研究活性空气离子和羟基自由基在非平衡大气冷等离子体清除ESKAPE细菌中的作用

IF 4.6 Q1 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Ramavtar Jangra;Kiran Ahlawat;Ram Prakash
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引用次数: 0

摘要

耐多药细菌在临床环境中越来越普遍,并对全球各地的医院构成越来越大的威胁。考虑到ESKAPE细菌(即粪肠球菌、金黄色葡萄球菌、肺炎克雷伯菌、鲍曼不动杆菌、铜绿假单胞菌和肠杆菌)普遍存在的抗生素耐药性,ESKAPE细菌正成为对公共卫生的严重威胁,并且经常是医院感染的原因。本研究采用内部开发的非平衡大气冷等离子体(NE-AACP)源在封闭环境中根除ESKAPE细菌。e - aacp源的抗菌性能来自于产生的空气负离子和正离子(300 - $1.5\times 10{^{{5}}}$离子/cc范围内)和现场产生的羟基自由基(15 - $75~\mu $ M范围内),这些准静态平衡电荷破坏细菌的细胞结构和代谢过程。对NE-AACP源产生的臭氧浓度也进行了测量,发现为0.13 ppm,这对于杀菌应用来说是非常低的。羟基自由基的现场生成是由于等离子体产生的高能电子(3-5 eV)和在NE-AACP源的一个电极上涂覆${\mathrm { TiO}}_{2}$纳米颗粒催化剂。治疗60分钟内,99.9以上% ESKAPE bacterial inactivation has been achieved in an enclosed environment of $\sim ~28.3$ m3. This work elucidates the mechanism of cold plasma-induced bacterial inactivation and highlights its potential as a viable strategy against infections that are resistant to antibiotics. These findings have implications for infection control in healthcare facilities and other settings where ESKAPE bacteria provide a health concern to the general public.
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigating the Role of Active Air Ions and Hydroxyl Radicals on the Eradication of ESKAPE Bacteria Using Non-Equilibrium Atmospheric Air Cold Plasma
Multidrug-resistant bacteria are becoming more common in clinical settings and are posing an increasing threat to hospitals across the globe. Considering their prevalent antibiotic resistance, the ESKAPE bacteria (i.e., Enterococcus faecium, Staphylococcus aureus, Klebsiella pneumoniae, Acinetobacter baumannii, Pseudomonas aeruginosa, and Enterobacter species) are becoming a serious threat to public health and are the often cause of nosocomial infections. This study uses an in-house-developed non-equilibrium atmospheric air cold plasma (NE-AACP) source to eradicate ESKAPE bacteria in an enclosed environment. The antimicrobial properties of NE-AACP source arise from the generation of negative and positive air ions (in the range of 300– $1.5\times 10{^{{5}}}$ ions/cc) and on-site generated hydroxyl radicals (in the range of 15– $75~\mu $ M). These quasi-static equilibrium charges disrupt bacterial cell structures and metabolic processes. The ozone concentration generated from the NE-AACP source has also been measured and found to be 0.13 ppm, which is very low for bactericidal applications. The on-site generation of hydroxyl radicals is due to the plasma-produced highly energetic electrons (3–5 eV) and coating of ${\mathrm { TiO}}_{2}$ nanoparticle catalysts onto one of the electrodes of the NE-AACP source. In 60 min of treatment, more than 99.9% ESKAPE bacterial inactivation has been achieved in an enclosed environment of $\sim ~28.3$ m3. This work elucidates the mechanism of cold plasma-induced bacterial inactivation and highlights its potential as a viable strategy against infections that are resistant to antibiotics. These findings have implications for infection control in healthcare facilities and other settings where ESKAPE bacteria provide a health concern to the general public.
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来源期刊
IEEE Transactions on Radiation and Plasma Medical Sciences
IEEE Transactions on Radiation and Plasma Medical Sciences RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
8.00
自引率
18.20%
发文量
109
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