Electron Microscopy Core Facility, W117 Veterinary Medicine Building, 1600 East Rollins St., University of Missouri, Columbia, MO 65211, USA.
Department of Biochemistry, 117 Schweitzer Hall, University of Missouri, Columbia, MO 65211, USA.
Int J Mol Sci. 2019 Jun 19;20(12):2989. doi: 10.3390/ijms20122989.
The chemotactic sensory system enables motile bacteria to move toward favorable environments. Throughout bacterial diversity, the chemoreceptors that mediate chemotaxis are clustered into densely packed arrays of signaling complexes. In these arrays, rod-shaped receptors are in close proximity, resulting in limited options for orientations. A recent geometric analysis of these limitations in , using published dimensions and angles, revealed that in this species, straight chemoreceptors would not fit into the available space, but receptors bent at one or both of the recently-documented flexible hinges would fit, albeit over a narrow window of shallow bend angles. We have now expanded our geometric analysis to consider variations in receptor length, orientation and placement, and thus to species in which those parameters are known to be, or might be, different, as well as to the possibility of dynamic variation in those parameters. The results identified significant limitations on the allowed combinations of chemoreceptor dimensions, orientations and placement. For most combinations, these limitations excluded straight chemoreceptors, but allowed receptors bent at a flexible hinge. Thus, our analysis identifies across bacterial diversity a crucial role for chemoreceptor flexible hinges, in accommodating the limitations of molecular crowding in chemotaxis core signaling complexes and their arrays.
趋化感应系统使能动细菌能够向有利的环境移动。在细菌多样性中,介导趋化作用的化学感受器被聚集到信号复合物的密集排列中。在这些排列中,棒状受体彼此靠近,导致取向的选择有限。最近对 中这些限制的几何分析使用了已发表的尺寸和角度,表明在该物种中,直趋化感受器不会适应可用空间,但在最近记录的两个柔性铰链之一或两个处弯曲的感受器会适应,尽管在浅弯曲角度的狭窄窗口中。我们现在已经扩展了我们的几何分析,以考虑受体长度、取向和位置的变化,以及那些参数已知或可能不同的物种,以及这些参数动态变化的可能性。结果确定了趋化感受器尺寸、取向和位置的允许组合的显著限制。对于大多数组合,这些限制排除了直趋化感受器,但允许在柔性铰链处弯曲的感受器。因此,我们的分析确定了在细菌多样性中,趋化感受器柔性铰链在适应趋化核心信号复合物及其排列中的分子拥挤限制方面起着至关重要的作用。