Literature DB >> 16343820

Recombination in the alphaherpesvirus bovine herpesvirus 1.

E Thiry1, B Muylkens, F Meurens, S Gogev, J Thiry, A Vanderplasschen, F Schynts.   

Abstract

Herpesviruses are DNA viruses characterized by a low rate of nucleotide substitution. Therefore, other mechanisms must be involved to their evolution, like recombination that can be seen as an essential evolutionary driving force of these viruses. Recombination contributes to the long-term evolution of alphaherpesviruses. It acts also to continuously create new alphaherpesvirus strains. We have used bovine herpesvirus 1 to investigate recombination both within DNA concatemers in infected cells and in vitro and in vivo at the end of the lytic cycle. The following results have been obtained: (i) intramolecular recombination occurs at the level of concatemers and gives rise to genomic segment inversions; (ii) intraspecific recombination occurs frequently both in vitro and in vivo; (iii) interspecific recombination is possible and requires two highly genetically related viruses; (iv) only simultaneous or closely separated infections lead to the production of recombinant viruses; (v) recombination between wild-type and glycoprotein defective vaccine virus can produce a glycoprotein defective virus keeping part of the virulence of parental wild-type virus. Recombination, by exchanging genomic segments, may modify the virulence of alphaherpesviruses. It must be carefully assessed for the biosafety of antiviral therapy, alphaherpesvirus-based vectors and live attenuated vaccines.

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Year:  2005        PMID: 16343820     DOI: 10.1016/j.vetmic.2005.11.012

Source DB:  PubMed          Journal:  Vet Microbiol        ISSN: 0378-1135            Impact factor:   3.293


  17 in total

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2.  The double-edged sword: How evolution can make or break a live-attenuated virus vaccine.

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3.  In vivo and in vitro intragenomic rearrangement of TT viruses.

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4.  Coinfection with two closely related alphaherpesviruses results in a highly diversified recombination mosaic displaying negative genetic interference.

Authors:  Benoît Muylkens; Frédéric Farnir; François Meurens; Frédéric Schynts; Alain Vanderplasschen; Michel Georges; Etienne Thiry
Journal:  J Virol       Date:  2009-01-19       Impact factor: 5.103

Review 5.  Animal board invited review: Risks of zoonotic disease emergence at the interface of wildlife and livestock systems.

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Journal:  Animal       Date:  2021-06-03       Impact factor: 3.240

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Authors:  S S Maidana; F Delgado; L Vagnoni; A Mauroy; E Thiry; S Romera
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7.  A DNA Vaccine Formulated with Chemical Adjuvant Provides Partial Protection against Bovine Herpes Virus Infection in Cattle.

Authors:  Valeria Quattrocchi; Ivana Soria; Cecilia Ana Langellotti; Victoria Gnazzo; Mariela Gammella; Dadin P Moore; Patricia I Zamorano
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Review 8.  Coinfections and their molecular consequences in the porcine respiratory tract.

Authors:  Georges Saade; Céline Deblanc; Juliette Bougon; Corinne Marois-Créhan; Christelle Fablet; Gaël Auray; Catherine Belloc; Mily Leblanc-Maridor; Carl A Gagnon; Jianzhong Zhu; Marcelo Gottschalk; Artur Summerfield; Gaëlle Simon; Nicolas Bertho; François Meurens
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9.  Multiplex PCR followed by restriction length polymorphism analysis for the subtyping of bovine herpesvirus 5 isolates.

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Journal:  BMC Vet Res       Date:  2013-06-04       Impact factor: 2.741

10.  Genomic evolution, recombination, and inter-strain diversity of chelonid alphaherpesvirus 5 from Florida and Hawaii green sea turtles with fibropapillomatosis.

Authors:  Cheryl L Morrison; Luke Iwanowicz; Thierry M Work; Elizabeth Fahsbender; Mya Breitbart; Cynthia Adams; Deb Iwanowicz; Lakyn Sanders; Mathias Ackermann; Robert S Cornman
Journal:  PeerJ       Date:  2018-02-20       Impact factor: 2.984

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