Literature DB >> 24730363

Evaluation of a novel strain of infectious bronchitis virus emerged as a result of spike gene recombination between two highly diverged parent strains.

Kylie A Hewson1, Amir H Noormohammadi, Joanne M Devlin, Glenn F Browning, Bridie K Schultz, Jagoda Ignjatovic.   

Abstract

The emergence of new variant strains of the poultry pathogen infectious bronchitis virus (IBV) is continually reported worldwide, owing to the labile nature of the large single-stranded RNA IBV genome. High resolution melt curve analysis previously detected a variant strain, N1/08, and the present study confirmed that this strain had emerged as a result of recombination between Australian subgroup 2 and 3 strains in the spike gene region, in a similar manner reported for turkey coronaviruses. The S1 gene for N1/08 had highest nucleotide similarity with subgroup 2 strains, which is interesting considering subgroup 2 strains have not been detected since the early 1990s. SimPlot analysis of the 7.2-kb 3' end of the N1/08 genome with the same region for other Australian reference strains identified the sites of recombination as immediately upstream and downstream of the S1 gene. A pathogenicity study in 2-week-old chickens found that N1/08 had similar pathogenicity for chicken respiratory tissues to that reported for subgroup 2 strains rather than subgroup 3 strains. The results of this study demonstrate that recombination is a mechanism utilized for the emergence of new strains of IBV, with the ability to alter strain pathogenicity in a single generation.

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Year:  2014        PMID: 24730363     DOI: 10.1080/03079457.2014.914624

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


  9 in total

Review 1.  Infectious Bronchitis Virus Variants: Molecular Analysis and Pathogenicity Investigation.

Authors:  Shu-Yi Lin; Hui-Wen Chen
Journal:  Int J Mol Sci       Date:  2017-09-22       Impact factor: 5.923

2.  New real time and conventional RT-PCRs for updated molecular diagnosis of infectious bronchitis virus infection (IBV) in chickens in Egypt associated with frequent co-infections with avian influenza and Newcastle Disease viruses.

Authors:  Mahmoud M Naguib; Magdy F El-Kady; Dörte Lüschow; Kareem E Hassan; Abdel-Satar Arafa; Ali El-Zanaty; Mohamed K Hassan; Hafez M Hafez; Christian Grund; Timm C Harder
Journal:  J Virol Methods       Date:  2017-03-21       Impact factor: 2.014

3.  Serotype shift of a 793/B genotype infectious bronchitis coronavirus by natural recombination.

Authors:  Tingting Zhang; Zongxi Han; Qianqian Xu; Qiuling Wang; Mengying Gao; Wei Wu; Yuhao Shao; Huixin Li; Xiangang Kong; Shengwang Liu
Journal:  Infect Genet Evol       Date:  2015-04-03       Impact factor: 3.342

4.  Emerging lethal infectious bronchitis coronavirus variants with multiorgan tropism.

Authors:  Yao-Tsun Li; Ting-Chih Chen; Shu-Yi Lin; Masaji Mase; Shin Murakami; Taisuke Horimoto; Hui-Wen Chen
Journal:  Transbound Emerg Dis       Date:  2019-11-20       Impact factor: 5.005

5.  Amplicon-Based Detection and Sequencing of SARS-CoV-2 in Nasopharyngeal Swabs from Patients With COVID-19 and Identification of Deletions in the Viral Genome That Encode Proteins Involved in Interferon Antagonism.

Authors:  Shona C Moore; Rebekah Penrice-Randal; Muhannad Alruwaili; Nadine Randle; Stuart Armstrong; Catherine Hartley; Sam Haldenby; Xiaofeng Dong; Abdulrahman Alrezaihi; Mai Almsaud; Eleanor Bentley; Jordan Clark; Isabel García-Dorival; Paul Gilmore; Ximeng Han; Benjamin Jones; Lisa Luu; Parul Sharma; Ghada Shawli; Yani Sun; Qin Zhao; Steven T Pullan; Daniel P Carter; Kevin Bewley; Jake Dunning; En-Min Zhou; Tom Solomon; Michael Beadsworth; James Cruise; Derrick W Crook; David A Matthews; Andrew D Davidson; Zana Mahmood; Waleed Aljabr; Julian Druce; Richard Vipond; Lisa Ng; Laurent Renia; Peter J M Openshaw; J Kenneth Baillie; Miles W Carroll; James Stewart; Alistair Darby; Malcolm Semple; Lance Turtle; Julian A Hiscox
Journal:  Viruses       Date:  2020-10-14       Impact factor: 5.048

6.  Whole genome analysis of Japanese bovine toroviruses reveals natural recombination between porcine and bovine toroviruses.

Authors:  Mika Ito; Shinobu Tsuchiaka; Yuki Naoi; Konosuke Otomaru; Mitsuo Sato; Tsuneyuki Masuda; Kei Haga; Tomoichiro Oka; Hiroshi Yamasato; Tsutomu Omatsu; Satoshi Sugimura; Hiroshi Aoki; Tetsuya Furuya; Yukie Katayama; Mami Oba; Junsuke Shirai; Kazuhiko Katayama; Tetsuya Mizutani; Makoto Nagai
Journal:  Infect Genet Evol       Date:  2015-12-18       Impact factor: 3.342

7.  Full genome analysis of Australian infectious bronchitis viruses suggests frequent recombination events between vaccine strains and multiple phylogenetically distant avian coronaviruses of unknown origin.

Authors:  José A Quinteros; Sang-Won Lee; Philip F Markham; Amir H Noormohammadi; Carol A Hartley; Alistair R Legione; Mauricio J C Coppo; Paola K Vaz; Glenn F Browning
Journal:  Vet Microbiol       Date:  2016-11-06       Impact factor: 3.293

8.  Genetic and biological characteristics of four novel recombinant avian infectious bronchitis viruses isolated in China.

Authors:  Liwen Xu; Mengting Ren; Jie Sheng; Tianxin Ma; Zongxi Han; Yan Zhao; Junfeng Sun; Shengwang Liu
Journal:  Virus Res       Date:  2019-01-11       Impact factor: 3.303

9.  Altered pathogenicity of a tl/CH/LDT3/03 genotype infectious bronchitis coronavirus due to natural recombination in the 5'- 17kb region of the genome.

Authors:  Zongxi Han; Tingting Zhang; Qianqian Xu; Mengying Gao; Yuqiu Chen; Qiuling Wang; Yan Zhao; Yuhao Shao; Huixin Li; Xiangang Kong; Shengwang Liu
Journal:  Virus Res       Date:  2015-11-23       Impact factor: 3.303

  9 in total

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