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模拟设计用于跨膜电子转移的分子对细胞膜的干扰。

Modeling cell membrane perturbation by molecules designed for transmembrane electron transfer.

机构信息

Singapore Centre on Environmental Life Sciences Engineering (SCELSE), Nanyang Technological University , Singapore 637551.

出版信息

Langmuir. 2014 Mar 11;30(9):2429-40. doi: 10.1021/la403409t. Epub 2014 Feb 28.

Abstract

Certain conjugated oligoelectrolytes (COEs) modify biological function by improving charge transfer across biological membranes as demonstrated by their ability to boost performance in bioelectrochemical systems. Molecular level understanding of the nature of the COE/membrane interactions is lacking. Thus, we investigated cell membrane perturbation by three COEs differing in the number of aromatic rings and presence of a fluorine substitution. Molecular dynamic simulations showed that membrane deformation by all COEs resulted from membrane thinning as the lipid phosphate heads were drawn toward the center of the bilayer layer by positively charged COE side chains. The four-ringed COE, which most closely resembled the lipid bilayer in length, deformed the membrane the least and was least disruptive, as supported by toxicity testing (minimum inhibitory concentration (MIC) = 64 μmol L(-1)) and atomic force microscopy (AFM). Extensive membrane thinning was observed from three-ringed COEs, reducing membrane thickness to <3.0 nm in regions where the COEs were located. Severe localized membrane pitting was observed when the central aromatic ring was unfluorinated, as evident from AFM and simulations. Fluorinating the central aromatic ring delocalized thinning but induced greater membrane disorder, indicated by changes in deuterium order parameter of the acyl chains. The fluorinated three-ringed compound was less toxic (MIC 4 μmol L(-1)) than the nonfluorinated three-aromatic-ringed COE (MIC 2 μmol L(-1)); thus, hydrophobic polar interactions resulting from fluorine substitution of OPV COEs dissipate membrane perturbations. Correlating specific structural features with cell membrane perturbation is an important step toward designing non-antimicrobial membrane insertion molecules.

摘要

某些共轭寡聚电解质 (COE) 通过改善跨生物膜的电荷转移来改变生物功能,这一点已通过它们在生物电化学系统中提高性能的能力得到证明。缺乏对 COE/膜相互作用性质的分子水平理解。因此,我们研究了三种 COE 对细胞膜的扰动作用,这三种 COE 在芳香环的数量和氟取代的存在上有所不同。分子动力学模拟表明,所有 COE 都会导致细胞膜变形,这是由于带正电荷的 COE 侧链将脂质磷酸盐头拉向双层层的中心,从而导致膜变薄。四元环 COE 与脂质双层在长度上最相似,对膜的变形最小,破坏性也最小,这一点得到了毒性测试(最小抑制浓度 (MIC) = 64 μmol L(-1)) 和原子力显微镜 (AFM) 的支持。从三元环 COE 观察到广泛的膜变薄,导致 COE 所在区域的膜厚度减小至 <3.0nm。当中央芳环未氟化时,观察到严重的局部膜凹陷,这从 AFM 和模拟中显而易见。氟化中央芳环使变薄分散,但诱导更大的膜无序,这表现为酰基链的氘序参数发生变化。氟化的三元环化合物的毒性(MIC 4 μmol L(-1)) 低于非氟化的三元环 COE(MIC 2 μmol L(-1));因此,OPV COE 中氟取代导致的疏水性偶极相互作用会消散膜扰动。将特定结构特征与细胞膜扰动相关联是朝着设计非抗菌膜插入分子的重要一步。

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