Literature DB >> 25690020

Identification of ribosomal RNA methyltransferase gene ermF in Riemerella anatipestifer.

Hongyan Luo1, Mafeng Liu, Lanying Wang, Wangshu Zhou, Mingshu Wang, Anchun Cheng, Renyong Jia, Shun Chen, Kunfeng Sun, Qiao Yang, Xiaoyue Chen, Dekang Zhu.   

Abstract

Riemerella anatipestifer is a major bacterial pathogen of waterfowl, globally responsible for avian septicaemic disease. As chemotherapy is the predominant method for the prevention and treatment of R. anatipestifer infection in poultry, the widespread use of antibiotics has favoured the emergence of antibiotic-resistant strains. However, little is known about R. anatipestifer susceptibility to macrolide antibiotics and its resistance mechanism. We report for the first time the identification of a macrolide resistance mechanism in R. anatipestifer that is mediated by the ribosomal RNA methyltransferase ermF. We identified the presence of the ermF gene in 64/206 (31%) R. anatipestifer isolates from different regions in China. An ermF deletion strain was constructed to investigate the function of the ermF gene on the resistance to high levels of macrolides. The ermF mutant strain showed significantly decreased resistance to macrolide and lincosamide, exhibiting 1024-, 1024-, 4- and >2048-fold reduction in the minimum inhibitory concentrations for erythromycin, azithromycin, tylosin and lincomycin, respectively. Furthermore, functional analysis of ermF expression in E. coli XL1-blue showed that the R. anatipestifer ermF gene was functional in E. coli XL1-blue and conferred resistance to high levels of erythromycin (100 µg/ml), supporting the hypothesis that the ermF gene is associated with high-level macrolide resistance. Our work suggests that ribosomal RNA modification mediated by the ermF methyltransferase is the predominant mechanism of resistance to erythromycin in R. anatipestifer isolates.

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Year:  2015        PMID: 25690020     DOI: 10.1080/03079457.2015.1019828

Source DB:  PubMed          Journal:  Avian Pathol        ISSN: 0307-9457            Impact factor:   3.378


  12 in total

1.  Use of Natural Transformation To Establish an Easy Knockout Method in Riemerella anatipestifer.

Authors:  MaFeng Liu; Li Zhang; Li Huang; Francis Biville; DeKang Zhu; MingShu Wang; RenYong Jia; Shun Chen; KunFeng Sun; Qiao Yang; Ying Wu; XiaoYue Chen; AnChun Cheng
Journal:  Appl Environ Microbiol       Date:  2017-04-17       Impact factor: 4.792

2.  RAA Enzyme Is a New Family of Class A Extended-Spectrum β-Lactamase from Riemerella anatipestifer Strain RCAD0122.

Authors:  Hongyan Luo; Dekang Zhu; Mengru Li; Yunhan Tang; Wenyu Zhang; Haoju Wang; Pei Li
Journal:  Antimicrob Agents Chemother       Date:  2022-01-03       Impact factor: 5.938

Review 3.  Antimicrobial Resistance in Bacterial Poultry Pathogens: A Review.

Authors:  Nguyen Thi Nhung; Niwat Chansiripornchai; Juan J Carrique-Mas
Journal:  Front Vet Sci       Date:  2017-08-10

4.  Riemerella anatipestifer M949_0459 gene is responsible for the bacterial resistance to tigecycline.

Authors:  Tao Li; Min Shan; Jing He; Xiaolan Wang; Shaohui Wang; Mingxing Tian; Jingjing Qi; Tingrong Luo; Yonghong Shi; Chan Ding; Shengqing Yu
Journal:  Oncotarget       Date:  2017-07-27

5.  Contribution of RaeB, a Putative RND-Type Transporter to Aminoglycoside and Detergent Resistance in Riemerella anatipestifer.

Authors:  Xin Zhang; Ming-Shu Wang; Ma-Feng Liu; De-Kang Zhu; Francis Biville; Ren-Yong Jia; Shun Chen; Kun-Feng Sun; Qiao Yang; Ying Wu; Xin-Xin Zhao; Xiao-Yue Chen; An-Chun Cheng
Journal:  Front Microbiol       Date:  2017-12-08       Impact factor: 5.640

6.  Type B Chloramphenicol Acetyltransferases Are Responsible for Chloramphenicol Resistance in Riemerella anatipestifer, China.

Authors:  Li Huang; Hui Yuan; Ma-Feng Liu; Xin-Xin Zhao; Ming-Shu Wang; Ren-Yong Jia; Shun Chen; Kun-Feng Sun; Qiao Yang; Ying Wu; Xiao-Yue Chen; An-Chun Cheng; De-Kang Zhu
Journal:  Front Microbiol       Date:  2017-03-01       Impact factor: 5.640

7.  Cas1 and Cas2 From the Type II-C CRISPR-Cas System of Riemerella anatipestifer Are Required for Spacer Acquisition.

Authors:  Yang He; Mingshu Wang; Mafeng Liu; Li Huang; Chaoyue Liu; Xin Zhang; Haibo Yi; Anchun Cheng; Dekang Zhu; Qiao Yang; Ying Wu; Xinxin Zhao; Shun Chen; Renyong Jia; Shaqiu Zhang; Yunya Liu; Yanling Yu; Ling Zhang
Journal:  Front Cell Infect Microbiol       Date:  2018-06-12       Impact factor: 5.293

8.  Development of a markerless gene deletion strategy using rpsL as a counterselectable marker and characterization of the function of RA0C_1534 in Riemerella anatipestifer ATCC11845 using this strategy.

Authors:  MaFeng Liu; Xiu Tian; MengYi Wang; DeKang Zhu; MingShu Wang; RenYong Jia; Shun Chen; XinXin Zhao; Qiao Yang; Ying Wu; ShaQiu Zhang; Juan Huang; Bin Tian; XiaoYue Chen; YunYa Liu; Ling Zhang; YanLing Yu; Francis Biville; LeiChang Pan; Mujeeb Ur Rehman; AnChun Cheng
Journal:  PLoS One       Date:  2019-06-10       Impact factor: 3.240

9.  Various Profiles of tet Genes Addition to tet(X) in Riemerella anatipestifer Isolates From Ducks in China.

Authors:  De-Kang Zhu; Hong-Yan Luo; Ma-Feng Liu; Xin-Xin Zhao; Ren-Yong Jia; Shun Chen; Kun-Feng Sun; Qiao Yang; Ying Wu; Xiao-Yue Chen; An-Chun Cheng; Ming-Shu Wang
Journal:  Front Microbiol       Date:  2018-03-27       Impact factor: 5.640

10.  Prevalence of fluoroquinolone resistance and mutations in the gyrA, parC and parE genes of Riemerella anatipestifer isolated from ducks in China.

Authors:  Dekang Zhu; Mingyu Zheng; Jinge Xu; Mingshu Wang; Renyong Jia; Shun Chen; Mafeng Liu; Xinxin Zhao; Qiao Yang; Ying Wu; Shaqiu Zhang; Juan Huang; Yunya Liu; Ling Zhang; Yanling Yu; Leichang Pan; Xiaoyue Chen; Anchun Cheng
Journal:  BMC Microbiol       Date:  2019-12-03       Impact factor: 3.605

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