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Molecular dynamics investigation of the influence of anionic and zwitterionic interfaces on antimicrobial peptides’ structure: Implications for peptide toxicity and activity

机译:分子动力学研究阴离子和两性离子界面对抗菌肽结构的影响:对肽毒性和活性的影响

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摘要

Molecular dynamics simulations of three related helical antimicrobial peptides have been carried out in zwitterionic diphosphocholine (DPC) micelles and anionic sodiumdodecylsulfate (SDS) micelles. These systems can be considered as model mammalian and bacterial membrane interfaces, respectively. The goal of this study is to dissect the differences in peptide composition which make the mutant peptides (novispirin-G10 and novispirin-T7) less toxic than the parent peptide ovispirin (OVIS), although all three peptides have highly antibacterial properties. Compared to G10 and T7, OVIS inserts deepest into the DPC micelle. This correlates well with the lesser toxicity of G10 and T7. There is strong evidence which suggests that synergistic binding of hydrophobic residues drives binding of OVIS to the micelle. The helical content of G10 and T7 is reduced in the presence of DPC, and this leads to less amphipathic peptide structures, which bind weakly to the micelle. Simulations in SDS were carried out to compare the influence of membrane electrostatics on peptide structure. All three peptides bound strongly to SDS, and retained helical form. This corresponds well with their equally potent antibacterial properties. Based on the simulations, we argue that secondary structure stability often leads to toxic properties. We also propose that G10 and T7 operate by the carpet mechanism of cell lysis. Toxicity of peptides operating by the carpet mechanism can be attenuated by reducing the peptide helical content. The simulations successfully capture experimental binding states, and the different depths of binding of the three peptides to the two micelles correlate with their antibacterial and toxic properties.
机译:在两性离子二磷酸胆碱(DPC)胶束和阴离子十二烷基硫酸钠(SDS)胶束中进行了三种相关的螺旋抗菌肽的分子动力学模拟。这些系统可以分别视为哺乳动物和细菌膜的模型界面。这项研究的目的是剖析肽成分的差异,这使突变型肽(novispirin-G10和novispirin-T7)的毒性比母体肽ovispirin(OVIS)低,尽管所有三种肽都具有高度的抗菌特性。与G10和T7相比,OVIS最深地插入DPC胶束中。这与G10和T7的毒性较小相关。有强有力的证据表明,疏水残基的协同结合驱动了OVIS与胶束的结合。在DPC的存在下,G10和T7的螺旋含量降低,这导致较少的两亲性肽结构,该结构与胶束的结合较弱。在SDS中进行了模拟,以比较膜静电对肽结构的影响。所有这三种肽都与SDS牢固结合,并保留螺旋形式。这与它们同样有效的抗菌性能非常吻合。基于模拟,我们认为二级结构的稳定性通常会导致毒性。我们还提出,G10和T7通过细胞裂解的地毯机制起作用。通过减少肽的螺旋含量可以减弱通过地毯机理起作用的肽的毒性。模拟成功捕获了实验结合状态,并且三种肽与两个胶束的不同结合深度与其抗菌和毒性特性相关。

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