Related Experiment Video
Updated: Nov 12, 2025

Assessment of Dictyostelium discoideum Response to Acute Mechanical Stimulation
Published on: November 9, 2017
Migration and accumulation of bacteria with chemotaxis and chemokinesis
Theresa Jakuszeit1, James Lindsey-Jones2, François J Peaudecerf3
1Cavendish Laboratory, University of Cambridge, Cambridge, CB3 0HE, UK. theresa.jakuszeit@curie.fr.
Abstract:
Bacteria can chemotactically migrate up attractant gradients by controlling run-and-tumble motility patterns. In addition to this well-known chemotactic behaviour, several soil and marine bacterial species perform chemokinesis; they adjust their swimming speed according to the local concentration of chemoeffector, with higher speed at higher concentration. A field of attractant then induces a spatially varying swimming speed, which results in a drift towards lower attractant concentrations-contrary to the drift created by chemotaxis. Here, to explore the biological benefits of chemokinesis and investigate its impact on the chemotactic response, we extend a Keller-Segel-type model to include chemokinesis. We apply the model to predict the dynamics of bacterial populations capable of chemokinesis and chemotaxis in chemoeffector fields inspired by microfluidic and agar plate migration assays. We find that chemokinesis combined with chemotaxis not only may enhance the population response with respect to pure chemotaxis, but also modifies it qualitatively. We conclude presenting predictions for bacteria around dynamic finite-size nutrient sources, simulating, e.g. a marine particle or a root. We show that chemokinesis can reduce the measuring bias that is created by a decaying attractant gradient.
Related Concept Videos
Chemotaxis and Direction of Cell Migration
Chemotaxis in E. coli
Cytoskeletal Coordination in Cell Migration
Flagella and Motility in Bacteria
Cell Migration
Cell Migration

