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Zinc Finger Nuclease: A New Approach to Overcome Beta-Lactam Antibiotic Resistance

BACKGROUND: The evolution of antibiotic-resistant bacteria (ARB) and antibiotic-resistance genes (ARGs) has been accelerated recently by the indiscriminate application of antibiotics. Antibiotic resistance has challenged the success of medical interventions and therefore is considered a hazardous th...

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Autores principales: Shahbazi Dastjerdeh, Mansoureh, Kouhpayeh, Shirin, Sabzehei, Faezeh, Khanahmad, Hossein, Salehi, Mansour, Mohammadi, Zahra, Shariati, Laleh, Hejazi, Zahra, Rabiei, Parisa, Manian, Mostafa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Kowsar 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4833962/
https://www.ncbi.nlm.nih.gov/pubmed/27099691
http://dx.doi.org/10.5812/jjm.29384
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author Shahbazi Dastjerdeh, Mansoureh
Kouhpayeh, Shirin
Sabzehei, Faezeh
Khanahmad, Hossein
Salehi, Mansour
Mohammadi, Zahra
Shariati, Laleh
Hejazi, Zahra
Rabiei, Parisa
Manian, Mostafa
author_facet Shahbazi Dastjerdeh, Mansoureh
Kouhpayeh, Shirin
Sabzehei, Faezeh
Khanahmad, Hossein
Salehi, Mansour
Mohammadi, Zahra
Shariati, Laleh
Hejazi, Zahra
Rabiei, Parisa
Manian, Mostafa
author_sort Shahbazi Dastjerdeh, Mansoureh
collection PubMed
description BACKGROUND: The evolution of antibiotic-resistant bacteria (ARB) and antibiotic-resistance genes (ARGs) has been accelerated recently by the indiscriminate application of antibiotics. Antibiotic resistance has challenged the success of medical interventions and therefore is considered a hazardous threat to human health. OBJECTIVES: The present study aimed to describe the use of zinc finger nuclease (ZFN) technology to target and disrupt a plasmid-encoded β-lactamase, which prevents horizontal gene transfer-mediated evolution of ARBs. MATERIALS AND METHODS: An engineered ZFN was designed to target a specific sequence in the ampicillin resistance gene (amp(R)) of the pTZ57R plasmid. The Escherichia coli bacteria already contained the pZFN kanamycin-resistant (kana(R)) plasmid as the case or the pP15A, kana(R) empty vector as the control, were transformed with the pTZ57R; the ability of the designed ZFN to disrupt the β-lactamase gene was evaluated with the subsequent disturbed ability of the bacteria to grow on ampicillin (amp) and ampicillin-kanamycin (amp-kana)-containing media. The effect of mild hypothermia on the ZFN gene targeting efficiency was also evaluated. RESULTS: The growth of bacteria in the case group on the amp and amp-kana-containing media was significantly lower compared with the control group at 37°C (P < 0.001). Despite being more efficient in hypothermic conditions at 30°C (P < 0.001), there were no significant associations between the incubation temperature and the ZFN gene targeting efficiency. CONCLUSIONS: Our findings revealed that the ZFN technology could be employed to overcome ampicillin resistance by the targeted disruption of the ampicillin resistance gene, which leads to inactivation of β-lactam synthesis. Therefore, ZFN technology could be engaged to decrease the antibiotic resistance issue with the construction of a ZFN archive against different ARGs. To tackle the resistance issue at the environmental level, recombinant phages expressing ZFNs against different ARGs could be constructed and released into both hospital and urban wastewater systems.
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spelling pubmed-48339622016-04-20 Zinc Finger Nuclease: A New Approach to Overcome Beta-Lactam Antibiotic Resistance Shahbazi Dastjerdeh, Mansoureh Kouhpayeh, Shirin Sabzehei, Faezeh Khanahmad, Hossein Salehi, Mansour Mohammadi, Zahra Shariati, Laleh Hejazi, Zahra Rabiei, Parisa Manian, Mostafa Jundishapur J Microbiol Research Article BACKGROUND: The evolution of antibiotic-resistant bacteria (ARB) and antibiotic-resistance genes (ARGs) has been accelerated recently by the indiscriminate application of antibiotics. Antibiotic resistance has challenged the success of medical interventions and therefore is considered a hazardous threat to human health. OBJECTIVES: The present study aimed to describe the use of zinc finger nuclease (ZFN) technology to target and disrupt a plasmid-encoded β-lactamase, which prevents horizontal gene transfer-mediated evolution of ARBs. MATERIALS AND METHODS: An engineered ZFN was designed to target a specific sequence in the ampicillin resistance gene (amp(R)) of the pTZ57R plasmid. The Escherichia coli bacteria already contained the pZFN kanamycin-resistant (kana(R)) plasmid as the case or the pP15A, kana(R) empty vector as the control, were transformed with the pTZ57R; the ability of the designed ZFN to disrupt the β-lactamase gene was evaluated with the subsequent disturbed ability of the bacteria to grow on ampicillin (amp) and ampicillin-kanamycin (amp-kana)-containing media. The effect of mild hypothermia on the ZFN gene targeting efficiency was also evaluated. RESULTS: The growth of bacteria in the case group on the amp and amp-kana-containing media was significantly lower compared with the control group at 37°C (P < 0.001). Despite being more efficient in hypothermic conditions at 30°C (P < 0.001), there were no significant associations between the incubation temperature and the ZFN gene targeting efficiency. CONCLUSIONS: Our findings revealed that the ZFN technology could be employed to overcome ampicillin resistance by the targeted disruption of the ampicillin resistance gene, which leads to inactivation of β-lactam synthesis. Therefore, ZFN technology could be engaged to decrease the antibiotic resistance issue with the construction of a ZFN archive against different ARGs. To tackle the resistance issue at the environmental level, recombinant phages expressing ZFNs against different ARGs could be constructed and released into both hospital and urban wastewater systems. Kowsar 2016-01-02 /pmc/articles/PMC4833962/ /pubmed/27099691 http://dx.doi.org/10.5812/jjm.29384 Text en Copyright © 2016, Ahvaz Jundishapur University of Medical Sciences. http://creativecommons.org/licenses/by-nc/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 International License (http://creativecommons.org/licenses/by-nc/4.0/) which permits copy and redistribute the material just in noncommercial usages, provided the original work is properly cited.
spellingShingle Research Article
Shahbazi Dastjerdeh, Mansoureh
Kouhpayeh, Shirin
Sabzehei, Faezeh
Khanahmad, Hossein
Salehi, Mansour
Mohammadi, Zahra
Shariati, Laleh
Hejazi, Zahra
Rabiei, Parisa
Manian, Mostafa
Zinc Finger Nuclease: A New Approach to Overcome Beta-Lactam Antibiotic Resistance
title Zinc Finger Nuclease: A New Approach to Overcome Beta-Lactam Antibiotic Resistance
title_full Zinc Finger Nuclease: A New Approach to Overcome Beta-Lactam Antibiotic Resistance
title_fullStr Zinc Finger Nuclease: A New Approach to Overcome Beta-Lactam Antibiotic Resistance
title_full_unstemmed Zinc Finger Nuclease: A New Approach to Overcome Beta-Lactam Antibiotic Resistance
title_short Zinc Finger Nuclease: A New Approach to Overcome Beta-Lactam Antibiotic Resistance
title_sort zinc finger nuclease: a new approach to overcome beta-lactam antibiotic resistance
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4833962/
https://www.ncbi.nlm.nih.gov/pubmed/27099691
http://dx.doi.org/10.5812/jjm.29384
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