Linoleic and linolenic acid hydroperoxides interact differentially with biomimetic plant membranes in a lipid specific manner

被引:14
作者
Deleu, Magali [1 ]
Deboever, Estelle [1 ,2 ]
Nasir, Mehmet Nail [1 ,2 ]
Crowet, Jean-Marc [1 ,4 ]
Dauchez, Manuel [4 ]
Ongena, Marc [3 ]
Jijakli, Haissam [5 ]
Fauconnier, Marie-Laure [2 ]
Lins, Laurence [1 ]
机构
[1] Univ Liege, Gembloux Agrobio Tech, Lab Mol Biophys Interfaces, 2 Passage Deportes, B-5030 Gembloux, Belgium
[2] Univ Liege, Gembloux Agrobio Tech, Lab Chim Gen & Organ, 2 Passage Deportes, B-5030 Gembloux, Belgium
[3] Univ Liege, Gembloux Agrobio Tech, Microbial Proc & Interact Lab MiPI, 2 Passage Deportes, B-5030 Gembloux, Belgium
[4] Univ Reims, Matrice Extracellulaire & Dynam Cellulaire, Chaire MAgICS, UFR Sci Exactes & Nat,CNRS,UMR 7639, Chemin Rouliers, F-51100 Reims, France
[5] Univ Liege, Gembloux Agrobio Tech, Lab Phytopathol Integree & Urbaine, 2 Passage Deportes, B-5030 Gembloux, Belgium
关键词
Oxylipins; Plant membrane; Molecular interactions; Lipid specificity; MOLECULAR-DYNAMICS; PLASMA-MEMBRANE; FORCE-FIELD; HYDRATION; OXYLIPINS; SURFACTIN; MODEL; BIOSYNTHESIS; LIPOXYGENASE; SPECTROSCOPY;
D O I
10.1016/j.colsurfb.2018.12.014
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Linoleic and linolenic acid hydroperoxides (HPOs) constitute key intermediate oxylipins playing an important role as signaling molecules during plant defense processes in response to biotic or abiotic stress. They have also been demonstrated in vitro as antimicrobial agents against plant fungi and bacteria. To reach the phytopathogens in vivo, the HPOs biosynthesized in the plant cells must cross the plant plasma membrane (PPM) where they can also interact with plasma membrane lipids and have an effect on their organization. In the present study, we have investigated the interaction properties of HPOs with PPM at a molecular level using biophysical tools combining in vitro and in silico approaches and using plant biomimetic lipid systems. Our results have shown that HPOs are able to interact with PPM lipids and perturb their lateral organization. Glucosylceramide (GluCer) is a privileged partner, sitosterol lessens their binding and the presence of both GluCer and sitosterol further reduces their interaction. Hydrophobic effect and polar interactions are involved in the binding. The chemical structure of HPOs influences their affinity for PPM lipids. The presence of three double bonds in the HPO molecule gives rise to a higher affinity comparatively to two double bonds, which can be explained by their differential interaction with the lipid polar headgroups.
引用
收藏
页码:384 / 391
页数:8
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