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Biology subjects

Kennedy, E. N.

Publications and source records attributed to Kennedy, E. N..

3 recordsLinked to original sources

A Clarifying Perspective on Bacterial Pseudo-Receiver Domains

Two-component regulatory systems typically consist of a sensor kinase and a response regulator. All response regulators contain a receiver domain; most also contain an output domain. Response regulator activity is controlled by the phosphorylation state of the receiver. Receivers contain five conserved active site residues that catalyze phosphorylation and dephosphorylation reactions. Some protein domains identified computationally as receivers (PF00072) lack one or more of the five key conserved residues and are termed pseudoreceivers (PsRs). Because receivers are among the most abundant protein domains in nature, PsRs are also common. PsRs are especially common in plants, where they control circadian rhythms. Little is known about PsRs in fungi and archaea. Here, we focused on bacterial PsRs. We created representative datasets of 9,153 PsR and 143,116 true receiver domain sequences from bacteria. Comparison of amino acid composition of PsR and true receiver domains at each position showed (i) many differences at positions known to be important for phosphorylation-mediated signaling in true receiver domains, consistent with diminished importance in PsRs; and (ii) greatest differences between PsR and true receiver domains in the {beta}33 and {beta}44 loops, potentially highlighting functionally important regions of PsRs. We also performed covariation analyses of PsR and true receiver domains, which suggested six networks of linked residues that may be important for PsR function. Our analyses lay the foundation for rational experimental approaches to investigate molecular mechanisms of signaling by bacterial PsRs.

bioinformatics↗

The innate immune protein calprotectin incapacitates the bactericidal activity of β-lactam antibiotics

{beta}-lactam antibiotics are widely used to treat bacterial infections, yet treatment failures frequently occur even without resistance. Here, we show that the innate immune protein calprotectin (CP), released by neutrophils and abundant at infection sites, induces tolerance to {beta}-lactam antibiotics in Staphylococcus aureus. CP is a potent zinc chelator and was found to inhibit the activity of S. aureus autolysins, zinc-dependent enzymes essential for bacterial lysis following {beta}-lactam-mediated inhibition of cell wall synthesis. This protection was independent of bacterial growth or metabolism and was specific to {beta}-lactam antibiotics. Mechanistically, CP inactivated the amidase activity of Atl, the major S. aureus autolysin, through zinc sequestration. In vivo, oxacillin was significantly more effective in CP-deficient mice, demonstrating that CP reduces {beta}-lactam efficacy during infection. These findings reveal a host-derived mechanism of antibiotic tolerance and suggest that zinc availability at infection sites may directly influence {beta}-lactam treatment outcomes.

microbiology↗

Phosphorylation chemistry of the Bordetella PlrSR TCS and its contribution to bacterial persistence in the lower respiratory tract

2Bordetella species cause lower respiratory tract infections in mammals. B. pertussis and B. bronchiseptica are the causative agents of whooping cough and kennel cough, respectively. The current acellular vaccine for B. pertussis protects against the pertussis toxin but does not prevent transmission or colonization. Cases of B. pertussis infections are on the rise even in areas of high vaccination. The PlrSR two-component system, is required for persistence in the mouse lung. A partial plrS deletion strain and a plrS H521Q strain cannot survive past three days in the lung, suggesting PlrSR works in a phosphorylation dependent mechanism. We characterized the biochemistry of B. bronchiseptica PlrSR and found that both proteins function as a canonical two-component system. His521 and Glu522 were essential for PlrS autophosphorylation. Asn525 was essential for phosphatase activity. The PAS domain was critical for both PlrS autophosphorylation and phosphatase activities. PlrS can both phosphotransfer to and exert phosphatase activity towards PlrR. Unexpectedly, PlrR forms a tetramer when unphosphorylated and a dimer upon phosphorylation. Finally, we demonstrated the importance of PlrS phosphatase activity for persistence within the murine lung. By characterizing PlrSR we hope to guide future in vivo investigation for development of new vaccines and therapeutics. 10 GRAPHICAL ABSTRACT O_FIG_DISPLAY_L [Figure 1] M_FIG_DISPLAY C_FIG_DISPLAY

microbiology↗