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首页> 外文期刊>Journal of Molecular Biology >Dual mechanism of bacterial lethality for a cationic sequence-random copolymer that mimics host-defense antimicrobial peptides.
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Dual mechanism of bacterial lethality for a cationic sequence-random copolymer that mimics host-defense antimicrobial peptides.

机译:模仿宿主防御抗菌肽的阳离子序列-随机共聚物的细菌杀伤力的双重机制。

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Flexible sequence-random polymers containing cationic and lipophilic subunits that act as functional mimics of host-defense peptides have recently been reported. We used bacteria and lipid vesicles to study one such polymer, having an average length of 21 residues, that is active against both Gram-positive and Gram-negative bacteria. At low concentrations, this polymer is able to permeabilize model anionic membranes that mimic the lipid composition of Escherichia coli, Staphylococcus aureus, or Bacillus subtilis but is ineffective against model zwitterionic membranes, which explains its low hemolytic activity. The polymer is capable of binding to negatively charged vesicles, inducing segregation of anionic lipids. The appearance of anionic lipid-rich domains results in formation of phase-boundary defects through which leakage can occur. We had earlier proposed such a mechanism of membrane disruption for another antimicrobial agent. Experiments with the mutant E. coli ML-35p indicate that permeabilization is biphasic: at low concentrations, the polymer permeabilizes the outer and inner membranes; at higher polymer concentrations, permeabilization of the outer membrane is progressively diminished, while the inner membrane remains unaffected. Experiments with wild-type E. coli K12 show that the polymer blocks passage of solutes into the intermembrane space at high concentrations. Cell membrane integrity in E. coli K12 and S. aureus exhibits biphasic dependence on polymer concentration. Isothermal titration calorimetry indicates that the polymer associates with the negatively charged lipopolysaccharide of Gram-negative bacteria and with the lipoteichoic acid of Gram-positive bacteria. We propose that this polymer has two mechanisms of antibacterial action, one predominating at low concentrations of polymer and the other predominating at high concentrations.
机译:最近已经报道了包含阳离子和亲脂性亚基的柔性序列随机聚合物,其充当宿主防御肽的功能模拟物。我们使用细菌和脂质囊泡研究了一种这样的聚合物,其平均长度为21个残基,对革兰氏阳性细菌和革兰氏阴性细菌均具有活性。在低浓度下,这种聚合物能够渗透模拟大肠杆菌,金黄色葡萄球菌或枯草芽孢杆菌的脂质组成的模型阴离子膜,但对模型两性离子膜无效,这说明其溶血活性低。聚合物能够结合带负电荷的囊泡,诱导阴离子脂质的分离。富含阴离子脂质的结构域的出现导致相边界缺陷的形成,通过该相边界缺陷可以发生泄漏。我们较早提出了另一种抗微生物剂的这种膜破坏机理。用突变大肠杆菌ML-35p进行的实验表明,透化作用是两相的:在低浓度下,聚合物透化外膜和内膜。在较高的聚合物浓度下,外膜的通透性逐渐降低,而内膜保持不受影响。用野生型大肠杆菌K12进行的实验表明,该聚合物在高浓度下会阻止溶质进入膜间空间。大肠杆菌K12和金黄色葡萄球菌的细胞膜完整性表现出对聚合物浓度的双相依赖性。等温滴定热法表明该聚合物与革兰氏阴性细菌的带负电荷的脂多糖和革兰氏阳性细菌的脂磷壁酸缔合。我们提出该聚合物具有两种抗菌作用机理,一种在低浓度的聚合物中占主导,而另一种在高浓度时占主导。

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