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Beggs, G.

Publications and source records attributed to Beggs, G..

2 recordsLinked to original sources

Phage VP882 possesses quorum-sensing-driven lytic induction and stress-mediated host growth suppression mechanisms

Vibriophage VP882 launches its lytic cascade upon detection of a quorum-sensing autoinducer produced by its bacterial host. This capability enables the phage to maximize transmission by transitioning from lysogeny to lysis only at high host cell density, when abundant host cells are present to infect. Here, we show that two different pathways can be triggered upon prophage induction. When the prophage is induced via quorum sensing, Qtip, an anti-repressor, inhibits the cI lysogeny maintenance protein, driving expression of the lysis genes. The phage can also launch a cascade that causes host growth arrest. In this case, cI derepresses two genes, one encoding a DksA homolog, TraRVP882, and one encoding a protein that we name QisA. TraRVP882 and QisA form a complex that causes host growth arrest, relying on RNAP-binding by TraRVP882. Phage VP882 quorum sensing also activates production of a protein we call QtiQ, which inactivates the QisA-TraRVP882 complex, reestablishing host cell growth. Thus, in the presence of QtiQ, the phage lysis program is enacted. To our knowledge, QtiQ is the first protein inactivator of a TraR or DksA-like homolog. By inducing growth arrest, phage VP882 may enable its host to survive under stress-inducing conditions, or the phage may delay host lysis until optimal conditions are met. In both cases, the phage thereby enhances its own prospects for spread.

microbiology↗

Hormonal steroids bind the Neisseria gonorrhoeae multidrug resistance regulator, MtrR, to induce a multidrug binding efflux pump and stress-response sigma factor

Overexpression of the multidrug efflux pump MtrCDE, a critical factor of multidrug-resistance in Neisseria gonorrhoeae, the causative agent of gonorrheae, is repressed by the transcriptional regulator, MtrR (multiple transferable resistance repressor). Here, we report the results from a series of in vitro experiments to identify innate, human inducers of MtrR and to understand the biochemical and structural mechanisms of the gene regulatory function of MtrR. Isothermal titration calorimetry experiments reveal that MtrR binds the hormonal steroids progesterone, {beta}-estradiol, and testosterone, all of which are present at significant concentrations at urogenital infection sites as well as ethinyl estrogen, a component of some birth control pills. Binding of these steroids results in decreased affinity of MtrR for cognate DNA, as demonstrated by fluorescence polarization-based assays. The crystal structures of MtrR bound to each steroid provided insight into the flexibility of the binding pocket, elucidated specific residue-ligand interactions, and revealed the conformational consequences of the induction mechanism of MtrR. Three residues, D171, W136 and R176 are key to the specific binding of these gonadal steroids. These studies provide a molecular understanding of the transcriptional regulation by MtrR that promotes N. gonorrhoeae survival in its human host.

biochemistry↗