Learning the space-time phase diagram of bacterial swarm expansion.

Jeckel, Hannah; Jelli, Eric; Hartmann, Raimo; Singh, Praveen K; Mok, Rachel; Totz, Jan Frederik; Vidakovic, Lucia; Eckhardt, Bruno et al. · Proc Natl Acad Sci U S A · 2019

basic_science · Level V

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Abstract

Coordinated dynamics of individual components in active matter are an essential aspect of life on all scales. Establishing a comprehensive, causal connection between intracellular, intercellular, and macroscopic behaviors has remained a major challenge due to limitations in data acquisition and analysis techniques suitable for multiscale dynamics. Here, we combine a high-throughput adaptive microscopy approach with machine learning, to identify key biological and physical mechanisms that determine distinct microscopic and macroscopic collective behavior phases which develop as <i>Bacillus subtilis</i> swarms expand over five orders of magnitude in space. Our experiments, continuum modeling, and particle-based simulations reveal that macroscopic swarm expansion is primarily driven by cellular growth kinetics, whereas the microscopic swarming motility phases are dominated by physical cell-cell interactions. These results provide a unified understanding of bacterial multiscale behavioral complexity in swarms.

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