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Aurein 2.3 functionality is supported by oblique orientated α-helical formation

机译:倾斜定向的α螺旋结构支持Aurein 2.3的功能

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摘要

In this study, an amphibian antimicrobial peptide, aurein 2.3, was predicted to use oblique orientated α-helix formation in its mechanism of membrane destabilisation. Molecular dynamic (MD) simulations and circular dichroism (CD) experimental data suggested that aurein 2.3 exists in solution as unstructured monomers and folds to form predominantly α-helical structures in the presence of a dimyristoylphosphatidylcholine membrane. MD showed that the peptide was highly surface active, which supported monolayer data where the peptide induced surface pressure changes 34 mN m - 1. In the presence of a lipid membrane MD simulations suggested that under hydrophobic mismatch the peptide is seen to insert via oblique orientation with a phenylalanine residue (PHE3) playing a key role in the membrane interaction. There is evidence of snorkelling leucine residues leading to further membrane disruption and supporting the high level of lysis observed using calcein release assays (76%). Simulations performed at higher peptide/lipid ratio show peptide cooperativity is key to increased efficiency leading to pore-formation.
机译:在这项研究中,预计两栖抗菌肽aurein 2.3在其膜失稳机制中会使用倾斜定向的α-螺旋形成。分子动力学(MD)模拟和圆二色性(CD)实验数据表明,金黄色素2.3以非结构化单体形式存在于溶液中,在存在二肉豆蔻酰磷脂酰胆碱膜的情况下折叠形成主要的α螺旋结构。 MD显示该肽具有很高的表面活性,支持单层数据,其中该肽诱导的表面压力变化> 34 mN m-1。在存在脂质膜的情况下,MD模拟表明在疏水错配下,该肽可通过倾斜插入。苯丙氨酸残基(PHE3)的取向在膜相互作用中起关键作用。有证据表明,使用钙黄绿素释放测定法(76%)可观察到亮氨酸残基浮潜导致进一步的膜破裂并支持高水平的裂解。在较高的肽/脂质比例下进行的模拟表明,肽的协同作用是提高效率的关键,可导致形成孔。

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