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肌动蛋白孔形成寡聚物的脂质相互作用。

Lipid interactions of an actinoporin pore-forming oligomer.

机构信息

Department of Chemistry and Biochemistry, The City College of New York, New York, New York.

Department of Chemistry and Biochemistry, The City College of New York, New York, New York; Graduate Programs in Chemistry, Biochemistry, and Physics, The Graduate Center, The City College of New York, New York, New York.

出版信息

Biophys J. 2021 Apr 20;120(8):1357-1366. doi: 10.1016/j.bpj.2021.02.015. Epub 2021 Feb 20.

Abstract

The actinoporins are cytolytic toxins produced by sea anemones. Upon encountering a membrane, preferably containing sphingomyelin, they oligomerize and insert their N-terminal helix into the membrane, forming a pore. Whether sphingomyelin is specifically recognized by the protein or simply induces phase coexistence in the membrane has been debated. Here, we perform multi-microsecond molecular dynamics simulations of an octamer of fragaceatoxin C, a member of the actinoporin family, in lipid bilayers containing either pure 1,2-dioleoyl-sn-glycero-3-phosphocholine (DOPC) or a 1:1 mixture of DOPC and palmitoyl sphingomyelin (PSM). The complex is highly stable in both environments, with only slight fraying of the inserted helices near their N-termini. Analyzing the structural parameters of the mixed membrane in the course of the simulation, we see signs of a phase transition for PSM in the inner leaflet of the bilayer. In both leaflets, cross-interactions between lipids of different type decrease over time. Surprisingly, the aromatic loop thought to be responsible for sphingomyelin recognition interacts more with DOPC than PSM by the end of the simulation. These results support the notion that the key membrane property that actinoporins recognize is lipid phase coexistence.

摘要

肌动蛋白是海葵产生的细胞溶素毒素。遇到膜时,最好含有神经鞘磷脂,它们会寡聚化并将其 N 端螺旋插入膜中,形成孔。神经鞘磷脂是被蛋白质特异性识别还是仅仅诱导膜中相共存一直存在争议。在这里,我们在含有纯 1,2-二油酰基-sn-甘油-3-磷酸胆碱 (DOPC) 或 DOPC 和棕榈酰神经鞘磷脂 (PSM) 1:1 混合物的脂质双层中对肌动蛋白家族成员 fragaceatoxin C 的八聚体进行了多微秒分子动力学模拟。在这两种环境下,复合物都非常稳定,只有插入螺旋的 N 端附近略微磨损。在模拟过程中分析混合膜的结构参数时,我们看到双层内层中 PSM 发生相变的迹象。在两个叶层中,不同类型的脂质之间的交叉相互作用随时间推移而减少。令人惊讶的是,芳香环被认为负责识别神经鞘磷脂,与 PSM 的相互作用在模拟结束时比 DOPC 更强。这些结果支持这样的观点,即肌动蛋白识别的关键膜特性是脂质相共存。

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