纳米单宁酸铁涂层:增强乳酸乳球菌抗生素耐药性的有效处理方法

IF 3 3区 医学 Q2 PHARMACOLOGY & PHARMACY
Marwa M. Elmaghrabi , Naiyf S. Alharbi , Ahmed S. Alobaidi , Adel A. Abdulmanea , Shine Kadaikunnan , Asmaa A. Ramadan , Jamal M. Khaled
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引用次数: 0

摘要

鉴于益生菌对人类健康的重大贡献,本研究旨在探索一种新方法,在优化条件下收集和培养益生菌后合成纳米涂层益生菌。益生菌通过调节胃肠道微生物群和促进消化来维持免疫健康。然而,它们所维持的平衡可能会受到抗生素治疗的不利影响。考虑到潜在的影响,研究益生菌对抗生素的脆弱性至关重要。这项研究旨在评估纳米粒子涂层是否能增强益生菌对抗生素影响的抵抗力。利用最先进的方法,包括 VITEK® 2 紧凑型系统、VITEK® MS 和 16S rRNA 基因测序,对一株乳球菌(L. lactis)进行了分离、培养和全面鉴定。使用六水氯化铁(III)和单宁酸进行了纳米颗粒涂层,然后评估了益生菌对一系列抗生素的耐药性。扫描电子显微镜(SEM)和原子力显微镜(AFM)的分析表明,益生菌有部分纳米颗粒涂层,紫外/可见光谱的研究结果进一步证实了这一点,表明益生菌对标准抗生素的耐药性增强。研究结果表明,这种菌株具有独特的蛋白质特征,在基因上与其他国家发现的菌株相似。此外,纳米封装技术显著增强了该菌株对一系列标准抗生素的耐药性,包括苄青霉素、替考拉宁、氧西林、万古霉素、四环素、利福平、红霉素和克林霉素。这些研究结果表明,纳米颗粒包裹的益生菌可有效抵消长期抗生素治疗的不利影响,从而保持其活力并对胃肠道健康产生有益影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Iron-tannic acid nano-coating: A promising treatment approach for enhancing Lactococcus lactis antibiotic resistance

The objective of this study was to explore a novel methodology for the synthesis of nanocoated probiotics following their collection and cultivation under optimized conditions, in light of their significant contribution to human health. Probiotics are instrumental in sustaining immune health by modulating the gastrointestinal microbiota and facilitating digestion. However, the equilibrium they maintain can be adversely affected by antibiotic treatments. It is critical to investigate the vulnerability of probiotics to antibiotics, considering the potential implications. This research aimed to assess whether nanoparticle coating could augment the probiotics' resistance to antibiotic influence. A strain of Lactococcus lactis (L. lactis) was isolated, cultured, and comprehensively characterized utilizing state-of-the-art methodologies, including the VITEK® 2 compact system, VITEK® MS, and 16S rRNA gene sequencing. The nanoparticle coating was performed using iron (III) chloride hexahydrate and tannic acid, followed by an evaluation of the probiotics' resistance to a range of antibiotics. The analysis through scanning electron microscopy (SEM) and atomic force microscopy (AFM) demonstrated a partial nanoparticle coating of the probiotics, which was further supported by UV/Vis spectroscopy findings, suggesting enhanced resistance to standard antibiotics. The results revealed that this strain possesses a unique protein profile and is genetically similar to strains identified in various other countries. Moreover, nano-encapsulation notably increased the strain's resistance to a spectrum of standard antibiotics, including Benzylpenicillin, Teicoplanin, Oxacillin, Vancomycin, Tetracycline, Rifampicin, Erythromycin, and Clindamycin. These findings imply that nanoparticle-coated probiotics may effectively counteract the detrimental effects of extended antibiotic therapy, thus preserving their viability and beneficial influence on gastrointestinal health.

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来源期刊
Saudi Pharmaceutical Journal
Saudi Pharmaceutical Journal PHARMACOLOGY & PHARMACY-
CiteScore
6.10
自引率
2.40%
发文量
194
审稿时长
67 days
期刊介绍: The Saudi Pharmaceutical Journal (SPJ) is the official journal of the Saudi Pharmaceutical Society (SPS) publishing high quality clinically oriented submissions which encompass the various disciplines of pharmaceutical sciences and related subjects. SPJ publishes 8 issues per year by the Saudi Pharmaceutical Society, with the cooperation of the College of Pharmacy, King Saud University.
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