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    Conjugation inhibitors compete with palmitic acid for binding to the conjugative traffic ATPaseTrwD, providing a mechanism to inhibit bacterial conjugation

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    Identificadores
    URI: http://hdl.handle.net/10902/15059
    DOI: 10.1074/jbc.RA118.004716
    ISSN: 0021-9258
    ISSN: 1083-351X
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    Autoría
    García Cazorla, Yolanda; Getino Redondo, María; Sanabria Ríos, David J.; Carballeira, Néstor M.; Cruz Calahorra, Fernando de laAutoridad Unican; Arechaga Iturregui, Ignacio MaríaAutoridad Unican; Cabezón Navarro, María ElenaAutoridad Unican
    Fecha
    2018
    Derechos
    © 2018 García-Cazorla et al. This research was originally published in García-Cazorla, Yolanda, et al. «Conjugation Inhibitors Compete with Palmitic Acid for Binding to the Conjugative Traffic ATPase TrwD, Providing a Mechanism to Inhibit Bacterial Conjugation». Journal of Biological Chemistry, vol. 293, n.o 43, octubre de 2018, pp. 16923-30. doi:10.1074/jbc.RA118.004716
    Publicado en
    J Biol Chem. 2018 Oct 26;293(43):16923-16930
    Editorial
    American Society for Biochemistry and Molecular Biology Inc.
    Enlace a la publicación
    https://dx.doi.org/10.1074/jbc.RA118.004716
    Palabras clave
    ATPase
    ATPase Inhibitors
    Antibiotic Resistance
    Bacterial Conjugation
    Drug Design
    Secretion
    Type IV Secretion System
    Resumen/Abstract
    Bacterial conjugation is a key mechanism by which bacteria acquire antibiotic resistance. Therefore, conjugation inhibitors (COINs) are promising compounds in the fight against the spread of antibiotic resistance genes among bacteria. Unsaturated fatty acids (uFAs) and alkynoic fatty acid derivatives, such as 2-hexadecanoic acid (2-HDA), have been reported previously as being effective COINs. The traffic ATPase TrwD, a VirB11 homolog in plasmid R388, is the molecular target of these compounds, which likely affect binding of TrwD to bacterial membranes. In this work, we demonstrate that COINs are abundantly incorporated into Escherichia coli membranes, replacing palmitic acid as the major component of the membrane. We also show that TrwD binds palmitic acid, thus facilitating its interaction with the membrane. Our findings also suggest that COINs bind TrwD at a site that is otherwise occupied by palmitic acid. Accordingly, molecular docking predictions with palmitic acid indicated that it shares the same binding site as uFAs and 2-HDA, although it differs in the contacts involved in this interaction. We also identified 2-bromopalmitic acid, a palmitate analog that inhibits many membrane-associated enzymes, as a compound that effectively reduces TrwD ATPase activity and bacterial conjugation. Moreover, we demonstrate that 2-bromopalmitic and palmitic acids both compete for the same binding site in TrwD. Altogether, these detailed findings open up a new avenue in the search for effective synthetic inhibitors of bacterial conjugation, which may be pivotal for combating multidrug-resistant bacteria.
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    UNIVERSIDAD DE CANTABRIA

    Repositorio realizado por la Biblioteca Universitaria utilizando DSpace software
    Contacto | Sugerencias
    Metadatos sujetos a:licencia de Creative Commons Reconocimiento 4.0 España