Microstructural and Rheological Transitions in Bacterial Biofilms

Author:

Charlton Samuel G.V.12ORCID,Bible Amber N.3ORCID,Secchi Eleonora1ORCID,Morrell‐Falvey Jennifer L.3ORCID,Retterer Scott T.34ORCID,Curtis Thomas P.2ORCID,Chen Jinju2ORCID,Jana Saikat25ORCID

Affiliation:

1. Department of Civil, Environmental and Geomatic Engineering Institute of Environmental Engineering ETH Zurich Zurich 8049 Switzerland

2. School of Engineering Newcastle University Newcastle Upon Tyne NE1 7RU UK

3. Biosciences Division Oak Ridge National Laboratory Oak Ridge TN 37830 USA

4. Center for Nanophase Material Sciences Oak Ridge National Laboratory Oak Ridge TN 37830 USA

5. School of Engineering Ulster University Belfast BT15 1AP UK

Abstract

AbstractBiofilms are aggregated bacterial communities structured within an extracellular matrix (ECM). ECM controls biofilm architecture and confers mechanical resistance against shear forces. From a physical perspective, biofilms can be described as colloidal gels, where bacterial cells are analogous to colloidal particles distributed in the polymeric ECM. However, the influence of the ECM in altering the cellular packing fraction (ϕ) and the resulting viscoelastic behavior of biofilm remains unexplored. Using biofilms of Pantoea sp. (WT) and its mutant (ΔUDP), the correlation between biofilm structure and its viscoelastic response is investigated. Experiments show that the reduction of exopolysaccharide production in ΔUDP biofilms corresponds with a seven‐fold increase in ϕ, resulting in a colloidal glass‐like structure. Consequently, the rheological signatures become altered, with the WT behaving like a weak gel, whilst the ΔUDP displayed a glass‐like rheological signature. By co‐culturing the two strains, biofilm ϕ is modulated which allows us to explore the structural changes and capture a change in viscoelastic response from a weak to a strong gel, and to a colloidal glass‐like state. The results reveal the role of exopolysaccharide in mediating a structural transition in biofilms and demonstrate a correlation between biofilm structure and viscoelastic response.

Funder

Engineering and Physical Sciences Research Council

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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