Artemisia princeps Inhibits Biofilm Formation and Virulence-Factor Expression of Antibiotic-Resistant Bacteria

In this study, we used ethanol extract of A. princeps and investigated its antibacterial effects against MRSA. Ethanol extract of A. princeps significantly inhibited MRSA growth and organic acid production during glucose metabolism at concentrations greater than 1 mg/mL (P < 0.05). MRSA biofilm f...

Full description

Bibliographic Details
Main Authors: Na-Young Choi, Sun-Young Kang, Kang-Ju Kim
Format: Article
Language:English
Published: Hindawi Limited 2015-01-01
Series:BioMed Research International
Online Access:http://dx.doi.org/10.1155/2015/239519
id doaj-85749c833bd44950ae36f7d161cecc8e
record_format Article
spelling doaj-85749c833bd44950ae36f7d161cecc8e2020-11-24T20:47:04ZengHindawi LimitedBioMed Research International2314-61332314-61412015-01-01201510.1155/2015/239519239519Artemisia princeps Inhibits Biofilm Formation and Virulence-Factor Expression of Antibiotic-Resistant BacteriaNa-Young Choi0Sun-Young Kang1Kang-Ju Kim2College of Education, Wonkwang University, Iksan 570-749, Republic of KoreaDepartment of Oral Biochemistry, School of Dentistry, Wonkwang University, Iksan 570-749, Republic of KoreaWonkwang Research Institute for Food Industry, Iksan 570-749, Republic of KoreaIn this study, we used ethanol extract of A. princeps and investigated its antibacterial effects against MRSA. Ethanol extract of A. princeps significantly inhibited MRSA growth and organic acid production during glucose metabolism at concentrations greater than 1 mg/mL (P < 0.05). MRSA biofilm formation was observed using scanning electron microscopy (SEM) and safranin staining. A. princeps extract was found to inhibit MRSA biofilm formation at concentrations higher than 2 mg/mL significantly (P < 0.05). Bactericidal effects of the A. princeps were observed using confocal laser microscopy, which showed that A. princeps was bactericidal in a dose-dependent manner. Using real-time PCR, expression of mecA, an antibiotic-resistance gene of MRSA, was observed, along with that of sea, agrA, and sarA. A. princeps significantly inhibited mecA, sea, agrA, and sarA, mRNA expression at the concentrations greater than 1 mg/mL (P < 0.05). The phytochemical analysis of A. princeps showed a relatively high content of organic acids and glycosides. The results of this study suggest that the ethanol extract of A. princeps may inhibit proliferation, acid production, biofilm formation, and virulence gene expressions of MRSA, which may be related to organic acids and glycosides, the major components in the extract.http://dx.doi.org/10.1155/2015/239519
collection DOAJ
language English
format Article
sources DOAJ
author Na-Young Choi
Sun-Young Kang
Kang-Ju Kim
spellingShingle Na-Young Choi
Sun-Young Kang
Kang-Ju Kim
Artemisia princeps Inhibits Biofilm Formation and Virulence-Factor Expression of Antibiotic-Resistant Bacteria
BioMed Research International
author_facet Na-Young Choi
Sun-Young Kang
Kang-Ju Kim
author_sort Na-Young Choi
title Artemisia princeps Inhibits Biofilm Formation and Virulence-Factor Expression of Antibiotic-Resistant Bacteria
title_short Artemisia princeps Inhibits Biofilm Formation and Virulence-Factor Expression of Antibiotic-Resistant Bacteria
title_full Artemisia princeps Inhibits Biofilm Formation and Virulence-Factor Expression of Antibiotic-Resistant Bacteria
title_fullStr Artemisia princeps Inhibits Biofilm Formation and Virulence-Factor Expression of Antibiotic-Resistant Bacteria
title_full_unstemmed Artemisia princeps Inhibits Biofilm Formation and Virulence-Factor Expression of Antibiotic-Resistant Bacteria
title_sort artemisia princeps inhibits biofilm formation and virulence-factor expression of antibiotic-resistant bacteria
publisher Hindawi Limited
series BioMed Research International
issn 2314-6133
2314-6141
publishDate 2015-01-01
description In this study, we used ethanol extract of A. princeps and investigated its antibacterial effects against MRSA. Ethanol extract of A. princeps significantly inhibited MRSA growth and organic acid production during glucose metabolism at concentrations greater than 1 mg/mL (P < 0.05). MRSA biofilm formation was observed using scanning electron microscopy (SEM) and safranin staining. A. princeps extract was found to inhibit MRSA biofilm formation at concentrations higher than 2 mg/mL significantly (P < 0.05). Bactericidal effects of the A. princeps were observed using confocal laser microscopy, which showed that A. princeps was bactericidal in a dose-dependent manner. Using real-time PCR, expression of mecA, an antibiotic-resistance gene of MRSA, was observed, along with that of sea, agrA, and sarA. A. princeps significantly inhibited mecA, sea, agrA, and sarA, mRNA expression at the concentrations greater than 1 mg/mL (P < 0.05). The phytochemical analysis of A. princeps showed a relatively high content of organic acids and glycosides. The results of this study suggest that the ethanol extract of A. princeps may inhibit proliferation, acid production, biofilm formation, and virulence gene expressions of MRSA, which may be related to organic acids and glycosides, the major components in the extract.
url http://dx.doi.org/10.1155/2015/239519
work_keys_str_mv AT nayoungchoi artemisiaprincepsinhibitsbiofilmformationandvirulencefactorexpressionofantibioticresistantbacteria
AT sunyoungkang artemisiaprincepsinhibitsbiofilmformationandvirulencefactorexpressionofantibioticresistantbacteria
AT kangjukim artemisiaprincepsinhibitsbiofilmformationandvirulencefactorexpressionofantibioticresistantbacteria
_version_ 1716811274080223232