论文标题
围绕推杆细菌的界面流
Interfacial flow around a pusher bacterium
论文作者
论文摘要
流动细菌在生物学中扮演着重要的角色,这些角色依靠其动态行为,包括它们的导航,互动和自组织的能力。但是,流体界面上的细菌动力学尚不清楚。吸附在流体界面上的游泳者仍然高度运动,而流体界面是改变游泳行为的高度非理想领域。为了了解这些效果,我们研究了铜绿假单胞菌PA01在推杆模式下产生的流场。对示踪剂和细菌的相关位移的分析揭示了偶极流场具有意外的不对称性,这些不对称性与它们在散装流体中的相对差异很大。我们将流场分解为不可压缩流体界面中游泳者的基本流体动力模式。我们发现一种与界面平面上推进和拖动相对应的预期力 - 双子模式,以及第二个偶极模式,与鞭毛在细胞体上施加的力相关,在水相中,界面中的Marangoni应力抵消了。这些模式的平衡取决于细菌的被困界面构型。了解这些流程在自然和仿生游泳者的设计中至关重要。
Motile bacteria play essential roles in biology that rely on their dynamic behaviors, including their ability to navigate, interact, and self-organize. However, bacteria dynamics on fluid interfaces are not well understood. Swimmers adsorbed on fluid interfaces remain highly motile, and fluid interfaces are highly non-ideal domains that alter swimming behavior. To understand these effects, we study flow fields generated by Pseudomonas aeruginosa PA01 in the pusher mode. Analysis of correlated displacements of tracers and bacteria reveals dipolar flow fields with unexpected asymmetries that differ significantly from their counterparts in bulk fluids. We decompose the flow field into fundamental hydrodynamic modes for swimmers in incompressible fluid interfaces. We find an expected force-doublet mode corresponding to propulsion and drag at the interface plane, and a second dipolar mode, associated with forces exerted by the flagellum on the cell body in the aqueous phase that are countered by Marangoni stresses in the interface. The balance of these modes depends on the bacteria's trapped interfacial configurations. Understanding these flows is broadly important in nature and in the design of biomimetic swimmers.