生物膜
蒸馏水
抗菌剂
超声波
化学
大肠杆菌
非热等离子体
微生物学
超声治疗
食品科学
细菌
等离子体
色谱法
医学
生物
生物化学
有机化学
量子力学
基因
物理
放射科
遗传学
作者
Clémentine M.G. Charoux,Apurva Patange,Laura M. Hinds,Jeremy C. Simpson,Colm P. O’Donnell,Brijesh K. Tiwari
标识
DOI:10.1038/s41598-020-74504-z
摘要
Bacterial biofilms are difficult to inactivate due to their high antimicrobial resistance. Therefore, new approaches are required for more effective bacterial biofilm inactivation. Airborne acoustic ultrasound improves bactericidal or bacteriostatic activity which is safe and environmentally friendly. While, plasma activated water (PAW) is attracting increasing attention due to its strong antimicrobial properties. This study determined efficacy of combined airborne acoustic ultrasound and plasma activated water from both cold and thermal plasma systems in inactivating Escherichia coli K12 biofilms. The application of airborne acoustic ultrasound (15 min) alone was significantly more effective in reducing E. coli counts in 48 and 72 h biofilms compared to 30 min treatment with PAW. The effect of airborne acoustic ultrasound was more pronounced when used in combination with PAW. Airborne acoustic ultrasound treatment for 15 min of the E. coli biofilm followed by treatment with PAW significantly reduced the bacterial count by 2.2-2.62 Log10 CFU/mL when compared to control biofilm treated with distilled water. This study demonstrates that the synergistic effects of airborne acoustic ultrasound and PAW for enhanced antimicrobial effects. These technologies have the potential to prevent and control biofilm formation in food and bio-medical applications.
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