Cell morphology drives spatial patterning in microbial communities

Author:

Smith William P. J.,Davit Yohan,Osborne James M.,Kim Wook,Foster Kevin R.ORCID,Pitt-Francis Joe M.

Abstract

The clearest phenotypic characteristic of microbial cells is their shape, but we do not understand how cell shape affects the dense communities, known as biofilms, where many microbes live. Here, we use individual-based modeling to systematically vary cell shape and study its impact in simulated communities. We compete cells with different cell morphologies under a range of conditions and ask how shape affects the patterning and evolutionary fitness of cells within a community. Our models predict that cell shape will strongly influence the fate of a cell lineage: we describe a mechanism through which coccal (round) cells rise to the upper surface of a community, leading to a strong spatial structuring that can be critical for fitness. We test our predictions experimentally using strains ofEscherichia colithat grow at a similar rate but differ in cell shape due to single amino acid changes in the actin homolog MreB. As predicted by our model, cell types strongly sort by shape, with round cells at the top of the colony and rod cells dominating the basal surface and edges. Our work suggests that cell morphology has a strong impact within microbial communities and may offer new ways to engineer the structure of synthetic communities.

Funder

Engineering and Physical Sciences Research Council

EC | European Research Council

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

Reference58 articles.

1. Bacterial diversity: The natural history of selected morphologically unusual bacteria;Starr;Annu Rev Microbiol,1965

2. Vos P (2011) Bergey’s Manual of Systematic Bacteriology: The Firmicutes (Springer Science & Business Media, The Netherlands), Vol 3.

3. Bacterial cell shape

4. Phylogenetic mapping of bacterial morphology

5. Bringing gene order into bacterial shape

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