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Simultaneous measurement of bacterial flagellar rotation rate and swimming speed.

机译:同时测量细菌鞭毛的旋转速度和游泳速度。

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摘要

Swimming speeds and flagellar rotation rates of individual free-swimming Vibrio alginolyticus cells were measured simultaneously by laser dark-field microscopy at 25, 30, and 35 degrees C. A roughly linear relation between swimming speed and flagellar rotation rate was observed. The ratio of swimming speed to flagellar rotation rate was 0.113 microns, which indicated that a cell progressed by 7% of pitch of flagellar helix during one flagellar rotation. At each temperature, however, swimming speed had a tendency to saturate at high flagellar rotation rate. That is, the cell with a faster-rotating flagellum did not always swim faster. To analyze the bacterial motion, we proposed a model in which the torque characteristics of the flagellar motor were considered. The model could be analytically solved, and it qualitatively explained the experimental results. The discrepancy between the experimental and the calculated ratios of swimming speed to flagellar rotation rate was about 20%. The apparent saturation in swimming speed was considered to be caused by shorter flagella that rotated faster but produced less propelling force.
机译:在25、30和35摄氏度下,通过激光暗场显微镜同时测量了各个自由游泳的藻溶解弧菌细胞的游泳速度和鞭毛旋转速率。观察到游泳速度和鞭毛旋转速率之间存在大致线性关系。游泳速度与鞭毛旋转速率之比为0.113微米,表明在一次鞭毛旋转过程中,细胞前进了鞭毛螺旋节距的7%。然而,在每个温度下,游泳速度都具有在鞭毛高转速下饱和的趋势。即,鞭毛旋转较快的细胞并不总是游动得更快。为了分析细菌运动,我们提出了一个模型,其中考虑了鞭毛马达的扭矩特性。该模型可以解析求解,定性地解释了实验结果。实验和计算的游泳速度与鞭毛旋转速度之比之间的差异约为20%。游泳速度的明显饱和被认为是由于鞭毛较短,旋转较快但产生的推动力较小引起的。

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