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Título

Molecular ruler mechanism and interfacial catalysis of the integral membrane acyltransferase PatA

AutorAnso, Itxaso CSIC ORCID; Basso, Luis G. M.; Wang, Lei; Marina, Alberto CSIC ORCID ; Páez-Pérez, Edgar D.; Jäger, Christian; Gavotto, Floriane; Tersa, Montse; Perrone, Sebastián; Contreras, F. Xabier CSIC ORCID; Prandi, Jacques; Gilleron, Martine; Linster, Carole L.; Corzana, Francisco; Lowary, Todd L.; Trastoy, Beatriz CSIC ORCID; Guerin, Marcelo E. CSIC ORCID
Fecha de publicación15-oct-2021
EditorAmerican Association for the Advancement of Science
CitaciónScience advances 7(42): eabj4565 (2021)
ResumenGlycolipids are prominent components of bacterial membranes that play critical roles not only in maintaining the structural integrity of the cell but also in modulating host-pathogen interactions. PatA is an essential acyltransferase involved in the biosynthesis of phosphatidyl-myo-inositol mannosides (PIMs), key structural elements and virulence factors of Mycobacterium tuberculosis. We demonstrate by electron spin resonance spectroscopy and surface plasmon resonance that PatA is an integral membrane acyltransferase tightly anchored to anionic lipid bilayers, using a two-helix structural motif and electrostatic interactions. PatA dictates the acyl chain composition of the glycolipid by using an acyl chain selectivity “ruler.” We established this by a combination of structural biology, enzymatic activity, and binding measurements on chemically synthesized nonhydrolyzable acyl–coenzyme A (CoA) derivatives. We propose an interfacial catalytic mechanism that allows PatA to acylate hydrophobic PIMs anchored in the inner membrane of mycobacteria, through the use of water-soluble acyl-CoA donors.
Versión del editorhttps://doi.org/10.1126/sciadv.abj4565
URIhttp://hdl.handle.net/10261/311532
DOI10.1126/sciadv.abj4565
E-ISSN2375-2548
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