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Parameters Affecting the Antimicrobial Properties of Cold Atmospheric Plasma Jet

Using the Taguchi method to narrow experimental parameters, the antimicrobial efficiency of a cold atmospheric plasma jet (CAPJ) treatment was investigated. An L9 array with four parameters of CAPJ treatments, including the application voltage, CAPJ-sample distance, argon (Ar) gas flow rate, and CAP...

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Autores principales: Lou, Bih-Show, Lai, Chih-Ho, Chu, Teng-Ping, Hsieh, Jang-Hsing, Chen, Chun-Ming, Su, Yu-Ming, Hou, Chun-Wei, Chou, Pang-Yun, Lee, Jyh-Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6912271/
https://www.ncbi.nlm.nih.gov/pubmed/31717600
http://dx.doi.org/10.3390/jcm8111930
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author Lou, Bih-Show
Lai, Chih-Ho
Chu, Teng-Ping
Hsieh, Jang-Hsing
Chen, Chun-Ming
Su, Yu-Ming
Hou, Chun-Wei
Chou, Pang-Yun
Lee, Jyh-Wei
author_facet Lou, Bih-Show
Lai, Chih-Ho
Chu, Teng-Ping
Hsieh, Jang-Hsing
Chen, Chun-Ming
Su, Yu-Ming
Hou, Chun-Wei
Chou, Pang-Yun
Lee, Jyh-Wei
author_sort Lou, Bih-Show
collection PubMed
description Using the Taguchi method to narrow experimental parameters, the antimicrobial efficiency of a cold atmospheric plasma jet (CAPJ) treatment was investigated. An L9 array with four parameters of CAPJ treatments, including the application voltage, CAPJ-sample distance, argon (Ar) gas flow rate, and CAPJ treatment time, were applied to examine the antimicrobial activity against Escherichia coli (E. coli). CAPJ treatment time was found to be the most influential parameter in its antimicrobial ability by evaluation of signal to noise ratios and analysis of variance. 100% bactericidal activity was achieved under the optimal bactericidal activity parameters including the application voltage of 8.5 kV, CAPJ-sample distance of 10 mm, Ar gas flow rate of 500 sccm, and CAPJ treatment time of 300 s, which confirms the efficacy of the Taguchi method in this design. In terms of the mechanism of CAPJ’s antimicrobial ability, the intensity of hydroxyl radical produced by CAPJ positively correlated to its antimicrobial efficiency. The CAPJ antimicrobial efficiency was further evaluated by both DNA double-strand breaks analysis and scanning electron microscopy examination of CAPJ treated bacteria. CAPJ destroyed the cell wall of E. coli and further damaged its DNA structure, thus leading to successful killing of bacteria. This study suggests that optimal conditions of CPAJ can provide effective antimicrobial activity and may be grounds for a novel approach for eradicating bacterial infections.
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spelling pubmed-69122712020-01-02 Parameters Affecting the Antimicrobial Properties of Cold Atmospheric Plasma Jet Lou, Bih-Show Lai, Chih-Ho Chu, Teng-Ping Hsieh, Jang-Hsing Chen, Chun-Ming Su, Yu-Ming Hou, Chun-Wei Chou, Pang-Yun Lee, Jyh-Wei J Clin Med Article Using the Taguchi method to narrow experimental parameters, the antimicrobial efficiency of a cold atmospheric plasma jet (CAPJ) treatment was investigated. An L9 array with four parameters of CAPJ treatments, including the application voltage, CAPJ-sample distance, argon (Ar) gas flow rate, and CAPJ treatment time, were applied to examine the antimicrobial activity against Escherichia coli (E. coli). CAPJ treatment time was found to be the most influential parameter in its antimicrobial ability by evaluation of signal to noise ratios and analysis of variance. 100% bactericidal activity was achieved under the optimal bactericidal activity parameters including the application voltage of 8.5 kV, CAPJ-sample distance of 10 mm, Ar gas flow rate of 500 sccm, and CAPJ treatment time of 300 s, which confirms the efficacy of the Taguchi method in this design. In terms of the mechanism of CAPJ’s antimicrobial ability, the intensity of hydroxyl radical produced by CAPJ positively correlated to its antimicrobial efficiency. The CAPJ antimicrobial efficiency was further evaluated by both DNA double-strand breaks analysis and scanning electron microscopy examination of CAPJ treated bacteria. CAPJ destroyed the cell wall of E. coli and further damaged its DNA structure, thus leading to successful killing of bacteria. This study suggests that optimal conditions of CPAJ can provide effective antimicrobial activity and may be grounds for a novel approach for eradicating bacterial infections. MDPI 2019-11-09 /pmc/articles/PMC6912271/ /pubmed/31717600 http://dx.doi.org/10.3390/jcm8111930 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lou, Bih-Show
Lai, Chih-Ho
Chu, Teng-Ping
Hsieh, Jang-Hsing
Chen, Chun-Ming
Su, Yu-Ming
Hou, Chun-Wei
Chou, Pang-Yun
Lee, Jyh-Wei
Parameters Affecting the Antimicrobial Properties of Cold Atmospheric Plasma Jet
title Parameters Affecting the Antimicrobial Properties of Cold Atmospheric Plasma Jet
title_full Parameters Affecting the Antimicrobial Properties of Cold Atmospheric Plasma Jet
title_fullStr Parameters Affecting the Antimicrobial Properties of Cold Atmospheric Plasma Jet
title_full_unstemmed Parameters Affecting the Antimicrobial Properties of Cold Atmospheric Plasma Jet
title_short Parameters Affecting the Antimicrobial Properties of Cold Atmospheric Plasma Jet
title_sort parameters affecting the antimicrobial properties of cold atmospheric plasma jet
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6912271/
https://www.ncbi.nlm.nih.gov/pubmed/31717600
http://dx.doi.org/10.3390/jcm8111930
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