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个体行为的空间调制使细菌群体迁移过程中多种表型呈现有序结构。

Spatial modulation of individual behaviors enables an ordered structure of diverse phenotypes during bacterial group migration.

机构信息

CAS Key Laboratory for Quantitative Engineering Biology, Guangdong Provincial Key Laboratory of Synthetic Genomics, Shenzhen Institute of Synthetic Biology, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, China.

University of Chinese Academy of Sciences, Beijing, China.

出版信息

Elife. 2021 Nov 2;10:e67316. doi: 10.7554/eLife.67316.

Abstract

Coordination of diverse individuals often requires sophisticated communications and high-order computational abilities. Microbial populations can exhibit diverse individualistic behaviors, and yet can engage in collective migratory patterns with a spatially sorted arrangement of phenotypes. However, it is unclear how such spatially sorted patterns emerge from diverse individuals without complex computational abilities. Here, by investigating the single-cell trajectories during group migration, we discovered that, despite the constant migrating speed of a group, the drift velocities of individual bacteria decrease from the back to the front. With a Langevin-type modeling framework, we showed that this decreasing profile of drift velocities implies the spatial modulation of individual run-and-tumble random motions, and enables the bacterial population to migrate as a pushed wave front. Theoretical analysis and stochastic simulations further predicted that the pushed wave front can help a diverse population to stay in a tight group, while diverse individuals perform the same type of mean reverting processes around centers orderly aligned by their chemotactic abilities. This mechanism about the emergence of orderly collective migration from diverse individuals is experimentally demonstrated by titration of bacterial chemoreceptor abundance. These results reveal a simple computational principle for emergent ordered behaviors from heterogeneous individuals.

摘要

协调不同的个体通常需要复杂的沟通和高阶的计算能力。微生物群体可以表现出不同的个体行为,然而它们可以表现出具有空间排序表型的集体迁移模式。然而,目前尚不清楚在没有复杂计算能力的情况下,这种具有空间排序的模式是如何从不同的个体中出现的。在这里,通过研究群体迁移过程中的单细胞轨迹,我们发现,尽管群体的迁移速度保持不变,但个体细菌的漂移速度从后向前逐渐减小。通过 Langevin 型建模框架,我们表明这种漂移速度的递减分布意味着个体跑动和翻转随机运动的空间调制,从而使细菌群体能够作为推动波前迁移。理论分析和随机模拟进一步预测,推动波前可以帮助多样化的群体保持紧密的群体,而多样化的个体则围绕着它们的趋化能力有序排列的中心执行相同类型的均值回复过程。通过细菌化学感受器丰度的滴定实验,验证了这种从多样化个体中出现有序集体迁移的机制。这些结果揭示了一种从异质个体中出现有序行为的简单计算原理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c49/8563000/b7936629a65d/elife-67316-fig1.jpg

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