论文标题

生物膜作为自形成长的鸟类

Biofilms as self-shaping growing nematics

论文作者

Nijjer, Japinder, Kothari, Mrityunjay, Li, Changhao, Henzel, Thomas, Zhang, Qiuting, Tai, Jung-Shen B., Zhou, Shuang, Zhang, Sulin, Cohen, Tal, Yan, Jing

论文摘要

活性耶数是被动液晶的非平衡类似物,其中各向异性单位消耗自由能以驱动新兴行为。与显示器中的液晶(LC)分子相似,活性nematics中的有序和动力学对边界条件敏感。但是,与被动液体晶体不同,活性的烈性神经(例如由生活物质组成的)具有通过自我生成的应力来调节其边界的潜力。在这里,使用限制水凝胶作为模型系统的细菌生物膜,我们展示了三维生命的nematic如何积极地塑造自身及其边界,以通过生长诱导的应力来调节其内部体系结构。我们表明,生物膜在改变环境僵硬或细胞基底摩擦的情况下从圆顶到镜片表现出急剧的过渡,这是通过考虑限制和界面力之间竞争的理论模型来解释的。生长模式定义了边界的进展,这又决定了细胞谱系的轨迹和空间分布。我们进一步证明,不断发展的边界定义了细胞的定向排序以及生物膜内部拓扑缺陷的出现。我们的发现揭示了在狭窄的主动物质中的新型自组织现象,并提供了指导具有新兴材料特性的编程微生物联盟的策略。

Active nematics are the nonequilibrium analog of passive liquid crystals in which anisotropic units consume free energy to drive emergent behavior. Similar to liquid crystal (LC) molecules in displays, ordering and dynamics in active nematics are sensitive to boundary conditions; however, unlike passive liquid crystals, active nematics, such as those composed of living matter, have the potential to regulate their boundaries through self-generated stresses. Here, using bacterial biofilms confined by a hydrogel as a model system, we show how a three-dimensional, living nematic can actively shape itself and its boundary in order to regulate its internal architecture through growth-induced stresses. We show that biofilms exhibit a sharp transition in shape from domes to lenses upon changing environmental stiffness or cell-substrate friction, which is explained by a theoretical model considering the competition between confinement and interfacial forces. The growth mode defines the progression of the boundary, which in turn determines the trajectories and spatial distribution of cell lineages. We further demonstrate that the evolving boundary defines the orientational ordering of cells and the emergence of topological defects in the interior of the biofilm. Our findings reveal novel self-organization phenomena in confined active matter and provide strategies for guiding the development of programmed microbial consortia with emergent material properties.

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