Cargando…

Identification of Multipath Genes Differentially Expressed in Pathway-Targeted Microarrays in Zebrafish Infected and Surviving Spring Viremia Carp Virus (SVCV) Suggest Preventive Drug Candidates

Spring viremia carp virus (SVCV) is a rhabdovirus seasonally affecting warm-water cyprinid fish farming causing high impacts in worldwide economy. Because of the lack of effective preventive treatments, the identification of multipath genes involved in SVCV infection might be an alternative to explo...

Descripción completa

Detalles Bibliográficos
Autores principales: Encinas, Paloma, Garcia-Valtanen, Pablo, Chinchilla, Blanca, Gomez-Casado, Eduardo, Estepa, Amparo, Coll, Julio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3772095/
https://www.ncbi.nlm.nih.gov/pubmed/24069208
http://dx.doi.org/10.1371/journal.pone.0073553
_version_ 1782284282974175232
author Encinas, Paloma
Garcia-Valtanen, Pablo
Chinchilla, Blanca
Gomez-Casado, Eduardo
Estepa, Amparo
Coll, Julio
author_facet Encinas, Paloma
Garcia-Valtanen, Pablo
Chinchilla, Blanca
Gomez-Casado, Eduardo
Estepa, Amparo
Coll, Julio
author_sort Encinas, Paloma
collection PubMed
description Spring viremia carp virus (SVCV) is a rhabdovirus seasonally affecting warm-water cyprinid fish farming causing high impacts in worldwide economy. Because of the lack of effective preventive treatments, the identification of multipath genes involved in SVCV infection might be an alternative to explore the possibilities of using drugs for seasonal prevention of this fish disease. Because the zebrafish (Danio rerio) is a cyprinid susceptible to SVCV and their genetics and genome sequence are well advanced, it has been chosen as a model for SVCV infections. We have used newly designed pathway-targeted microarrays 3-4-fold enriched for immune/infection functional-relevant probes by using zebrafish orthologous to human genes from selected pathways of the Kyoto Encyclopedia of Genes and Genomes (KEGG). The comparative analysis of differential expression of genes through 20 pathways in 2-day exposed or 30-day survivors of SVCV infection allowed the identification of 16 multipath genes common to more than 6 pathways. In addition, receptors (Toll-like, B-cell, T-cell, RIG1-like) as well as viral RNA infection pathways were identified as the most important human-like pathways targeted by SVCV infection. Furthermore, by using bioinformatic tools to compare the promoter sequences corresponding to up and downregulated multipath gene groups, we identified putative common transcription factors which might be controlling such responses in a coordinated manner. Possible drug candidates to be tested in fish, can be identified now through search of data bases among those associated with the human orthologous to the zebrafish multipath genes. With the use of pathway-targeted microarrays, we identified some of the most important genes and transcription factors which might be implicated in viral shutoff and/or host survival responses after SVCV infection. These results could contribute to develop novel drug-based prevention methods and consolidate the zebrafish/SVCV as a model for vertebrate viral diseases.
format Online
Article
Text
id pubmed-3772095
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-37720952013-09-25 Identification of Multipath Genes Differentially Expressed in Pathway-Targeted Microarrays in Zebrafish Infected and Surviving Spring Viremia Carp Virus (SVCV) Suggest Preventive Drug Candidates Encinas, Paloma Garcia-Valtanen, Pablo Chinchilla, Blanca Gomez-Casado, Eduardo Estepa, Amparo Coll, Julio PLoS One Research Article Spring viremia carp virus (SVCV) is a rhabdovirus seasonally affecting warm-water cyprinid fish farming causing high impacts in worldwide economy. Because of the lack of effective preventive treatments, the identification of multipath genes involved in SVCV infection might be an alternative to explore the possibilities of using drugs for seasonal prevention of this fish disease. Because the zebrafish (Danio rerio) is a cyprinid susceptible to SVCV and their genetics and genome sequence are well advanced, it has been chosen as a model for SVCV infections. We have used newly designed pathway-targeted microarrays 3-4-fold enriched for immune/infection functional-relevant probes by using zebrafish orthologous to