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Evaluating whole genome sequence data from the Genetic Absence Epilepsy Rat from Strasbourg and its related non-epileptic strain

OBJECTIVE: The Genetic Absence Epilepsy Rats from Strasbourg (GAERS) are an inbreed Wistar rat strain widely used as a model of genetic generalised epilepsy with absence seizures. As in humans, the genetic architecture that results in genetic generalized epilepsy in GAERS is poorly understood. Here...

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Autores principales: Casillas-Espinosa, Pablo M., Powell, Kim L., Zhu, Mingfu, Campbell, C. Ryan, Maia, Jessica M., Ren, Zhong, Jones, Nigel C., O’Brien, Terence J., Petrovski, Slavé
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5510834/
https://www.ncbi.nlm.nih.gov/pubmed/28708842
http://dx.doi.org/10.1371/journal.pone.0179924
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author Casillas-Espinosa, Pablo M.
Powell, Kim L.
Zhu, Mingfu
Campbell, C. Ryan
Maia, Jessica M.
Ren, Zhong
Jones, Nigel C.
O’Brien, Terence J.
Petrovski, Slavé
author_facet Casillas-Espinosa, Pablo M.
Powell, Kim L.
Zhu, Mingfu
Campbell, C. Ryan
Maia, Jessica M.
Ren, Zhong
Jones, Nigel C.
O’Brien, Terence J.
Petrovski, Slavé
author_sort Casillas-Espinosa, Pablo M.
collection PubMed
description OBJECTIVE: The Genetic Absence Epilepsy Rats from Strasbourg (GAERS) are an inbreed Wistar rat strain widely used as a model of genetic generalised epilepsy with absence seizures. As in humans, the genetic architecture that results in genetic generalized epilepsy in GAERS is poorly understood. Here we present the strain-specific variants found among the epileptic GAERS and their related Non-Epileptic Control (NEC) strain. The GAERS and NEC represent a powerful opportunity to identify neurobiological factors that are associated with the genetic generalised epilepsy phenotype. METHODS: We performed whole genome sequencing on adult epileptic GAERS and adult NEC rats, a strain derived from the same original Wistar colony. We also generated whole genome sequencing on four double-crossed (GAERS with NEC) F(2) selected for high-seizing (n = 2) and non-seizing (n = 2) phenotypes. RESULTS: Specific to the GAERS genome, we identified 1.12 million single nucleotide variants, 296.5K short insertion-deletions, and 354 putative copy number variants that result in complete or partial loss/duplication of 41 genes. Of the GAERS-specific variants that met high quality criteria, 25 are annotated as stop codon gain/loss, 56 as putative essential splice sites, and 56 indels are predicted to result in a frameshift. Subsequent screening against the two F(2) progeny sequenced for having the highest and two F(2) progeny for having the lowest seizure burden identified only the selected Cacna1h GAERS-private protein-coding variant as exclusively co-segregating with the two high-seizing F(2) rats. SIGNIFICANCE: This study highlights an approach for using whole genome sequencing to narrow down to a manageable candidate list of genetic variants in a complex genetic epilepsy animal model, and suggests utility of this sequencing design to investigate other spontaneously occurring animal models of human disease.
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spelling pubmed-55108342017-08-07 Evaluating whole genome sequence data from the Genetic Absence Epilepsy Rat from Strasbourg and its related non-epileptic strain Casillas-Espinosa, Pablo M. Powell, Kim L. Zhu, Mingfu Campbell, C. Ryan Maia, Jessica M. Ren, Zhong Jones, Nigel C. O’Brien, Terence J. Petrovski, Slavé PLoS One Research Article OBJECTIVE: The Genetic Absence Epilepsy Rats from Strasbourg (GAERS) are an inbreed Wistar rat strain widely used as a model of genetic generalised epilepsy with absence seizures. As in humans, the genetic architecture that results in genetic generalized epilepsy in GAERS is poorly understood. Here we present the strain-specific variants found among the epileptic GAERS and their related Non-Epileptic Control (NEC) strain. The GAERS and NEC represent a powerful opportunity to identify neurobiological factors that are associated with the genetic generalised epilepsy phenotype. METHODS: We performed whole genome sequencing on adult epileptic GAERS and adult NEC rats, a strain derived from the same original Wistar colony. We also generated whole genome sequencing on four double-crossed (GAERS with NEC) F(2) selected for high-seizing (n = 2) and non-seizing (n = 2) phenotypes. RESULTS: Specific to the GAERS genome, we identified 1.12 million single nucleotide variants, 296.5K short insertion-deletions, and 354 putative copy number variants that result in complete or partial loss/duplication of 41 genes. Of the GAERS-specific variants that met high quality criteria, 25 are annotated as stop codon gain/loss, 56 as putative essential splice sites, and 56 indels are predicted to result in a frameshift. Subsequent screening against the two F(2) progeny sequenced for having the highest and two F(2) progeny for having the lowest seizure burden identified only the selected Cacna1h GAERS-private protein-coding variant as exclusively co-segregating with the two high-seizing F(2) rats. SIGNIFICANCE: This study highlights an approach for using whole genome sequencing to narrow down to a manageable candidate list of genetic variants in a complex genetic epilepsy animal model, and suggests utility of this sequencing design to investigate other spontaneously occurring animal models of human disease. Public Library of Science 2017-07-14 /pmc/articles/PMC5510834/ /pubmed/28708842 http://dx.doi.org/10.1371/journal.pone.0179924 Text en © 2017 Casillas-Espinosa 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Casillas-Espinosa, Pablo M.
Powell, Kim L.
Zhu, Mingfu
Campbell, C. Ryan
Maia, Jessica M.
Ren, Zhong
Jones, Nigel C.
O’Brien, Terence J.
Petrovski, Slavé
Evaluating whole genome sequence data from the Genetic Absence Epilepsy Rat from Strasbourg and its related non-epileptic strain
title Evaluating whole genome sequence data from the Genetic Absence Epilepsy Rat from Strasbourg and its related non-epileptic strain
title_full Evaluating whole genome sequence data from the Genetic Absence Epilepsy Rat from Strasbourg and its related non-epileptic strain
title_fullStr Evaluating whole genome sequence data from the Genetic Absence Epilepsy Rat from Strasbourg and its related non-epileptic strain
title_full_unstemmed Evaluating whole genome sequence data from the Genetic Absence Epilepsy Rat from Strasbourg and its related non-epileptic strain
title_short Evaluating whole genome sequence data from the Genetic Absence Epilepsy Rat from Strasbourg and its related non-epileptic strain
title_sort evaluating whole genome sequence data from the genetic absence epilepsy rat from strasbourg and its related non-epileptic strain
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5510834/
https://www.ncbi.nlm.nih.gov/pubmed/28708842
http://dx.doi.org/10.1371/journal.pone.0179924
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