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首页> 外文期刊>LWT-Food Science & Technology >Antimicrobial and antibiofilm potential of bacteriocin loaded nano-vesicles functionalized with rhamnolipids against foodborne pathogens
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Antimicrobial and antibiofilm potential of bacteriocin loaded nano-vesicles functionalized with rhamnolipids against foodborne pathogens

机译:抗菌素和抗菌菌的抗菌剂和抗菌剂纳米囊泡官能团,其用鼠霉素对食物载体的病原体官能化

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Synthetic lipid membranes are considered as promising food-grade nano vesicles (NVs), but their functionalization is required to empower them as active-nano vesicle systems. In this study, rharnnosomes (RS) were developed by engineering the membrane of nano-liposomes with antimicrobial surfactant i.e. rhamnolipids (RL). Intrinsically active rhamnosome nano-vesicles (RSNVs) were loaded with bacteriocin (nisin Z) to acquire broad-spectrum antimicrobial activity. Addition of rhamnolipids into the lipid bilayer exhibited an increase in the encapsulation efficiency of nisin from 47 +/- 4% to 88 +/- 7%. Scanning electron microscope (SEM) and Zetasizer revealed that the surface functionalization with RL increased the size of vesicles from 145 +/- 2 nm to 209 +/- 4 nm. Whereas, the zeta potential of nisin-loaded RSNVs was - 20 +/- 0.25 mV as compared to - 3.47 +/- 0.13 mV for loaded nano-liposomes, indicating higher physical stability of RSNVs. RSNVs not only demonstrated higher antimicrobial activity than liposomes but also enhanced the activity of nisin against Grampositive and Gram-negative resistant foodbome pathogens including L. monocytogenes, S. aureus, E. colt and P. aeruginosa. Almost 80% reduction in biofilm biomass was observed when treated with nisin-loaded RSNVs due to its improved binding with bacterial surface. Thus, surface-active nanoliposomes (intrinsically active) with higher stability can provide an innovative strategy to control the biofilm-forming food associated pathogens.
机译:合成脂质膜被认为是有前途的食物级纳米囊泡(NVS),但它们的官能化是赋予它们作为活性纳米囊泡系统的官能化。在本研究中,通过用抗微生物表面活性剂的纳米脂质体的膜来开发Rharnnosomes(RS)。rhamnolipids(R1)。固有活性鼻窦纳米囊泡(RSNV)被含有菌(Nisin Z)加载以获得广谱抗微生物活性。向脂质双层中加入菌落醇的添加表现出Nisin的包封效率从47 +/- 4%升高到88 +/- 7%。扫描电子显微镜(SEM)和Zetasizer揭示了R1的表面官能化从145 +/- 2nm至209 +/- 4nm增加囊泡的尺寸。鉴于加载纳米脂质体的3.47 +/- 0.13mV相比,乳突上负载的RSNV的Zeta电位为-20 +/- 0.25mV,表明RSNV的物理稳定性较高。 RSNV不仅表现出比脂质体更高的抗微生物活性,而且还增强了NISIN抵抗磨削抗磨削和革兰氏阴性抗性食物组群的活性,包括L.单核细胞元,金黄色葡萄球菌,E.COLT和P. Aeruginosa。当由于其改进的与细菌表面的结合而用Nisin负载的RSNV处理,观察到生物膜生物质的几乎80%。因此,具有较高稳定性的表面活性纳米脂质体(本质上活性)可以提供一种控制生物膜形成食物相关病原体的创新策略。

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