Alfei Silvana, Piatti Gabriella, Caviglia Debora, Schito Anna Maria
Department of Pharmacy, University of Genoa, Viale Cembrano, 16148 Genoa, Italy.
Department of Surgical Sciences and Integrated Diagnostics (DISC), University of Genoa, Viale Benedetto XV, 6, 16132 Genova, Italy.
Polymers (Basel). 2021 Apr 2;13(7):1140. doi: 10.3390/polym13071140.
The growing resistance of bacteria to current chemotherapy is a global concern that urgently requires new and effective antimicrobial agents, aimed at curing untreatable infection, reducing unacceptable healthcare costs and human mortality. Cationic polymers, that mimic antimicrobial cationic peptides, represent promising broad-spectrum agents, being less susceptible to develop resistance than low molecular weight antibiotics. We, thus, designed, and herein report, the synthesis and physicochemical characterization of a water-soluble cationic copolymer (P5), obtained by copolymerizing the laboratory-made monomer 4-ammoniumbuthylstyrene hydrochloride with di-methyl-acrylamide as uncharged diluent. The antibacterial activity of P5 was assessed against several multi-drug-resistant clinical isolates of both Gram-positive and Gram-negative species. Except for strains characterized by modifications of the membrane charge, most of the tested isolates were sensible to the new molecule. P5 showed remarkable antibacterial activity against several isolates of genera , , , , and against , and , displaying a minimum MIC value of 3.15 µM. In time-killing and turbidimetric studies, P5 displayed a rapid non-lytic bactericidal activity. Due to its water-solubility and wide bactericidal spectrum, P5 could represent a promising novel agent capable of overcoming severe infections sustained by bacteria resistant the presently available antibiotics.
细菌对当前化疗药物的耐药性不断增强,这是一个全球关注的问题,迫切需要新的有效抗菌剂,以治愈无法治疗的感染、降低难以承受的医疗成本和人类死亡率。模仿抗菌阳离子肽的阳离子聚合物是有前景的广谱抗菌剂,与低分子量抗生素相比,其产生耐药性的可能性较小。因此,我们设计并在此报告了一种水溶性阳离子共聚物(P5)的合成及理化特性,该共聚物通过将实验室自制的单体4-氨基丁基苯乙烯盐酸盐与作为不带电荷稀释剂的二甲基丙烯酰胺共聚得到。评估了P5对几种革兰氏阳性和革兰氏阴性多药耐药临床分离株的抗菌活性。除了那些膜电荷发生改变的菌株外,大多数测试分离株对这种新分子敏感。P5对几种属、、、、的分离株以及对、和显示出显著的抗菌活性,最低MIC值为3.15µM。在时间杀灭和比浊法研究中,P5表现出快速的非溶菌性杀菌活性。由于其水溶性和广泛的杀菌谱,P5可能是一种有前景的新型药物,能够克服由对现有抗生素耐药的细菌引起的严重感染。