» Articles » PMID: 25969844

Motility Induced Changes in Viscosity of Suspensions of Swimming Microbes in Extensional Flows

Overview
Journal Soft Matter
Specialties Biochemistry
Chemistry
Date 2015 May 14
PMID 25969844
Citations 6
Authors
Affiliations
Soon will be listed here.
Abstract

Suspensions of motile cells are model systems for understanding the unique mechanical properties of living materials which often consist of ensembles of self-propelled particles. We present here a quantitative comparison of theory against experiment for the rheology of such suspensions in extensional flows. The influence of motility on viscosities of cell suspensions is studied using a novel acoustically-driven microfluidic capillary-breakup extensional rheometer. Motility increases the extensional viscosity of suspensions of algal pullers, but decreases it in the case of bacterial or sperm pushers. A recent model [Saintillan, Phys. Rev. E: Stat., Nonlinear, Soft Matter Phys., 2010, 81, 56307] for dilute active suspensions is extended to obtain predictions for higher concentrations, after independently obtaining parameters such as swimming speeds and diffusivities. We show that details of body and flagellar shape can significantly determine macroscale rheological behaviour.

Citing Articles

Semen rheology and its relation to male infertility.

Tomaiuolo G, Fellico F, Preziosi V, Guido S Interface Focus. 2022; 12(6):20220048.

PMID: 36330323 PMC: 9560795. DOI: 10.1098/rsfs.2022.0048.


SAW-driven droplet jetting technology in microfluidic: A review.

Lei Y, Hu H Biomicrofluidics. 2020; 14(6):061505.

PMID: 33343781 PMC: 7728459. DOI: 10.1063/5.0014768.


Lattice Boltzmann methods and active fluids.

Carenza L, Gonnella G, Lamura A, Negro G, Tiribocchi A Eur Phys J E Soft Matter. 2019; 42(6):81.

PMID: 31250142 DOI: 10.1140/epje/i2019-11843-6.


Physical Forces Shape Group Identity of Swimming Cells.

Espeso D, Martinez-Garcia E, de Lorenzo V, Goni-Moreno A Front Microbiol. 2016; 7:1437.

PMID: 27695443 PMC: 5025637. DOI: 10.3389/fmicb.2016.01437.


Microfluidic rheology of active particle suspensions: Kinetic theory.

Alonso-Matilla R, Ezhilan B, Saintillan D Biomicrofluidics. 2016; 10(4):043505.

PMID: 27375827 PMC: 4912559. DOI: 10.1063/1.4954193.