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pH-Dependent Mode of Antibacterial Actions of Low Molecular Weight Water-Soluble Chitosan (LMWSC) against Various Pathogens

机译:低分子量水溶性壳聚糖(LMWSC)对各种病原体的抗菌作用的pH依赖模式。

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摘要

This study examined the antibacterial mode of action of low molecular weight water-soluble chitosan (LMWSC; MW1, MW3, MW5 and MW10) using a combination of approaches, including antibacterial assays, culture in media with different pH values, bactericidal kinetics, cellular leakage measurements, depolarization, and electron microscopy, as well as an in vivo study utilizing a wound infection and wound healing model. The antibacterial activity of LMWSC was related inversely to pH, with higher activities being observed at lower pH values. In addition, evaluation of the effect of bactericidal concentrations of LMWSC on the morphology of Bacillus megate-rium and Escherichia coli O-157 revealed that it induces filamentation. Furthermore, the degree of depolarization (in Escherichia coli, pH 7.4) and calcein leakage (lipid composition; L-α-phosphatidylethanolamine (PE)/L-α-phos-phatidyl-DL-glycerol (PG)=7/3 (w/w), pH 5.4 and 7.4) were evaluated. Moreover, cells cultured at various pHs were evaluated by confocal microscopy (pH 5.4 and 7.4). These results showed that treatment with LMWSC with different molecular weights had different effects on bacteria. In particular, LMWSC (MW10) cause more visible damage to the bacterial cell membrane than lower molecular weight LMWSC, which is due most likely to the penetration of cells by the lower weight molecules. Interestingly, MW5 was found to attack the membrane and penetrate the cells. In addition, scanning electron microscopy showed that MW10 caused significant morphological changes to the surface of the bacteria. Finally, an in vivo study utilizing a wound infection or healing model showed that LMWSC had the potential for use as a lead compound for the development of a novel anti-infective or healing compound.
机译:这项研究使用多种方法研究了低分子量水溶性壳聚糖(LMWSC; MW1,MW3,MW5和MW10)的抗菌作用方式,包括抗菌测定,在不同pH值的培养基中培养,杀菌动力学,细胞渗漏。测量,去极化和电子显微镜,以及利用伤口感染和伤口愈合模型的体内研究。 LMWSC的抗菌活性与pH成反比,在较低的pH值下观察到较高的活性。另外,对LMWSC的杀菌浓度对中型芽孢杆菌和大肠杆菌O-157的形态的影响的评估显示,其诱导丝状化。此外,去极化度(在大肠杆菌中,pH 7.4)和钙黄绿素泄漏(脂质组成;L-α-磷脂酰乙醇胺(PE)/L-α-磷-磷脂酰-DL-甘油(PG)= 7/3(w / w),pH 5.4和7.4)。此外,通过共聚焦显微镜(pH 5.4和7.4)评估在各种pH下培养的细胞。这些结果表明,用不同分子量的LMWSC处理对细菌具有不同的作用。特别是,LMWSC(MW10)比低分子量的LMWSC对细菌细胞膜的伤害更大,这最可能是由于低分子量的分子穿透了细胞。有趣的是,发现MW5攻击膜并穿透细胞。另外,扫描电子显微镜显示MW10引起细菌表面的明显形态变化。最后,利用伤口感染或愈合模型的体内研究表明,LMWSC有潜力用作开发新型抗感染或愈合化合物的先导化合物。

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