首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Adsorption of Synthetic Cationic Polymers on Model Phospholipid Membranes: Insight from Atomic-Scale Molecular Dynamics Simulations
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Adsorption of Synthetic Cationic Polymers on Model Phospholipid Membranes: Insight from Atomic-Scale Molecular Dynamics Simulations

机译:模型磷脂膜上合成阳离子聚合物的吸附:原子尺度分子动力学模拟的见解。

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Although synthetic cationic polymers represent a promising class of effective antibacterial agents, the molecular mechanisms behind their antimicrobial activity remain poorly understood. To this end, we employ atomic-scale molecular dynamics simulations to explore adsorption of several linear cationic polymers of different chemical structure and protonation (polyallylamine (PAA), polyethylenimine (PEI), polyvinylamine (PVA), and poly-l-lysine (PLL)) on model bacterial membranes (4:1 mixture of zwitterionic phosphatidylethanolamine (PE) and anionic phosphatidylglycerol (PG) lipids). Overall, our findings show that binding of polycations to the anionic membrane surface effectively neutralizes its charge, leading to the reorientation of water molecules close to the lipid/water interface and to the partial release of counterions to the water phase. In certain cases, one has even an overcharging of the membrane, which was shown to be a cooperative effect of polymer charges and lipid counterions. Protonated amine groups of polycations are found to interact preferably with head groups of anionic lipids, giving rise to formation of hydrogen bonds and to a noticeable lateral immobilization of the lipids. While all the above findings are mostly defined by the overall charge of a polymer, we found that the polymer architecture also matters. In particular, PVA and PEI are able to accumulate anionic PG lipids on the membrane surface, leading to lipid segregation. In turn, PLL whose charge twice exceeds charges of PVA/PEI does not induce such lipid segregation due to its considerably less compact architecture and relatively long side chains. We also show that partitioning of a polycation into the lipid/water interface is an interplay between its protonation level (the overall charge) and hydrophobicity of the backbone. Therefore, a possible strategy in creating highly efficient antimicrobial polymeric agents could be in tuning these polycations properties through proper combination of protonated and hydrophobic blocks.
机译:尽管合成阳离子聚合物代表了有前途的一类有效的抗菌剂,但其抗菌活性背后的分子机理仍知之甚少。为此,我们采用原子尺度的分子动力学模拟来探索几种不同化学结构和质子化的线性阳离子聚合物(聚烯丙胺(PAA),聚乙烯亚胺(PEI),聚乙烯胺(PVA)和聚-1-赖氨酸(PLL)的吸附))在模型细菌膜上(两性离子磷脂酰乙醇胺(PE)和阴离子磷脂酰甘油(PG)脂质的4:1混合物)。总体而言,我们的发现表明,聚阳离子与阴离子膜表面的结合有效地中和了其电荷,从而导致水分子在脂质/水界面附近重新取向,并使抗衡离子部分释放至水相。在某些情况下,甚至会使膜过度充电,这被证明是聚合物电荷和脂质抗衡离子的协同作用。发现聚阳离子的质子化胺基团优选与阴离子脂质的头基相互作用,从而导致氢键的形成和脂质的侧向固定化。尽管以上所有发现主要由聚合物的总电荷定义,但我们发现聚合物的结构也很重要。特别地,PVA和PEI能够在膜表面上积聚阴离子PG脂质,导致脂质分离。反过来,电荷比PVA / PEI电荷高出两倍的PLL却不会引起这种脂质的分离,因为它的结构紧凑得多,侧链相对较长。我们还表明,将聚阳离子分配到脂质/水界面是其质子化水平(总电荷)和骨架疏水性之间的相互作用。因此,产生高效抗微生物聚合物的可能策略可能是通过适当结合质子化和疏水性嵌段来调节这些聚阳离子的性能。

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