Literature DB >> 22749758

Genetics and reverse genetics of rotavirus.

Koki Taniguchi1, Satoshi Komoto.   

Abstract

Rotavirus is a member of the family Reoviridae, which have genomes consisting of 10-12 double-stranded RNA segments. The functions of proteins encoded by each segment of the rotavirus genome have been studied extensively by several methods including reassortants, temperature-sensitive mutants, isolates with rearranged RNA segments, RNAi analysis, and other procedures. However, as found for most RNA viruses, the technique of reverse genetics is required for precise genotype/phenotype correlation, for the analysis of the role of specific mutation in replication process and pathogenesis, and for the development of vectors and vaccines. In 2006, we presented the first description of a reverse genetics system for rotavirus, although a helper virus and a selection system are required. Since then, two other approaches have been reported for rotavirus reverse genetics, both requiring the presence of a helper virus. A tractable, helper virus-free reverse genetics system for rotavirus has not been developed so far, in contrast to the recent developments of plasmid only-based reverse genetics systems for other members of the Reoviridae.
Copyright © 2012 Elsevier B.V. All rights reserved.

Mesh:

Year:  2012        PMID: 22749758     DOI: 10.1016/j.coviro.2012.06.001

Source DB:  PubMed          Journal:  Curr Opin Virol        ISSN: 1879-6257            Impact factor:   7.090


  8 in total

1.  Reverse Genetics System Demonstrates that Rotavirus Nonstructural Protein NSP6 Is Not Essential for Viral Replication in Cell Culture.

Authors:  Satoshi Komoto; Yuta Kanai; Saori Fukuda; Masanori Kugita; Takahiro Kawagishi; Naoto Ito; Makoto Sugiyama; Yoshiharu Matsuura; Takeshi Kobayashi; Koki Taniguchi
Journal:  J Virol       Date:  2017-10-13       Impact factor: 5.103

2.  Generation of Recombinant Rotaviruses Expressing Fluorescent Proteins by Using an Optimized Reverse Genetics System.

Authors:  Satoshi Komoto; Saori Fukuda; Tomihiko Ide; Naoto Ito; Makoto Sugiyama; Tetsushi Yoshikawa; Takayuki Murata; Koki Taniguchi
Journal:  J Virol       Date:  2018-06-13       Impact factor: 5.103

3.  A plasmid-based reverse genetics system for mammalian orthoreoviruses driven by a plasmid-encoded T7 RNA polymerase.

Authors:  Satoshi Komoto; Takahiro Kawagishi; Takeshi Kobayashi; Mine Ikizler; Jason Iskarpatyoti; Terence S Dermody; Koki Taniguchi
Journal:  J Virol Methods       Date:  2013-10-29       Impact factor: 2.014

4.  An in-vitro transcription assay for development of Rotavirus VP7.

Authors:  Shahram Jalilian; Ali Teimoori; Manoochehr Makvandi; Milad Zandi
Journal:  Iran J Microbiol       Date:  2017-06

5.  IL-22 suppresses the infection of porcine enteric coronaviruses and rotavirus by activating STAT3 signal pathway.

Authors:  Mei Xue; Jing Zhao; Lan Ying; Fang Fu; Lin Li; Yanlong Ma; Hongyan Shi; Jiaoer Zhang; Li Feng; Pinghuang Liu
Journal:  Antiviral Res       Date:  2017-03-16       Impact factor: 5.970

Review 6.  Re-Examining Rotavirus Innate Immune Evasion: Potential Applications of the Reverse Genetics System.

Authors:  Avan Antia; Amanda N Pinski; Siyuan Ding
Journal:  mBio       Date:  2022-06-14       Impact factor: 7.786

Review 7.  Reverse Genetics for Peste des Petits Ruminants Virus: Current Status and Lessons to Learn from Other Non-segmented Negative-Sense RNA Viruses.

Authors:  Alfred Niyokwishimira; Yongxi Dou; Bang Qian; Prajapati Meera; Zhidong Zhang
Journal:  Virol Sin       Date:  2018-11-19       Impact factor: 4.327

Review 8.  Basics of virology.

Authors:  Philip E Pellett; Subhash Mitra; Thomas C Holland
Journal:  Handb Clin Neurol       Date:  2014
  8 in total

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