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Unraveling the B. pseudomallei Heptokinase WcbL: From Structure to Drug Discovery.


ABSTRACT: Gram-negative bacteria utilize heptoses as part of their repertoire of extracellular polysaccharide virulence determinants. Disruption of heptose biosynthesis offers an attractive target for novel antimicrobials. A critical step in the synthesis of heptoses is their 1-O phosphorylation, mediated by kinases such as HldE or WcbL. Here, we present the structure of WcbL from Burkholderia pseudomallei. We report that WcbL operates through a sequential ordered Bi-Bi mechanism, loading the heptose first and then ATP. We show that dimeric WcbL binds ATP anti-cooperatively in the absence of heptose, and cooperatively in its presence. Modeling of WcbL suggests that heptose binding causes an elegant switch in the hydrogen-bonding network, facilitating the binding of a second ATP molecule. Finally, we screened a library of drug-like fragments, identifying hits that potently inhibit WcbL. Our results provide a novel mechanism for control of substrate binding and emphasize WcbL as an attractive anti-microbial target for Gram-negative bacteria.

SUBMITTER: Vivoli M 

PROVIDER: S-EPMC4691232 | biostudies-literature | 2015 Dec

REPOSITORIES: biostudies-literature

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Unraveling the B. pseudomallei Heptokinase WcbL: From Structure to Drug Discovery.

Vivoli Mirella M   Isupov Michail N MN   Nicholas Rebecca R   Hill Andrew A   Scott Andrew E AE   Kosma Paul P   Prior Joann L JL   Harmer Nicholas J NJ  

Chemistry & biology 20151201 12


Gram-negative bacteria utilize heptoses as part of their repertoire of extracellular polysaccharide virulence determinants. Disruption of heptose biosynthesis offers an attractive target for novel antimicrobials. A critical step in the synthesis of heptoses is their 1-O phosphorylation, mediated by kinases such as HldE or WcbL. Here, we present the structure of WcbL from Burkholderia pseudomallei. We report that WcbL operates through a sequential ordered Bi-Bi mechanism, loading the heptose firs  ...[more]

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