Enhanced locomotion, effective diffusion, and trapping of undulatory micro-swimmers in heterogeneous environments
Arshad Kamal, Eric E Keaveny

TL;DR
This study investigates how microstructure interactions in complex fluids influence the movement of undulatory micro-swimmers, revealing conditions that enhance, hinder, or trap the swimmers, with implications for biological processes.
Contribution
The paper introduces a combined simulation and data-driven stochastic modeling approach to analyze swimmer dynamics in heterogeneous environments with microstructures.
Findings
Microstructure interactions can both enhance and inhibit swimmer speeds.
Discrete interactions lead to diffusive behavior due to velocity fluctuations.
Swimmer-microstructure interactions impact pathogen trapping and cell spreading.
Abstract
Swimming cells and microorganisms must often move though complex fluids that contain an immersed microstructure such as polymer molecules, or filaments. In many important biological processes, such as mammalian reproduction and bacterial infection, the size of the immersed microstructure is comparable to that of the swimming cells. This leads to discrete swimmer-microstructure interactions that alter the swimmer's path and speed. In this paper, we use a combination of detailed simulation and data-driven stochastic models to examine the motion of a planar undulatory swimmer in an environment of spherical obstacles tethered via linear springs to random points in the plane of locomotion. We find that depending on environmental parameters, the interactions with the obstacles can both enhance swimming speeds, as well as prevent the swimmer from moving at all. We also show how the discrete…
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Taxonomy
TopicsMicro and Nano Robotics · Microfluidic and Bio-sensing Technologies · Molecular Communication and Nanonetworks
