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Polysaccharide-capped silver Nanoparticles inhibit biofilm formation and eliminate multi-drug-resistant bacteria by disrupting bacterial cytoskeleton with reduced cytotoxicity towards mammalian cells

机译:多糖封端的银纳米颗粒可通过破坏细菌细胞骨架并降低对哺乳动物细胞的细胞毒性来抑制生物膜形成并消除具有多重耐药性的细菌

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摘要

Development of effective anti-microbial therapeutics has been hindered by the emergence of bacterial strains with multi-drug resistance and biofilm formation capabilities. In this article, we report an efficient green synthesis of silver nanoparticle (AgNP) by in situ reduction and capping with a semi-synthetic polysaccharide-based biopolymer (carboxymethyl tamarind polysaccharide). The CMT-capped AgNPs were characterized by UV, DLS, FE-SEM, EDX and HR-TEM. These AgNPs have average particle size of ~20–40 nm, and show long time stability, indicated by their unchanged SPR and Zeta-potential values. These AgNPs inhibit growth and biofilm formation of both Gram positive (B. subtilis) and Gram negative (E. coli and Salmonella typhimurium) bacterial strains even at concentrations much lower than the minimum inhibitory concentration (MIC) breakpoints of antibiotics, but show reduced or no cytotoxicity against mammalian cells. These AgNPs alter expression and positioning of bacterial cytoskeletal proteins FtsZ and FtsA. CMT-capped AgNPs can effectively block growth of several clinical isolates and MDR strains representing different genera and resistant towards multiple antibiotics belonging to different classes. We propose that the CMT-capped AgNPs can have potential bio-medical application against multi-drug-resistant microbes with minimal cytotoxicity towards mammalian cells.
机译:具有多药耐药性和生物膜形成能力的细菌菌株的出现阻碍了有效抗微生物治疗剂的开发。在本文中,我们报告了通过原位还原并用半合成多糖基生物聚合物(羧甲基罗望子多糖)加帽,有效地绿色合成银纳米粒子(AgNP)的方法。 CMT封端的AgNPs通过UV,DLS,FE-SEM,EDX和HR-TEM表征。这些AgNPs的平均粒径约为20-40nm,并具有长期稳定性,这由它们的SPR和Zeta电位值保持不变表示。这些AgNPs抑制革兰氏阳性(枯草芽孢杆菌)和革兰氏阴性(大肠杆菌和鼠伤寒沙门氏菌)细菌菌株的生长和生物膜形成,即使浓度远低于抗生素的最低抑制浓度(MIC)断裂点,但表现出降低或降低的趋势。对哺乳动物细胞无细胞毒性。这些AgNPs改变细菌细胞骨架蛋白FtsZ和FtsA的表达和定位。 CMT封端的AgNP可以有效地阻止代表不同属的多种临床分离株和MDR菌株的生长,并且对属于不同类别的多种抗生素具有抗性。我们建议,CMT封端的AgNPs具有潜在的生物医学应用,对具有多种耐药性的微生物具有最小的对哺乳动物细胞的细胞毒性。

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