Atapattu Gouri Nilakshika, Giltrap Michelle, Tian Furong
School of Food Science & Environmental Health, City Campus, Technological University Dublin, Grangegorman, D07 ADY7 Dublin, Ireland.
Sustainability & Health Research Hub, Technological University Dublin, Grangegorman, D07 ADY7 Dublin, Ireland.
Microorganisms. 2025 May 22;13(6):1176. doi: 10.3390/microorganisms13061176.
The interactions between magnetic nanoparticles (MNP) and bio-surfaces have impacted key industries such as food, biomedicine, water purification, and agriculture. Bacteria, with their diverse bio-surfaces, offer potential for such interactions. Yet, there is a paucity of research interpreting the dynamics behind bacteria-nanoparticle interactions. Advancing this knowledge could improve the industrial applications. Current research gaps include information about the magnetic nanoparticle-assisted concentration dependence of and determination of the rate of bacterial extraction by MNPs such as iron oxide nanoparticles (IONPs). Using magnetic IONPs as the choice of MNP, this study aimed to investigate in vitro the interactions between model bacteria and IONPs, leveraging the bacterial magnetising property. IONPs were synthesised by co-precipitation and characterised. Magnetic capture efficiency was reported for four model bacteria (, , , and ). The effect of particle concentration on the viability of and the rate of magnetic extraction of were evaluated. had the most robust interaction with IONP (90.34%). While the magnetic extraction was time-dependent, the average rate of magnetic extraction for was calculated as 3.617 CFU mL/min. Growth inhibition at 1.0, 2.0, and 4.0 mg mL of IONP was significant. Magnetic capture results indicated that members of the Bacillus genus screened for plant growth-promoting traits may be suitable to combine with IONPs for future land application.
磁性纳米颗粒(MNP)与生物表面之间的相互作用已对食品、生物医学、水净化和农业等关键行业产生了影响。细菌具有多样的生物表面,为这种相互作用提供了潜力。然而,目前缺乏对细菌与纳米颗粒相互作用背后动力学的研究。增进这方面的知识可能会改善工业应用。当前的研究空白包括有关磁性纳米颗粒辅助浓度依赖性以及氧化铁纳米颗粒(IONP)等磁性纳米颗粒对细菌提取速率的测定等信息。本研究选用磁性IONP作为MNP,旨在利用细菌的磁化特性,在体外研究模式细菌与IONP之间的相互作用。通过共沉淀法合成并表征了IONP。报告了四种模式细菌([此处原文缺失具体细菌名称]、[此处原文缺失具体细菌名称]、[此处原文缺失具体细菌名称]和[此处原文缺失具体细菌名称])的磁捕获效率。评估了颗粒浓度对[此处原文缺失具体细菌名称]活力的影响以及对[此处原文缺失具体细菌名称]的磁提取速率。[此处原文缺失具体细菌名称]与IONP的相互作用最强(90.34%)。虽然磁提取具有时间依赖性,但[此处原文缺失具体细菌名称]的平均磁提取速率计算为3.617 CFU/mL/分钟。在IONP浓度为1.0、2.0和4.0 mg/mL时,生长抑制作用显著。磁捕获结果表明,筛选出具有促进植物生长特性的芽孢杆菌属成员可能适合与IONP结合用于未来的土地应用。