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Coordination of contractility, adhesion and flow in migrating Physarum amoebae.

Authors :
Lewis, Owen L
Lewis, Owen L
Zhang, Shun
Guy, Robert D
del Álamo, Juan C
Lewis, Owen L
Lewis, Owen L
Zhang, Shun
Guy, Robert D
del Álamo, Juan C
Source :
Journal of the Royal Society, Interface; vol 12, iss 106, 20141359; 1742-5689
Publication Year :
2015

Abstract

This work examines the relationship between spatio-temporal coordination of intracellular flow and traction stress and the speed of amoeboid locomotion of microplasmodia of Physarum polycephalum. We simultaneously perform particle image velocimetry and traction stress microscopy to measure the velocity of cytoplasmic flow and the stresses applied to the substrate by migrating Physarum microamoebae. In parallel, we develop a mathematical model of a motile cell which includes forces from the viscous cytosol, a poro-elastic, contractile cytoskeleton and adhesive interactions with the substrate. Our experiments show that flow and traction stress exhibit back-to-front-directed waves with a distinct phase difference. The model demonstrates that the direction and speed of locomotion are determined by this coordination between contraction, flow and adhesion. Using the model, we identify forms of coordination that generate model predictions consistent with experiments. We demonstrate that this coordination produces near optimal migration speed and is insensitive to heterogeneity in substrate adhesiveness. While it is generally thought that amoeboid motility is robust to changes in extracellular geometry and the nature of extracellular adhesion, our results demonstrate that coordination of adhesive forces is essential to producing robust migration.

Details

Database :
OAIster
Journal :
Journal of the Royal Society, Interface; vol 12, iss 106, 20141359; 1742-5689
Notes :
application/pdf, Journal of the Royal Society, Interface vol 12, iss 106, 20141359 1742-5689
Publication Type :
Electronic Resource
Accession number :
edsoai.on1377974174
Document Type :
Electronic Resource