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Binding Folding and Insertion of a β-Hairpin Peptide at a Lipid Bi layer Surface: Influence of Electrostatics and Lipid Tail Packing

机译:β-发夹肽在脂质双分子层表面的结合折叠和插入:静电和脂质尾部堆积的影响

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摘要

Antimicrobial peptides (AMPs) act as host defenses against microbial pathogens. Here we investigate the interactions of SVS-1 (KVKVKVKVDPLPTKVKVKVK), an engineered AMP and anti-cancer β-hairpin peptide, with lipid bilayers using spectroscopic studies and atomistic molecular dynamics simulations. In agreement with literature reports, simulation and experiment show preferential binding of SVS-1 peptides to anionic over neutral bilayers. Fluorescence and circular dichroism studies of a Trp-substituted SVS-1 analog indicate, however, that it will bind to a zwitterionic DPPC bilayer under high-curvature conditions and folds into a hairpin. In bilayers formed from a 1:1 mixture of DPPC and anionic DPPG lipids, curvature and lipid fluidity are also observed to promote deeper insertion of the fluorescent peptide. Simulations using the CHARMM C36m force field offer complementary insight into timescales and mechanisms of folding and insertion. SVS-1 simulated at an anionic mixed POPC/POPG bilayer folded into a hairpin over a microsecond, the final stage in folding coinciding with the establishment of contact between the peptide’s valine sidechains and the lipid tails through a “flip and dip” mechanism. Partial, transient folding and superficial bilayer contact are seen in simulation of the peptide at a zwitterionic POPC bilayer. Only when external surface tension is applied does the peptide establish lasting contact with the POPC bilayer. Our findings reveal the influence of disruption to lipid headgroup packing (via curvature or surface tension) on the pathway of binding and insertion, highlighting the collaborative effort of electrostatic and hydrophobic interactions on interaction of SVS-1 with lipid bilayers.
机译:抗菌肽(AMPs)可以抵抗微生物病原体。在这里,我们利用光谱学研究和方法研究了工程化的AMP和抗癌β-发夹肽SVS-1(KVKVKVKV D P L PTKVKVKVK)与脂质双层的相互作用。原子分子动力学模拟。与文献报道一致,模拟和实验表明,SVS-1肽与阴离子的结合优先于中性双层。然而,Trp取代的SVS-1类似物的荧光和圆二色性研究表明,它将在高曲率条件下结合两性离子DPPC双层并折叠成发夹。在由DPPC和阴离子DPPG脂质的1:1混合物形成的双层中,还观察到曲率和脂质流动性促进了荧光肽的更深插入。使用CHARMM C36m力场进行的仿真提供了对时标以及折叠和插入机制的补充见解。 SVS-1是在阴离子混合的POPC / POPG双层薄膜上模拟的,经过一微秒折叠成发夹状,折叠的最后阶段与通过“翻转和浸入”机制在肽的缬氨酸侧链和脂质尾巴之间建立接触相吻合。在两性离子POPC双层的肽模拟中可以看到部分,瞬时折叠和表面双层接触。仅当施加外表面张力时,肽才与POPC双层建立持久接触。我们的发现揭示了对脂质头基堆积的破坏(通过曲率或表面张力)对结合和插入途径的影响,突出了静电和疏水相互作用对SVS-1与脂质双层相互作用的协同作用。

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