论文标题

超快可逆的自我组装纠结的物质

Ultrafast reversible self-assembly of living tangled matter

论文作者

Patil, Vishal P., Tuazon, Harry, Kaufman, Emily, Chakrabortty, Tuhin, Qin, David, Dunkel, Jörn, Bhamla, M. Saad

论文摘要

从染色体DNA和纤毛地毯到根网和蠕虫斑点,缠结的活性细丝本质上是无处不在的。活动和弹性如何促进生命纠结物质中的集体拓扑转变尚不清楚。在这里,我们报告了加利福尼亚黑虫(Lumbriculus variegatus)的一项实验和理论研究,该研究在几分钟内缓慢形成缠结,但可以在毫秒内解开。结合了超声成像,理论分析和模拟,我们开发和验证了一个机械模型,该模型解释了单个活性细丝的运动学如何决定其新兴的集体拓扑动态。该模型表明,共同交替的螺旋波能够使缠结形成和超快无缠结。通过识别拓扑自我转变的通用动力学原理,我们的结果可以为设计新的可调性活性材料提供指导。

Tangled active filaments are ubiquitous in nature, from chromosomal DNA and cilia carpets to root networks and worm blobs. How activity and elasticity facilitate collective topological transformations in living tangled matter is not well understood. Here, we report an experimental and theoretical study of California blackworms (Lumbriculus variegatus), which slowly form tangles over minutes but can untangle in milliseconds. Combining ultrasound imaging, theoretical analysis and simulations, we develop and validate a mechanistic model that explains how the kinematics of individual active filaments determines their emergent collective topological dynamics. The model reveals that resonantly alternating helical waves enable both tangle formation and ultrafast untangling. By identifying generic dynamical principles of topological self-transformations, our results can provide guidance for designing new classes of topologically tunable active materials.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源