human genes from selected pathways of the Kyoto Encyclopedia of Genes and Genomes (KEGG). The comparative analysis of differential expression of genes through 20 pathways in 2-day exposed or 30-day survivors of SVCV infection allowed the identification of 16 multipath genes common to more than 6 pathways. In addition, receptors (Toll-like, B-cell, T-cell, RIG1-like) as well as viral RNA infection pathways were identified as the most important human-like pathways targeted by SVCV infection. Furthermore, by using bioinformatic tools to compare the promoter sequences corresponding to up and downregulated multipath gene groups, we identified putative common transcription factors which might be controlling such responses in a coordinated manner. Possible drug candidates to be tested in fish, can be identified now through search of data bases among those associated with the human orthologous to the zebrafish multipath genes. With the use of pathway-targeted microarrays, we identified some of the most important genes and transcription factors which might be implicated in viral shutoff and/or host survival responses after SVCV infection. These results could contribute to develop novel drug-based prevention methods and consolidate the zebrafish/SVCV as a model for vertebrate viral diseases. Public Library of Science 2013-09-12 /pmc/articles/PMC3772095/ /pubmed/24069208 http://dx.doi.org/10.1371/journal.pone.0073553 Text en © 2013 Encinas et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Encinas, Paloma
Garcia-Valtanen, Pablo
Chinchilla, Blanca
Gomez-Casado, Eduardo
Estepa, Amparo
Coll, Julio
Identification of Multipath Genes Differentially Expressed in Pathway-Targeted Microarrays in Zebrafish Infected and Surviving Spring Viremia Carp Virus (SVCV) Suggest Preventive Drug Candidates
title Identification of Multipath Genes Differentially Expressed in Pathway-Targeted Microarrays in Zebrafish Infected and Surviving Spring Viremia Carp Virus (SVCV) Suggest Preventive Drug Candidates
title_full Identification of Multipath Genes Differentially Expressed in Pathway-Targeted Microarrays in Zebrafish Infected and Surviving Spring Viremia Carp Virus (SVCV) Suggest Preventive Drug Candidates
title_fullStr Identification of Multipath Genes Differentially Expressed in Pathway-Targeted Microarrays in Zebrafish Infected and Surviving Spring Viremia Carp Virus (SVCV) Suggest Preventive Drug Candidates
title_full_unstemmed Identification of Multipath Genes Differentially Expressed in Pathway-Targeted Microarrays in Zebrafish Infected and Surviving Spring Viremia Carp Virus (SVCV) Suggest Preventive Drug Candidates
title_short Identification of Multipath Genes Differentially Expressed in Pathway-Targeted Microarrays in Zebrafish Infected and Surviving Spring Viremia Carp Virus (SVCV) Suggest Preventive Drug Candidates
title_sort identification of multipath genes differentially expressed in pathway-targeted microarrays in zebrafish infected and surviving spring viremia carp virus (svcv) suggest preventive drug candidates
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3772095/
https://www.ncbi.nlm.nih.gov/pubmed/24069208
http://dx.doi.org/10.1371/journal.pone.0073553
work_keys_str_mv AT encinaspaloma identificationofmultipathgenesdifferentiallyexpressedinpathwaytargetedmicroarraysinzebrafishinfectedandsurvivingspringviremiacarpvirussvcvsuggestpreventivedrugcandidates
AT garciavaltanenpablo identificationofmultipathgenesdifferentiallyexpressedinpathwaytargetedmicroarraysinzebrafishinfectedandsurvivingspringviremiacarpvirussvcvsuggestpreventivedrugcandidates
AT chinchillablanca identificationofmultipathgenesdifferentiallyexpressedinpathwaytargetedmicroarraysinzebrafishinfectedandsurvivingspringviremiacarpvirussvcvsuggestpreventivedrugcandidates
AT gomezcasadoeduardo identificationofmultipathgenesdifferentiallyexpressedinpathwaytargetedmicroarraysinzebrafishinfectedandsurvivingspringviremiacarpvirussvcvsuggestpreventivedrugcandidates
AT estepaamparo identificationofmultipathgenesdifferentiallyexpressedinpathwaytargetedmicroarraysinzebrafishinfectedandsurvivingspringviremiacarpvirussvcvsuggestpreventivedrugcandidates
AT colljulio identificationofmultipathgenesdifferentiallyexpressedinpathwaytargetedmicroarraysinzebrafishinfectedandsurvivingspringviremiacarpvirussvcvsuggestpreventivedrugcandidates