Cell aggregation is associated with enzyme secretion strategies in marine polysaccharide-degrading bacteria

Author:

D’Souza Glen12ORCID,Ebrahimi Ali3,Stubbusch Astrid12ORCID,Daniels Michael12ORCID,Keegstra Johannes4ORCID,Stocker Roman4ORCID,Cordero Otto3ORCID,Ackermann Martin125

Affiliation:

1. Microbial Systems Ecology Group, Institute of Biogeochemistry and Pollutant Dynamics, Department of Environmental Systems Sciences, ETH Zurich , 8006 Zurich, Switzerland

2. Department of Environmental Microbiology, Eawag: Swiss Federal Institute of Aquatic Sciences , 8600 Duebendorf, Switzerland

3. Department of Civil and Environmental Engineering, MIT , Cambridge, MA 02139, USA

4. Institute of Environmental Engineering, Department of Civil, Environmental and Geomatic Engineering, ETH Zurich , 8093 Zurich, Switzerland

5. EPFL, School of Architecture, Civil and Environmental Engineering , Lausanne, Switzerland

Abstract

Abstract Polysaccharide breakdown by bacteria requires the activity of enzymes that degrade polymers either intra- or extra-cellularly. The latter mechanism generates a localized pool of breakdown products that are accessible to the enzyme producers themselves as well as to other organisms. Marine bacterial taxa often show marked differences in the production and secretion of degradative enzymes that break down polysaccharides. These differences can have profound effects on the pool of diffusible breakdown products and hence on the ecological dynamics. However, the consequences of differences in enzymatic secretions on cellular growth dynamics and interactions are unclear. Here we study growth dynamics of single cells within populations of marine Vibrionaceae strains that grow on the abundant marine polymer alginate, using microfluidics coupled to quantitative single-cell analysis and mathematical modelling. We find that strains that have low extracellular secretions of alginate lyases aggregate more strongly than strains that secrete high levels of enzymes. One plausible reason for this observation is that low secretors require a higher cellular density to achieve maximal growth rates in comparison with high secretors. Our findings indicate that increased aggregation increases intercellular synergy amongst cells of low-secreting strains. By mathematically modelling the impact of the level of degradative enzyme secretion on the rate of diffusive oligomer loss, we find that enzymatic secretion capability modulates the propensity of cells within clonal populations to cooperate or compete with each other. Our experiments and models demonstrate that enzymatic secretion capabilities can be linked with the propensity of cell aggregation in marine bacteria that extracellularly catabolize polysaccharides.

Funder

Eidgenössische Technische Hochschule Zürich

Simons Foundation

Publisher

Oxford University Press (OUP)

Subject

Ecology, Evolution, Behavior and Systematics,Microbiology

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