Molecular ruler mechanism and interfacial catalysis of the integral membrane acyltransferase PatA.
basic_science · Level V
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- Record sourced from PubMed, PMID 34652941.
- Also identified by DOI 10.1126/sciadv.abj4565 and PMC identifier 8519569.
- Licence recorded as CC BY-NC.
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Abstract
Glycolipids 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-<i>myo</i>-inositol mannosides (PIMs), key structural elements and virulence factors of <i>Mycobacterium tuberculosis</i>. 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.