Literature DB >> 21029751

Real time PCR method for simultaneous detection, quantitation and differentiation of capripoxviruses.

Charles Euloge Lamien1, Mamadou Lelenta, Wilfried Goger, Roland Silber, Eeva Tuppurainen, Mirta Matijevic, Antony George Luckins, Adama Diallo.   

Abstract

The genus Capripoxvirus (CaPV) comprises three members namely, sheep poxvirus (SPPV), goat poxvirus (GTPV) and lumpy skin disease virus (LSDV) affecting sheep, goats and cattle, respectively. CaPV infections produce similar symptoms in sheep and goats, and the three viruses cannot be distinguished serologically. Since there are conflicting opinions regarding the host specificity of CaPVs, particularly for goatpox and sheeppox viruses, the development of rapid genotyping tools will facilitate more accurate disease diagnosis and surveillance for better management of capripox outbreaks. This paper describes a species-specific, real time polymerase chain reaction (PCR), based on unique molecular markers that were found in the G-protein-coupled chemokine receptor (GPCR) gene sequences of CaPVs, that uses dual hybridization probes for their simultaneous detection, quantitation and genotyping. The assay can differentiate between CaPV strains based on differences in the melting point temperature (Tm) obtained after fluorescence melting curve analysis (FMCA). It is highly sensitive and presents low intra- and inter-run variation. This real time PCR assay will make a significant contribution to CaPV diagnosis and to the better understanding of the epidemiology of CaPVs by enabling rapid genotyping and gene-based classification of viral strains and unequivocal identification of isolates.
Copyright © 2010 Elsevier B.V. All rights reserved.

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Year:  2010        PMID: 21029751     DOI: 10.1016/j.jviromet.2010.10.014

Source DB:  PubMed          Journal:  J Virol Methods        ISSN: 0166-0934            Impact factor:   2.014


  41 in total

1.  Molecular characterization of Indian sheeppox and goatpox viruses based on RPO30 and GPCR genes.

Authors:  Ramasamy Santhamani; Revanaiah Yogisharadhya; Gnanavel Venkatesan; Sathish Bhadravati Shivachandra; Awadh Bihari Pandey; Muthannan Andavar Ramakrishnan
Journal:  Virus Genes       Date:  2014-06-22       Impact factor: 2.332

2.  Detection and characterization of atypical capripoxviruses among small ruminants in India.

Authors:  Ramasamy Santhamani; Gnanavel Venkatesan; Sanjeevna Kumari Minhas; Sathish Bhadravati Shivachandra; Dhanavelu Muthuchelvan; Awadh Bihari Pandey; Muthannan Andavar Ramakrishnan
Journal:  Virus Genes       Date:  2015-05-14       Impact factor: 2.332

3.  Development and application of real-time PCR for detection of subgroup J avian leukosis virus.

Authors:  Liting Qin; Yulong Gao; Wei Ni; Meiyu Sun; Yongqiang Wang; Chunhong Yin; Xiaole Qi; Honglei Gao; Xiaomei Wang
Journal:  J Clin Microbiol       Date:  2012-10-24       Impact factor: 5.948

4.  Droplet digital PCR for rapid enumeration of viral genomes and particles from cells and animals infected with orthopoxviruses.

Authors:  Jeffrey L Americo; Patricia L Earl; Bernard Moss
Journal:  Virology       Date:  2017-08-10       Impact factor: 3.616

5.  Development of a loop-mediated isothermal amplification assay for rapid detection of capripoxviruses.

Authors:  Amaresh Das; Shawn Babiuk; Michael T McIntosh
Journal:  J Clin Microbiol       Date:  2012-02-22       Impact factor: 5.948

6.  Assessment of the control measures of the category A diseases of Animal Health Law: sheep and goat pox.

Authors:  Søren Saxmose Nielsen; Julio Alvarez; Dominique Joseph Bicout; Paolo Calistri; Elisabetta Canali; Julian Ashley Drewe; Bruno Garin-Bastuji; José Luis Gonzales Rojas; Christian Gortázar; Mette Herskin; Virginie Michel; Miguel Ángel Miranda Chueca; Barbara Padalino; Paolo Pasquali; Liisa Helena Sihvonen; Hans Spoolder; Karl Ståhl; Antonio Velarde; Arvo Viltrop; Christoph Winckler; Kris De Clercq; Simon Gubbins; Inma Aznar; Alessandro Broglia
Journal:  EFSA J       Date:  2021-12-27

Review 7.  Poxviruses and the evolution of host range and virulence.

Authors:  Sherry L Haller; Chen Peng; Grant McFadden; Stefan Rothenburg
Journal:  Infect Genet Evol       Date:  2013-10-24       Impact factor: 3.342

8.  An Immunoperoxidase Monolayer Assay (IPMA) for the detection of lumpy skin disease antibodies.

Authors:  Andy Haegeman; Ilse De Leeuw; Laurent Mostin; Willem Van Campe; Laetitia Aerts; Maria Vastag; Kris De Clercq
Journal:  J Virol Methods       Date:  2019-12-16       Impact factor: 2.014

Review 9.  Lumpy skin disease, an emerging transboundary viral disease: A review.

Authors:  Fatemeh Namazi; Azizollah Khodakaram Tafti
Journal:  Vet Med Sci       Date:  2021-02-01

10.  Assessment of the control measures for category A diseases of Animal Health Law: Lumpy Skin Disease.

Authors:  Søren Saxmose Nielsen; Julio Alvarez; Dominique Joseph Bicout; Paolo Calistri; Elisabetta Canali; Julian Ashley Drewe; Bruno Garin-Bastuji; José Luis Gonzales Rojas; Christian Gortázar Schmidt; Mette Herskin; Virginie Michel; Miguel Ángel Miranda Chueca; Barbara Padalino; Paolo Pasquali; Liisa Helena Sihvonen; Hans Spoolder; Karl Ståhl; Antonio Velarde; Arvo Viltrop; Christoph Winckler; Kris De Clercq; Simon Gubbins; Eyal Klement; Jan Arend Stegeman; Sotiria-Eleni Antoniou; Inma Aznar; Alessandro Broglia; Yves Van der Stede; Gabriele Zancanaro; Helen Clare Roberts
Journal:  EFSA J       Date:  2022-01-24
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