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CryoEM structure of the Vibrio cholerae Type IV competence pilus secretin PilQ

View ORCID ProfileSara J. Weaver, View ORCID ProfileMatthew H. Sazinsky, View ORCID ProfileTriana N. Dalia, View ORCID ProfileAnkur B. Dalia, View ORCID ProfileGrant J. Jensen
doi: https://doi.org/10.1101/2020.03.03.975896
Sara J. Weaver
1Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, CA, USA
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Matthew H. Sazinsky
2Department of Chemistry, Pomona College, Pomona, CA, USA
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Triana N. Dalia
3Department of Biology, Indiana University, Bloomington, IN, USA
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Ankur B. Dalia
3Department of Biology, Indiana University, Bloomington, IN, USA
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Grant J. Jensen
4Division of Biology and Biological Engineering and Howard Hughes Medical Institute, California Institute of Technology, Pasadena, CA, USA
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  • For correspondence: jensen@caltech.edu
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Abstract

Natural transformation is the process by which bacteria take up genetic material from their environment and integrate it into their genome by homologous recombination. It represents one mode of horizontal gene transfer and contributes to the spread of traits like antibiotic resistance. In Vibrio cholerae, the Type IV competence pilus is thought to facilitate natural transformation by extending from the cell surface, binding to exogenous DNA, and retracting to thread this DNA through the outer membrane secretin, PilQ. A lack of structural information has hindered our understanding of this process, however. Here, we solved the first ever high-resolution structure of a Type IV competence pilus secretin. A functional tagged allele of VcPilQ purified from native V. cholerae cells was used to determine the cryoEM structure of the PilQ secretin in amphipol to ∼2.7 Å. This structure highlights for the first time key differences in the architecture of the Type IV competence pilus secretin from the Type II and Type III Secretin System secretins. Based on our cryoEM structure, we designed a series of mutants to interrogate the mechanism of PilQ. These experiments provide insight into the channel that DNA likely traverses to promote the spread of antibiotic resistance via horizontal gene transfer by natural transformation. We prove that it is possible to reduce pilus biogenesis and natural transformation by sealing the gate, suggesting VcPilQ as a new drug target.

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Posted March 04, 2020.
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CryoEM structure of the Vibrio cholerae Type IV competence pilus secretin PilQ
Sara J. Weaver, Matthew H. Sazinsky, Triana N. Dalia, Ankur B. Dalia, Grant J. Jensen
bioRxiv 2020.03.03.975896; doi: https://doi.org/10.1101/2020.03.03.975896
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CryoEM structure of the Vibrio cholerae Type IV competence pilus secretin PilQ
Sara J. Weaver, Matthew H. Sazinsky, Triana N. Dalia, Ankur B. Dalia, Grant J. Jensen
bioRxiv 2020.03.03.975896; doi: https://doi.org/10.1101/2020.03.03.975896

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