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Garner, Ethan

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Garner

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Ethan

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Garner, Ethan

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Now showing 1 - 2 of 2
  • Publication

    Bacillus subtilis cell diameter is determined by the opposing actions of two distinct cell wall synthetic systems

    (Springer Science and Business Media LLC, 2019-05-13) Dion, Michael; Kapoor, Mrinal; Sun, Yingjie; Wilson, Sean; Ryan, Joel; Vigouroux, Antoine; van Teeffelen, Sven; Oldenbourg, Rudolf; Garner, Ethan

    Rod shaped bacteria grow by adding material into their cell wall via the action of two spatially distinct enzymatic systems: The Rod system moves around the cell circumference, while the class A penicillin-binding proteins (aPBPs) are unorganized. To understand how the combined action of these two systems defines bacterial dimensions, we examined how each system affects the growth and width of Bacillus subtilis, as well as the mechanical anisotropy and orientation of material within their sacculi. We find that rod diameter is not determined by MreB, rather it depends on the balance between the systems: The Rod system reduces diameter, while aPBPs increase it. RodA/PBP2A can both thin or widen cells, depending on its levels relative to MreBCD. Increased Rod system activity correlates with an increased density of directional MreB filaments, and a greater fraction of directionally moving PBP2A molecules. This increased circumferential synthesis increases the amount of oriented material within the sacculi, increasing their mechanical anisotropy and reinforcing rod shape. Together, these experiments explain how the combined action of the two main cell wall synthetic systems build rods of different widths, a model that appears generalizable: Escherichia coli containing Rod system mutants show the same relationship between the density of directionally moving MreB filaments and cell width.

  • Publication

    Single-molecule imaging reveals that Z-ring condensation is essential for cell division in Bacillus subtilis

    (Springer Science and Business Media LLC, 2021-03-18) Squyres, Georgia R.; Holmes, Matthew J.; Barger, Sarah R.; Pennycook, Betheney R.; Ryan, Joel; Yan, Victoria T.; Garner, Ethan

    Although many components of the cell division machinery in bacteria have been identified, the mechanisms by which they work together to divide the cell remain poorly understood. Key among these components is the tubulin FtsZ, which forms a Z ring at midcell. FtsZ recruits the other cell division proteins, collectively called the divisome, and the Z ring constricts as the cell divides. We applied live-cell single-molecule imaging to describe the dynamics of the divisome in detail and to evaluate the individual roles of FtsZ-binding proteins, specifically FtsA and the ZBPs (EzrA, SepF, and ZapA), in cytokinesis. We show that the divisome comprises two subcomplexes that move differently: stationary ZBPs that transiently bind to treadmilling FtsZ filaments, and a moving complex that includes cell wall synthases. Our imaging analyses reveal that ZBPs bundle FtsZ filaments together and condense them into Z rings, and that this condensation is necessary for cytokinesis.