论文标题
通过毛茸茸的圆柱通道的自行示踪剂的运输:粘性和活动的相互作用
Transport of a self-propelled tracer through a hairy cylindrical channel: interplay of stickiness and activity
论文作者
论文摘要
运动蛋白辅助的生物分子的主动运输对于细胞活性的正确功能至关重要。受活性药物在拥挤的细胞通道中的扩散的启发,我们通过改变示踪剂的活性和示踪剂的粘性到聚合物的活性来计算通过聚合物接枝圆柱通道的活性示踪剂的运输。我们的结果表明,被动示踪剂通过深入探索移植的聚合物区域表现出深刻的延伸,而纯粹的排斥力却纯粹倾向于通过沿通道的圆柱形轴形成的孔状空间扩散。相比之下,即使示踪剂优先保持靠近密集的聚合物区域,活动示踪剂也显示出更快的动力学和中间超排除。在示踪剂径向位移的概率的密度曲线中,尖锐的峰进一步支持了这一观察结果。我们发现该活动在决定示踪剂穿过狭窄通道的途径中起着重要作用。有趣的是,增加活动会消除粘性的影响。除此之外,Van-hove功能表明,活动示踪动力学偏离高斯性,而偏差程度随着活性而增长。我们的工作直接影响了如何通过限制媒介实现货物的有效运输和交付,在这种媒介中,活动,互动和拥挤正在相互作用。展望未来,这些因素对于理解通过细胞通道导航并在体内挑战性任务进行的人造自动机器的机制至关重要。
Active transport of biomolecules assisted by motor proteins is imperative for the proper functioning of cellular activities. Inspired by the diffusion of active agents in crowded cellular channels, we computationally investigate the transport of an active tracer through a polymer grafted cylindrical channel by varying the activity of the tracer and stickiness of the tracer to the polymers. Our results reveal that the passive tracer exhibits profound subdiffusion with increasing stickiness by exploring deep into the grafted polymeric zone, while purely repulsive one prefers to diffuse through the pore-like space created along the cylindrical axis of the channel. In contrast, the active tracer shows faster dynamics and intermediate superdiffusion even though the tracer preferentially stays close to the dense polymeric region. This observation is further supported by the sharp peaks in the density profile of the probability of radial displacement of the tracer. We discover that the activity plays an important role in deciding the pathway that the tracer takes through the narrow channel. Interestingly, increasing the activity washes out the effect of stickiness. Adding to this, van-Hove functions manifest that the active tracer dynamics deviates from Gaussianity, and the degree of deviation grows with the activity. Our work has direct implications on how effective transportation and delivery of cargo can be achieved through a confined medium where activity, interactions, and crowding are interplaying. Looking ahead, these factors will be crucial for understanding the mechanism of artificial self-powered machines navigating through the cellular channels and performing in vivo challenging tasks.