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Biophysical Journal 84:2634-2637 (2003)
© 2003 The Biophysical Society

Single Particle Tracking of Correlated Bacterial Dynamics

G. V. Soni*, B. M. Jaffar Ali*, Y. Hatwalne{dagger} and G. V. Shivashankar*,{dagger}

* National Center for Biological Sciences, Tata Institute of Fundamental Research, GKVK Campus, Bangalore-560065, India; and {dagger} Raman Research Institute, Bangalore, India

Correspondence: Address reprint requests to G. V. Shivashankar, E-mail: shiva{at}ncbs.res.in.

Pattern formation in 3D random media has been a topic of interest in soft matter and biological systems. However, the onset of long-range microscopic ordering has not been explored in randomly moving self-propelled particles due to a lack of model systems as well as local probe techniques. In this article, we report on a novel experiment, using motile Escherichia coli bacteria as a model system, to study the onset of dynamic correlation and collective movement in three-dimension. We use fluctuation of an optically trapped micron-size bead as a detector of correlated bacterial motion, and further study this behavior by analyzing the motility of fluorescent bacteria in a confocal volume. We find evidence of dynamic correlation at very low volume fractions (0.01). We show that the magnitude of this correlation strongly depends on the interbacterial distances and their coupling modes. This opens up possibilities to probe long-range pattern formation in actively propelled cells or organisms coupled through hydrodynamics and/or chemical signaling.




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M. Wu, J. W. Roberts, S. Kim, D. L. Koch, and M. P. DeLisa
Collective bacterial dynamics revealed using a three-dimensional population-scale defocused particle tracking technique.
Appl. Envir. Microbiol., July 1, 2006; 72(7): 4987 - 4994.
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