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Cationic Spacer Arm Design Strategy for Control of Antimicrobial Activity and Conformation of Amphiphilic Methacrylate Random Copolymers

机译:用于控制两亲性甲基丙烯酸甲酯无规共聚物的抗菌活性和构象的阳离子间隔臂设计策略

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Antimicrobial and hemolytic activities of amphiphilic random copolymers were modulated by the structure of the cationic side chain spacer arms, including 2-aminoethylene, 4-aminobutylene, and 6-aminohexylene groups. Cationic amphiphilic random copolymers with ethyl methacrylate (EMA) comonomer were prepared with a range of comonomer fractions, and the library of copolymers was screened for antimicrobial and hemolytic activities. Copolymers with 4-aminobutylene cationic side chains showed an order of magnitude enhancement in their antimicrobial activity relative to those with 2-aminoethylene spacer arms, without causing adverse hemolysis. When the spacer arms were further elongated to hexylene, the copolymers displayed potent antimicrobial and hemolytic activities. The 4-aminobutylene side chain appears to be the optimal spacer arm length for maximal antimicrobial potency and minimal hemolysis, when combined with hydrophobic ethylmethacrylate in a roughly 70/30 ratio. The copolymers displayed relatively rapid bactericidal kinetics and broad-spectrum activity against a panel of Gram-positive and Gram-negative bacteria. The effect of the spacer arms on the polymer conformation in the membrane-bound state was investigated by molecular dynamics simulations. The polymer backbones adopt an extended chain conformation, parallel to the membrane surface. A facially amphiphilic conformation at the membrane surface was observed, with the primary ammonium groups localized at the lipid phoshoph3te region and the nonpolar side chains of EMA comonomers buried in the hydrophobic membrane environment. This study demonstrates that the antimicrobial activity and molecular conformation of amphiphilic methacrylate random copolymers can be modulated by adjustment of cationic side chain spacer arms.
机译:两性无规共聚物的抗菌和溶血活性受阳离子侧链间隔臂结构的调节,包括2-氨基亚乙基,4-氨基丁烯和6-氨基己烯基。制备了具有一系列共聚单体馏分的具有甲基丙烯酸乙酯(EMA)共聚单体的阳离子两亲无规共聚物,并对共聚物库进行了抗微生物和溶血活性的筛选。与具有2-氨基乙烯间隔臂的那些相比,具有4-氨基丁烯阳离子侧链的共聚物的抗微生物活性显示出一个数量级的增强,而不会引起不利的溶血作用。当间隔臂进一步延长为己二烯时,共聚物显示出强大的抗菌和溶血活性。当与疏水性甲基丙烯酸乙酯以大约70/30的比例结合使用时,对于最大的抗菌效力和最小的溶血作用,4-氨基丁烯侧链似乎是最佳的间隔臂长度。该共聚物对一组革兰氏阳性和革兰氏阴性细菌显示出较快的杀菌动力学和广谱活性。通过分子动力学模拟研究了间隔臂在膜结合状态下对聚合物构象的影响。聚合物主链采用平行于膜表面的延伸链构象。观察到膜表面有两亲性构象,伯铵基团位于脂质磷酸化区域,而EMA共聚单体的非极性侧链则埋在疏水膜环境中。这项研究表明,可以通过调节阳离子侧链间隔臂来调节两亲性甲基丙烯酸酯无规共聚物的抗菌活性和分子构象。

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