Enhancement of Nano-Biopolymer Antibacterial Activity by Pulsed Electric Fields

Chronic wounds are commonly colonized with bacteria in a way that prevents full healing process and capacity for repair. Nano-chitosan, a biodegradable and nontoxic biopolymer, has shown bacteriostatic activity against a wide spectrum of bacteria. Effectively, pulsed electromagnetic fields are shown...

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Main Authors: Mai. I. El-Kaliuoby, Motaz Amer, Nader Shehata
Format: Article
Language:English
Published: MDPI AG 2021-06-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/13/11/1869
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spelling doaj-a316e7871247436abe3086d2309f6ee82021-06-30T23:21:30ZengMDPI AGPolymers2073-43602021-06-01131869186910.3390/polym13111869Enhancement of Nano-Biopolymer Antibacterial Activity by Pulsed Electric FieldsMai. I. El-Kaliuoby0Motaz Amer1Nader Shehata2Faculty of Education, Alexandria University, Alexandria 21544, EgyptBasic and Applied Science Institute, College of Engineering Arab Academy for Science, Technology and Maritime Transports, Alexandria 21544, EgyptThe Bradley Department of Electrical and Computer Engineering, Virginia Tech, Blacksburg, VA 24061, USAChronic wounds are commonly colonized with bacteria in a way that prevents full healing process and capacity for repair. Nano-chitosan, a biodegradable and nontoxic biopolymer, has shown bacteriostatic activity against a wide spectrum of bacteria. Effectively, pulsed electromagnetic fields are shown to have both wound healing enhancement and antibacterial activity. This work aimed to combine the use of nano-chitosan and exposure to a pulsed electric field to overcome two common types of infectious bacteria, namely <i>P. aeruginosa</i> and <i>S. aureus</i>. Here, bacteria growing rate, growth kinetics and cell cytotoxicity (levels of lactate dehydrogenase, protein leakage and nucleic acid leakage) were investigated. Our findings confirmed the maximum antibacterial synergistic combination of nano-chitosan and exposure against <i>P. aeruginosa</i> than using each one alone. It is presumed that the exposure has influenced bacteria membrane charge distribution in a manner that allowed more chitosan to anchor the surface and enter inside the cell. Significantly, cell cytotoxicity substantiates high enzymatic levels as a result of cell membrane disintegration. In conclusion, exposure to pulsed electromagnetic fields has a synergistic antibacterial effect against <i>S. aureus</i> and <i>P. aeruginosa</i> with maximum inhibitory effect for the last one. Extensive work should be done to evaluate the combination against different bacteria types to get general conclusive results. The ability of using pulsed electromagnetic fields as a wound healing accelerator and antibacterial cofactor has been proved, but in vivo experimental work in the future to verify the use of such a new combination against infectious wounds and to determine optimum treatment conditions is a must.https://www.mdpi.com/2073-4360/13/11/1869natural biopolymersnano-chitosanpulsed electric fieldsantibacterial<i>P. aeruginosa</i><i>S. aureus</i>
collection DOAJ
language English
format Article
sources DOAJ
author Mai. I. El-Kaliuoby
Motaz Amer
Nader Shehata
spellingShingle Mai. I. El-Kaliuoby
Motaz Amer
Nader Shehata
Enhancement of Nano-Biopolymer Antibacterial Activity by Pulsed Electric Fields
Polymers
natural biopolymers
nano-chitosan
pulsed electric fields
antibacterial
<i>P. aeruginosa</i>
<i>S. aureus</i>
author_facet Mai. I. El-Kaliuoby
Motaz Amer
Nader Shehata
author_sort Mai. I. El-Kaliuoby
title Enhancement of Nano-Biopolymer Antibacterial Activity by Pulsed Electric Fields
title_short Enhancement of Nano-Biopolymer Antibacterial Activity by Pulsed Electric Fields
title_full Enhancement of Nano-Biopolymer Antibacterial Activity by Pulsed Electric Fields
title_fullStr Enhancement of Nano-Biopolymer Antibacterial Activity by Pulsed Electric Fields
title_full_unstemmed Enhancement of Nano-Biopolymer Antibacterial Activity by Pulsed Electric Fields
title_sort enhancement of nano-biopolymer antibacterial activity by pulsed electric fields
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2021-06-01
description Chronic wounds are commonly colonized with bacteria in a way that prevents full healing process and capacity for repair. Nano-chitosan, a biodegradable and nontoxic biopolymer, has shown bacteriostatic activity against a wide spectrum of bacteria. Effectively, pulsed electromagnetic fields are shown to have both wound healing enhancement and antibacterial activity. This work aimed to combine the use of nano-chitosan and exposure to a pulsed electric field to overcome two common types of infectious bacteria, namely <i>P. aeruginosa</i> and <i>S. aureus</i>. Here, bacteria growing rate, growth kinetics and cell cytotoxicity (levels of lactate dehydrogenase, protein leakage and nucleic acid leakage) were investigated. Our findings confirmed the maximum antibacterial synergistic combination of nano-chitosan and exposure against <i>P. aeruginosa</i> than using each one alone. It is presumed that the exposure has influenced bacteria membrane charge distribution in a manner that allowed more chitosan to anchor the surface and enter inside the cell. Significantly, cell cytotoxicity substantiates high enzymatic levels as a result of cell membrane disintegration. In conclusion, exposure to pulsed electromagnetic fields has a synergistic antibacterial effect against <i>S. aureus</i> and <i>P. aeruginosa</i> with maximum inhibitory effect for the last one. Extensive work should be done to evaluate the combination against different bacteria types to get general conclusive results. The ability of using pulsed electromagnetic fields as a wound healing accelerator and antibacterial cofactor has been proved, but in vivo experimental work in the future to verify the use of such a new combination against infectious wounds and to determine optimum treatment conditions is a must.
topic natural biopolymers
nano-chitosan
pulsed electric fields
antibacterial
<i>P. aeruginosa</i>
<i>S. aureus</i>
url https://www.mdpi.com/2073-4360/13/11/1869
work_keys_str_mv AT maiielkaliuoby enhancementofnanobiopolymerantibacterialactivitybypulsedelectricfields
AT motazamer enhancementofnanobiopolymerantibacterialactivitybypulsedelectricfields
AT nadershehata enhancementofnanobiopolymerantibacterialactivitybypulsedelectricfields
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