论文标题

细菌玻璃的出现

Emergence of bacterial glass

论文作者

Lama, Hisay, Yamamoto, Masahiro J., Furuta, Yujiro, Shimaya, Takuro, Takeuchi, Kazumasa A.

论文摘要

密集包装的流动性细菌可以采用常规的被动材料中未见的集体状态。这些状态在许多方面仍然是神秘的,它们的身体特征可以帮助我们对天然细菌菌落和生物膜以及一般材料的理解。在这里,我们克服了与基于膜的微流体设备产生均匀生长的,大型的准二维细菌组件相关的挑战,并报告了玻璃状状态在Escherichia Coli的二维悬浮液中的出现。随着数量密度随细胞生长的增加而增加,流动细菌的种群过渡到玻璃状状态,在该状态下,细胞被包装而无法移动。这是分为两个步骤的,第一个步骤仅抑制方向模式,第二个步骤完全抑制了运动。通过统计分析和对细菌个体运动的研究来表征每个阶段,我们不仅发现玻璃的特征特征,例如快速放缓,动态异质性和笼子效应,而且还发现了与热玻璃的特性。这些独特的特性包括以集体运动的对齐细胞的微域的自发形成,在动态敏感性中出现异常信号的出现以及动态减速,密度依赖性通常禁止用于热系统。我们的结果有望捕获这种活性杆玻璃的一般特征,该玻璃玻璃可以用作致密细菌骨料的物理机制。

Densely packed, motile bacteria can adopt collective states not seen in conventional, passive materials. These states remain in many ways mysterious, and their physical characterization can aid our understanding of natural bacterial colonies and biofilms as well as materials in general. Here, we overcome challenges associated with generating uniformly growing, large, quasi-two-dimensional bacterial assemblies by a membrane-based microfluidic device and report the emergence of glassy states in two-dimensional suspension of Escherichia coli. As the number density increases by cell growth, populations of motile bacteria transition to a glassy state, where cells are packed and unable to move. This takes place in two steps, the first one suppressing only the orientational modes and the second one vitrifying the motion completely. Characterizing each phase through statistical analyses and investigations of individual motion of bacteria, we find not only characteristic features of glass such as rapid slowdown, dynamic heterogeneity and cage effects, but also a few properties distinguished from those of thermal glass. These distinctive properties include the spontaneous formation of micro-domains of aligned cells with collective motion, the appearance of an unusual signal in the dynamic susceptibility, and the dynamic slowdown with a density dependence generally forbidden for thermal systems. Our results are expected to capture general characteristics of such active rod glass, which may serve as a physical mechanism underlying dense bacterial aggregates.

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