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Persat, A.

Publications and source records attributed to Persat, A..

2 recordsLinked to original sources

Cellular advective-diffusion drives the emergence of bacterial surface colonization patterns and heterogeneity

Microorganisms navigate and divide on surfaces to form multicellular structures called biofilms, the most widespread survival strategy found in the bacterial world1-4. One common assumption is that cellular components guide the spatial architecture and arrangement of multiple species in a biofilm. However, bacteria must contend with mechanical forces generated through contact with surfaces under fluid flow, whose contributions to colonization patterns are poorly understood. Here, we show how the balance between motility and flow promotes the emergence of morphological patterns in Caulobacter crescentus biofilms5. By modeling transport of single cells by flow and Brownian-like swimming, we show that the emergence of these patterns is guided by an effective Peclet number. By analogy with transport phenomena we show that, counter-intuitively, fluid flow represses mixing of distinct clonal lineages, thereby affecting the interaction landscapes between biofilm-dwelling bacteria. This demonstrates that hydrodynamics influence species interaction and evolution within surface-associated communities.

biophysics

Label-free visualization of type IV pili dynamics by interferometric scattering microscopy

Type IV pili (TFP) are slender objects that assemble by polymerization and secretion of protein subunits from bacterial cell surfaces. The mechanisms by which these surface structures of microscopic length and molecular diameter modulate the physical interaction of bacteria with their environment, however, remains poorly understood largely due to limitations in our ability to monitor and characterize the dynamics of individual TFP. Here, we demonstrate that interferometric scattering microscopy (iSCAT) enables label-free and dynamic visualization of TFP in intact cells of the opportunistic pathogen Pseudomonas aeruginosa. As a result, we can directly monitor extension, attachment and retraction events on millisecond timescale and nanometer length scale in three dimensions. These capabilities allow us to observe that P. aeruginosa is able to crawl against the direction of flow using short TFP filaments. Also, careful observation show that TFP retract rapidly after surface attachment, suggesting that P. aeruginosa senses contact of the pilus tip with the solid substrate. These results illustrate the power of iSCAT for the label-free visualization of small, dynamic microbial extracellular structures.

microbiology