X-ray structure of a carpet-like antimicrobial defensin–phospholipid membrane disruption complex

Defensins are cationic antimicrobial peptides expressed throughout the plant and animal kingdoms as a first line of defense against pathogens. Membrane targeting and disruption is a crucial function of many defensins, however the precise mechanism remains unclear. Certain plant defensins form dimers...

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Veröffentlicht in:Nature communications 2018-05, Vol.9 (1), p.1962-10, Article 1962
Hauptverfasser: Järvå, Michael, Lay, Fung T., Phan, Thanh Kha, Humble, Cassandra, Poon, Ivan K. H., Bleackley, Mark R., Anderson, Marilyn A., Hulett, Mark D., Kvansakul, Marc
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Sprache:eng
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Zusammenfassung:Defensins are cationic antimicrobial peptides expressed throughout the plant and animal kingdoms as a first line of defense against pathogens. Membrane targeting and disruption is a crucial function of many defensins, however the precise mechanism remains unclear. Certain plant defensins form dimers that specifically bind the membrane phospholipids phosphatidic acid (PA) and phosphatidylinositol 4,5-bisphosphate, thereby triggering the assembly of defensin–lipid oligomers that permeabilize cell membranes. To understand this permeabilization mechanism, here we determine the crystal structure of the plant defensin NaD1 bound to PA. The structure reveals a 20-mer that adopts a concave sheet- or carpet-like topology where NaD1 dimers form one face and PA acyl chains form the other face of the sheet. Furthermore, we show that Arg39 is critical for PA binding, oligomerization and fungal cell killing. These findings identify a putative defensin–phospholipid membrane attack configuration that supports a longstanding proposed carpet mode of membrane disruption. Defensins are cationic antimicrobial peptides that permeabilize membranes of pathogens presumably via the assembly of defensin–lipid oligomers. Here authors provide evidence for this by solving the crystal structure of a plant defensin in an oligomeric state with phospholipids.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-018-04434-y