockwise operation so that the flagella are fully converted to the right-handed helical form. These cells therefore swim smoothly by clockwise rotation of a right-handed bundle and tumble when the motor briefly reverses to counterclockwise rotation (inverse random motility). Thus, tumbling is associated with brief reversals and not with a particular sense of rotation. A wild-type cell, with its steady-state response regulator level placing it initially in normal random motility, will swim smoothly on addition of attractant, whereas a cheU mutant with inverse random motility will tumble given the same stimulus. The phenomenon illustrates the profound behavioral consequences that can result from a single mutation in a key gene.

摘要

沙门氏菌的某些cheU突变体表现出反向趋化行为,即被引诱剂排斥而被驱避剂吸引。乍一看,这种行为模式的巨大变化似乎需要感觉处理系统发生剧烈而复杂的改变。事实上,这种行为可以通过响应调节因子水平的简单变化以及这种变化对鞭毛功能的微妙影响来解释。根据所施加的扭转,鞭毛可以呈左旋或右旋结构存在。野生型细胞通过左旋螺旋束的逆时针旋转平稳游动,当马达短暂反转至顺时针旋转时翻滚(正常随机运动)。cheU突变导致响应调节因子水平相对于临界阈值发生变化,导致顺时针操作延长,从而使鞭毛完全转变为右旋螺旋形式。因此,这些细胞通过右旋束的顺时针旋转平稳游动,当马达短暂反转至逆时针旋转时翻滚(反向随机运动)。因此,翻滚与短暂反转有关,而与特定的旋转方向无关。一个野生型细胞,其稳态响应调节因子水平使其最初处于正常随机运动状态,在添加引诱剂时会平稳游动,而具有反向随机运动的cheU突变体在受到相同刺激时会翻滚。这一现象说明了关键基因中的单个突变可能产生的深远行为后果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8810/336069/6b624934b3cc/pnas00668-0090-a.jpg

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