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Use of a microfluidic platform to uncover basic features of energy and environmental stress responses in individual cells of Bacillus subtilis

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2017

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Public Library of Science
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Cabeen, Matthew T., Jonathan R. Russell, Johan Paulsson, and Richard Losick. 2017. “Use of a microfluidic platform to uncover basic features of energy and environmental stress responses in individual cells of Bacillus subtilis.” PLoS Genetics 13 (7): e1006901. doi:10.1371/journal.pgen.1006901. http://dx.doi.org/10.1371/journal.pgen.1006901.

Abstract

Bacteria use a variety of stress-sensing systems to sense and respond to diverse stressors and to ensure their survival under adverse conditions. The gram-positive bacterium Bacillus subtilis responds to energy stress (ATP depletion) and to environmental stressors using two distinct stress-sensing pathways that converge on the alternative sigma factor σB to provoke a general stress response. Past efforts to study the σB stress response in bulk culture and on agarose pads were unable to visualize the responses of individual cells under tightly controlled conditions for extended periods of time. Here we use a microfluidics-based strategy to discern the basic features of σB activation in single cells in response to energy and environmental stress, both immediately upon stressor exposure and for tens of generations thereafter. Upon energy stress at various levels of stressor, cells exhibited fast, transient, and amplitude-modulated responses but not frequency modulation as previously reported. Upon environmental stress, which is mediated by the stressosome complex, wild-type cells primarily exhibited a transient and amplitude-modulated response. However, mutant cells producing only one of the four paralogous RsbR stressosome proteins showed striking and previously unseen differences. Whereas RsbRA-only cells mimicked the wild type, RsbRC-only cells displayed a slower but sustained overall response composed of repeated activation events in single cells.

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Biology and Life Sciences, Cell Biology, Cell Processes, Cellular Stress Responses, Physical Sciences, Chemistry, Chemical Compounds, Organic Compounds, Alcohols, Ethanol, Organic Chemistry, Engineering and Technology, Fluidics, Microfluidics, Cell Cycle and Cell Division, Organisms, Bacteria, Bacillus, Bacillus Subtilis, Microbiology, Medical Microbiology, Microbial Pathogens, Bacterial Pathogens, Medicine and Health Sciences, Pathology and Laboratory Medicine, Pathogens, Experimental Organism Systems, Prokaryotic Models, Cell Death, Signal Transduction, Cell Signaling, Signaling Cascades, Stress Signaling Cascade

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