Literature DB >> 19153224

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

Benoît Muylkens1, Frédéric Farnir, François Meurens, Frédéric Schynts, Alain Vanderplasschen, Michel Georges, Etienne Thiry.   

Abstract

Phylogenetic studies of the emergence and spread of natural recombinants in herpesviruses infecting humans and animals have been reported recently. However, despite an ever-increasing amount of evidence of recombination in herpesvirus history, the recombination process and the consequences on the genetic diversity of the progeny remain poorly characterized. We addressed this issue by using multiple single-nucleotide polymorphisms (SNPs) differentiating the two subtypes of an alphaherpesvirus, bovine herpesvirus 1 (BoHV-1). Analysis of a large sample of progeny virions obtained in a single growth cycle of coinfected BoHV-1 strains provided a prospective investigation of the recombination dynamics by using SNPs as recombination markers. We found that the simultaneous infection with two closely related herpesviruses results in a highly diversified recombination mosaic. From the analysis of multiple recombinants arising in the progeny, we provide the first evidence of genetic interference influencing the recombination process in herpesviruses. In addition, we report striking differences in the levels of recombination frequency observed along the BoHV-1 genome. With particular emphasis on the genetic structure of a progeny virus population rising in vitro, our data show to which extent recombination participates to the genetic diversification of herpesviruses.

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Year:  2009        PMID: 19153224      PMCID: PMC2655596          DOI: 10.1128/JVI.02474-08

Source DB:  PubMed          Journal:  J Virol        ISSN: 0022-538X            Impact factor:   5.103


  52 in total

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Authors:  Frédéric Schynts; François Meurens; Bruno Detry; Alain Vanderplasschen; Etienne Thiry
Journal:  J Virol       Date:  2003-12       Impact factor: 5.103

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10.  Superinfection prevents recombination of the alphaherpesvirus bovine herpesvirus 1.

Authors:  François Meurens; Frédéric Schynts; Günther M Keil; Benoît Muylkens; Alain Vanderplasschen; Pierre Gallego; Etienne Thiry
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  14 in total

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2.  Genetic Diversity of Infectious Laryngotracheitis Virus during In Vivo Coinfection Parallels Viral Replication and Arises from Recombination Hot Spots within the Genome.

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5.  A genome-wide comparative evolutionary analysis of herpes simplex virus type 1 and varicella zoster virus.

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6.  Temperate phages acquire DNA from defective prophages by relaxed homologous recombination: the role of Rad52-like recombinases.

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7.  Development and application of a TaqMan single nucleotide polymorphism genotyping assay to study infectious laryngotracheitis virus recombination in the natural host.

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9.  The HSV-1 exonuclease, UL12, stimulates recombination by a single strand annealing mechanism.

Authors:  April J Schumacher; Kareem N Mohni; Yinan Kan; Eric A Hendrickson; Jeremy M Stark; Sandra K Weller
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10.  A New Approach to Assessing HSV-1 Recombination during Intercellular Spread.

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