Data on the generation of two Nr2e3 mouse models by CRISPR / Cas9D10A nickase

NR2E3 encodes an orphan nuclear receptor that plays a dual function as both transcriptional activator and repressor in photoreceptors, being necessary for cone fate inhibition as well as rod differentiation and homeostasis. Mutations in this gene cause retinitis pigmentosa (RP), enhanced S cone synd...

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Main Authors: Izarbe Aísa-Marín, M. José López-Iniesta, Gemma Marfany
Format: Article
Language:English
Published: Elsevier 2020-12-01
Series:Data in Brief
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2352340920313299
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spelling doaj-4f6a672506b849f0a2236aba72ef48c82020-12-21T04:44:26ZengElsevierData in Brief2352-34092020-12-0133106447Data on the generation of two Nr2e3 mouse models by CRISPR / Cas9D10A nickaseIzarbe Aísa-Marín0M. José López-Iniesta1Gemma Marfany2Department of Genetics, Microbiology and Statistics, Universitat de Barcelona, Avda. Diagonal 643, Barcelona 08028, Spain; CIBERER, ISCIII, Universitat de Barcelona, Barcelona, Spain; Institute of Biomedicine (IBUB, IBUB-IRSJD), Universitat de Barcelona, Barcelona, SpainDepartment of Genetics, Microbiology and Statistics, Universitat de Barcelona, Avda. Diagonal 643, Barcelona 08028, Spain; MaRCU - Molecular and RNA Cancer Unit, Graduate School of Medicine, Kyoto University, Kyoto, JapanDepartment of Genetics, Microbiology and Statistics, Universitat de Barcelona, Avda. Diagonal 643, Barcelona 08028, Spain; CIBERER, ISCIII, Universitat de Barcelona, Barcelona, Spain; Institute of Biomedicine (IBUB, IBUB-IRSJD), Universitat de Barcelona, Barcelona, Spain; Corresponding author at: Department of Genetics, Microbiology and Statistics, Universitat de Barcelona, Avda. Diagonal 643, Barcelona 08028, Spain.NR2E3 encodes an orphan nuclear receptor that plays a dual function as both transcriptional activator and repressor in photoreceptors, being necessary for cone fate inhibition as well as rod differentiation and homeostasis. Mutations in this gene cause retinitis pigmentosa (RP), enhanced S cone syndrome (ESCS) and Goldmann-Favre syndrome (GFS). There is one reported Nr2e3 isoform that contains all 8 exons and a second –previously unreported– shorter isoform, which only spans the first 7 exons and whose function is still unknown. In this data article, we designed and generated two new mouse models by targeting exon 8 of Nr2e3 using the CRISPR/Cas9-D10A nickase in order to dissect the role of the two isoforms in Nr2e3 function and elucidate the different disease mechanisms caused by NR2E3 mutations. This strategy generated several modified alleles that altered the coding sequence of the last exon thereby affecting functional domains of the transcription factor. Allele Δ27 is an in-frame deletion of 27 bp that ablates the dimerization domain, whereas allele ΔE8 (full deletion of exon 8), produces only the short isoform that lacks the dimerization and repressor domains. Morphological and functional alterations of both Δ27 and ΔE8 mutants are reported in the associated research article “Nr2e3 functional domain ablation by CRISPR-Cas9D10A identifies a new isoform and generated Retinitis Pigmentosa and Enhanced S-cone Syndrome models” (Aísa-Marín et al., 2020).http://www.sciencedirect.com/science/article/pii/S2352340920313299Nr2e3CRISPRCas9 D10A nickaseMouse modelsInherited retinal dystrophiesRetinitis pigmentosa
collection DOAJ
language English
format Article
sources DOAJ
author Izarbe Aísa-Marín
M. José López-Iniesta
Gemma Marfany
spellingShingle Izarbe Aísa-Marín
M. José López-Iniesta
Gemma Marfany
Data on the generation of two Nr2e3 mouse models by CRISPR / Cas9D10A nickase
Data in Brief
Nr2e3
CRISPR
Cas9 D10A nickase
Mouse models
Inherited retinal dystrophies
Retinitis pigmentosa
author_facet Izarbe Aísa-Marín
M. José López-Iniesta
Gemma Marfany
author_sort Izarbe Aísa-Marín
title Data on the generation of two Nr2e3 mouse models by CRISPR / Cas9D10A nickase
title_short Data on the generation of two Nr2e3 mouse models by CRISPR / Cas9D10A nickase
title_full Data on the generation of two Nr2e3 mouse models by CRISPR / Cas9D10A nickase
title_fullStr Data on the generation of two Nr2e3 mouse models by CRISPR / Cas9D10A nickase
title_full_unstemmed Data on the generation of two Nr2e3 mouse models by CRISPR / Cas9D10A nickase
title_sort data on the generation of two nr2e3 mouse models by crispr / cas9d10a nickase
publisher Elsevier
series Data in Brief
issn 2352-3409
publishDate 2020-12-01
description NR2E3 encodes an orphan nuclear receptor that plays a dual function as both transcriptional activator and repressor in photoreceptors, being necessary for cone fate inhibition as well as rod differentiation and homeostasis. Mutations in this gene cause retinitis pigmentosa (RP), enhanced S cone syndrome (ESCS) and Goldmann-Favre syndrome (GFS). There is one reported Nr2e3 isoform that contains all 8 exons and a second –previously unreported– shorter isoform, which only spans the first 7 exons and whose function is still unknown. In this data article, we designed and generated two new mouse models by targeting exon 8 of Nr2e3 using the CRISPR/Cas9-D10A nickase in order to dissect the role of the two isoforms in Nr2e3 function and elucidate the different disease mechanisms caused by NR2E3 mutations. This strategy generated several modified alleles that altered the coding sequence of the last exon thereby affecting functional domains of the transcription factor. Allele Δ27 is an in-frame deletion of 27 bp that ablates the dimerization domain, whereas allele ΔE8 (full deletion of exon 8), produces only the short isoform that lacks the dimerization and repressor domains. Morphological and functional alterations of both Δ27 and ΔE8 mutants are reported in the associated research article “Nr2e3 functional domain ablation by CRISPR-Cas9D10A identifies a new isoform and generated Retinitis Pigmentosa and Enhanced S-cone Syndrome models” (Aísa-Marín et al., 2020).
topic Nr2e3
CRISPR
Cas9 D10A nickase
Mouse models
Inherited retinal dystrophies
Retinitis pigmentosa
url http://www.sciencedirect.com/science/article/pii/S2352340920313299
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