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Rubin, Eric

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Rubin

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Eric

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Rubin, Eric

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Now showing 1 - 3 of 3
  • Publication

    Systematic genetic nomenclature for type VII secretion systems

    (Public Library of Science, 2009) Bitter, Wilbert; Houben, Edith N. G.; Bottai, Daria; Brodin, Priscille; Cox, Jeffery S.; Derbyshire, Keith; Gao, Lian-Yong; Gey van Pittius, Nicolaas C.; Pym, Alexander S.; Cole, Stewart T.; Brosch, Roland; Rall, Glenn F.; Brown, Eric J.; Fortune, Sarah; Liu, Jun; Rubin, Eric; Sherman, David R.
  • Publication

    A mycobacterial enzyme essential for cell division synergizes with resuscitation-promoting factor

    (Public Library of Science, 2008) Hett, Erik Christian; Chao, Michael C.; Deng, Lynn L.; Rubin, Eric

    The final stage of bacterial cell division requires the activity of one or more enzymes capable of degrading the layers of peptidoglycan connecting two recently developed daughter cells. Although this is a key step in cell division and is required by all peptidoglycan-containing bacteria, little is known about how these potentially lethal enzymes are regulated. It is likely that regulation is mediated, at least partly, through protein–protein interactions. Two lytic transglycosylases of mycobacteria, known as resuscitation-promoting factor B and E (RpfB and RpfE), have previously been shown to interact with the peptidoglycan-hydrolyzing endopeptidase, Rpf-interacting protein A (RipA). These proteins may form a complex at the septum of dividing bacteria. To investigate the function of this potential complex, we generated depletion strains in M. smegmatis. Here we show that, while depletion of rpfB has no effect on viability or morphology, ripA depletion results in a marked decrease in growth and formation of long, branched chains. These growth and morphological defects could be functionally complemented by the M. tuberculosis ripA orthologue (rv1477), but not by another ripA-like orthologue (rv1478). Depletion of ripA also resulted in increased susceptibility to the cell wall–targeting β-lactams. Furthermore, we demonstrate that RipA has hydrolytic activity towards several cell wall substrates and synergizes with RpfB. These data reveal the unusual essentiality of a peptidoglycan hydrolase and suggest a novel protein–protein interaction as one way of regulating its activity.

  • Publication

    Twin RNA Polymerase–associated Proteins Control Virulence Gene Expression in Francisella tularensis

    (Public Library of Science, 2007) Costante-Hamm, Michelle M; Balon, Emmy; Schneewind, Olaf; Charity, James Carl; Rubin, Eric; Boyd, Dana; Dove, Simon

    The MglA protein is the only known regulator of virulence gene expression in Francisella tularensis, yet it is unclear how it functions. F. tularensis also contains an MglA-like protein called SspA. Here, we show that MglA and SspA cooperate with one another to control virulence gene expression in F. tularensis. Using a directed proteomic approach, we show that both MglA and SspA associate with RNA polymerase (RNAP) in F. tularensis, and that SspA is required for MglA to associate with RNAP. Furthermore, bacterial two-hybrid and biochemical assays indicate that MglA and SspA interact with one another directly. Finally, through genome-wide expression analyses, we demonstrate that MglA and SspA regulate the same set of genes. Our results suggest that a complex involving both MglA and SspA associates with RNAP to positively control virulence gene expression in F. tularensis. The F. tularensis genome is unusual in that it contains two genes encoding different α subunits of RNAP, and we show here that these two α subunits are incorporated into RNAP. Thus, as well as identifying SspA as a second critical regulator of virulence gene expression in F. tularensis, our findings provide a framework for understanding the mechanistic basis for virulence gene control in a bacterium whose transcription apparatus is unique.