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海洋细菌中与速度相关的趋化精度。

Speed-dependent chemotactic precision in marine bacteria.

作者信息

Son Kwangmin, Menolascina Filippo, Stocker Roman

机构信息

Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139; Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139;

Institute for Bioengineering, The University of Edinburgh, Edinburgh EH9 3DW, United Kingdom; Centre for Synthetic and Systems Biology, The University of Edinburgh, Edinburgh EH9 3BF, United Kingdom;

出版信息

Proc Natl Acad Sci U S A. 2016 Aug 2;113(31):8624-9. doi: 10.1073/pnas.1602307113. Epub 2016 Jul 20.

Abstract

Chemotaxis underpins important ecological processes in marine bacteria, from the association with primary producers to the colonization of particles and hosts. Marine bacteria often swim with a single flagellum at high speeds, alternating "runs" with either 180° reversals or ∼90° "flicks," the latter resulting from a buckling instability of the flagellum. These adaptations diverge from Escherichia coli's classic run-and-tumble motility, yet how they relate to the strong and rapid chemotaxis characteristic of marine bacteria has remained unknown. We investigated the relationship between swimming speed, run-reverse-flick motility, and high-performance chemotaxis by tracking thousands of Vibrio alginolyticus cells in microfluidic gradients. At odds with current chemotaxis models, we found that chemotactic precision-the strength of accumulation of cells at the peak of a gradient-is swimming-speed dependent in V. alginolyticus Faster cells accumulate twofold more tightly by chemotaxis compared with slower cells, attaining an advantage in the exploitation of a resource additional to that of faster gradient climbing. Trajectory analysis and an agent-based mathematical model revealed that this unexpected advantage originates from a speed dependence of reorientation frequency and flicking, which were higher for faster cells, and was compounded by chemokinesis, an increase in speed with resource concentration. The absence of any one of these adaptations led to a 65-70% reduction in the population-level resource exposure. These findings indicate that, contrary to what occurs in E. coli, swimming speed can be a fundamental determinant of the gradient-seeking capabilities of marine bacteria, and suggest a new model of bacterial chemotaxis.

摘要

趋化作用支撑着海洋细菌中重要的生态过程,从与初级生产者的共生到颗粒和宿主的定殖。海洋细菌通常以单个鞭毛高速游动,“游动”与180°反转或约90°“轻弹”交替进行,后者是由鞭毛的屈曲不稳定性导致的。这些适应性与大肠杆菌经典的游动-翻滚运动不同,但它们与海洋细菌强大而快速的趋化特性之间的关系仍然未知。我们通过在微流体梯度中追踪数千个溶藻弧菌细胞,研究了游动速度、游动-反转-轻弹运动与高性能趋化作用之间的关系。与当前的趋化模型不同,我们发现趋化精度——细胞在梯度峰值处的聚集强度——在溶藻弧菌中依赖于游动速度。与较慢的细胞相比,较快的细胞通过趋化作用更紧密地聚集两倍,在利用资源方面获得了除更快攀爬梯度之外的优势。轨迹分析和基于主体的数学模型表明,这种意想不到的优势源于重新定向频率和轻弹的速度依赖性,较快的细胞更高,并且由趋化运动(随着资源浓度增加速度加快)加剧。这些适应性中的任何一个缺失都会导致群体水平的资源暴露减少65-70%。这些发现表明,与大肠杆菌中发生的情况相反,游动速度可能是海洋细菌梯度寻找能力的一个基本决定因素,并提出了一种新的细菌趋化模型。

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