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稳态游动速度设定了游动细菌积累的速度和准确性。

Steady-state running rate sets the speed and accuracy of accumulation of swimming bacteria.

机构信息

College of Engineering, Mathematics and Physical Sciences, University of Exeter, Exeter, United Kingdom.

School of Life Sciences, University of Warwick, Coventry, United Kingdom.

出版信息

Biophys J. 2022 Sep 20;121(18):3435-3444. doi: 10.1016/j.bpj.2022.08.012. Epub 2022 Aug 31.

Abstract

We study the chemotaxis of a population of genetically identical swimming bacteria undergoing run and tumble dynamics driven by stochastic switching between clockwise and counterclockwise rotation of the flagellar rotary system, where the steady-state rate of the switching changes in different environments. Understanding chemotaxis quantitatively requires that one links the measured steady-state switching rates of the rotary system, as well as the directional changes of individual swimming bacteria in a gradient of chemoattractant/repellant, to the efficiency of a population of bacteria in moving up/down the gradient. Here we achieve this by using a probabilistic model, parametrized with our experimental data, and show that the response of a population to the gradient is complex. We find the changes to the steady-state switching rate in the absence of gradients affect the average speed of the swimming bacterial population response as well as the width of the distribution. Both must be taken into account when optimizing the overall response of the population in complex environments.

摘要

我们研究了一群在随机切换顺时针和逆时针旋转的鞭毛旋转系统驱动下进行奔跑和翻滚动力学的遗传上相同的游泳细菌的趋化性,其中切换的稳态速率在不同环境中发生变化。定量理解趋化性需要将测量到的旋转系统的稳态切换率以及单个游泳细菌在趋化剂/抑制剂梯度中的方向变化与细菌群体向上/向下移动的效率联系起来。在这里,我们使用一个概率模型来实现这一点,该模型用我们的实验数据进行了参数化,并表明细菌群体对梯度的反应是复杂的。我们发现,没有梯度时稳态切换率的变化会影响游泳细菌群体反应的平均速度和分布的宽度。在复杂环境中优化群体的整体反应时,都必须考虑这两个因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5d07/9515231/68266569cc9d/gr1.jpg

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