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Generation of bicistronic reporter knockin mice for visualizing germ layers

Knockout mouse models are commonly used in developmental biology to investigate the functions of specific genes, and the knowledge obtained in such models has yielded insights into the molecular mechanisms underlying developmental processes. Gastrulation is the most dynamic process in embryogenesis...

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Autores principales: Suzuki, Hayate, Dinh, Tra Thi Huong, Daitoku, Yoko, Tanimoto, Yoko, Kato, Kanako, Azami, Takuya, Ema, Masatsugu, Murata, Kazuya, Mizuno, Seiya, Sugiyama, Fumihiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Japanese Association for Laboratory Animal Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6842805/
https://www.ncbi.nlm.nih.gov/pubmed/31189761
http://dx.doi.org/10.1538/expanim.19-0031
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author Suzuki, Hayate
Dinh, Tra Thi Huong
Daitoku, Yoko
Tanimoto, Yoko
Kato, Kanako
Azami, Takuya
Ema, Masatsugu
Murata, Kazuya
Mizuno, Seiya
Sugiyama, Fumihiro
author_facet Suzuki, Hayate
Dinh, Tra Thi Huong
Daitoku, Yoko
Tanimoto, Yoko
Kato, Kanako
Azami, Takuya
Ema, Masatsugu
Murata, Kazuya
Mizuno, Seiya
Sugiyama, Fumihiro
author_sort Suzuki, Hayate
collection PubMed
description Knockout mouse models are commonly used in developmental biology to investigate the functions of specific genes, and the knowledge obtained in such models has yielded insights into the molecular mechanisms underlying developmental processes. Gastrulation is the most dynamic process in embryogenesis during which differentiation into three germ layers occurs. However, the functions of genes involved in gastrulation are not completely understood. One major reason for this is the technical difficulty of embryo analysis to understand germ layer location. We have generated three reporter mouse strains in which the germ layers are distinguished by different fluorescent reporters. Using CRISPR/Cas9 genome editing in mouse zygotes, the fluorescent reporter genes, EGFP, tdTomato, and TagBFP including 2A peptide sequences were knocked into the appropriate sites before the stop codon of the Sox17 (endoderm marker), Otx2 (ectoderm marker), and T (mesoderm marker) genes, respectively. Founder mice were successfully generated in the Sox17-2A-EGFP, Otx2-2A-tdTomato, and T-2A-TagBFP knockin reporter strains. Further, homozygous knockin mice of all strains appeared morphologically normal and were fertile. On stereomicroscopic analysis, fluorescent signals were detected in a germ layer-specific manner from heterozygous embryos at embryonic day (E) 6.5–8.5 in all strains, and were immunohistochemically demonstrated to match their respective germ layer-specific marker protein at E7.5. Taken together, these observations suggest that the Sox17-2A-EGFP, Otx2-2A-tdTomato, and T-2A-TagBFP knockin reporter mice may be useful for comprehensive analysis of gene function in germ layer formation.
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spelling pubmed-68428052019-11-13 Generation of bicistronic reporter knockin mice for visualizing germ layers Suzuki, Hayate Dinh, Tra Thi Huong Daitoku, Yoko Tanimoto, Yoko Kato, Kanako Azami, Takuya Ema, Masatsugu Murata, Kazuya Mizuno, Seiya Sugiyama, Fumihiro Exp Anim Original Knockout mouse models are commonly used in developmental biology to investigate the functions of specific genes, and the knowledge obtained in such models has yielded insights into the molecular mechanisms underlying developmental processes. Gastrulation is the most dynamic process in embryogenesis during which differentiation into three germ layers occurs. However, the functions of genes involved in gastrulation are not completely understood. One major reason for this is the technical difficulty of embryo analysis to understand germ layer location. We have generated three reporter mouse strains in which the germ layers are distinguished by different fluorescent reporters. Using CRISPR/Cas9 genome editing in mouse zygotes, the fluorescent reporter genes, EGFP, tdTomato, and TagBFP including 2A peptide sequences were knocked into the appropriate sites before the stop codon of the Sox17 (endoderm marker), Otx2 (ectoderm marker), and T (mesoderm marker) genes, respectively. Founder mice were successfully generated in the Sox17-2A-EGFP, Otx2-2A-tdTomato, and T-2A-TagBFP knockin reporter strains. Further, homozygous knockin mice of all strains appeared morphologically normal and were fertile. On stereomicroscopic analysis, fluorescent signals were detected in a germ layer-specific manner from heterozygous embryos at embryonic day (E) 6.5–8.5 in all strains, and were immunohistochemically demonstrated to match their respective germ layer-specific marker protein at E7.5. Taken together, these observations suggest that the Sox17-2A-EGFP, Otx2-2A-tdTomato, and T-2A-TagBFP knockin reporter mice may be useful for comprehensive analysis of gene function in germ layer formation. Japanese Association for Laboratory Animal Science 2019-06-13 2019 /pmc/articles/PMC6842805/ /pubmed/31189761 http://dx.doi.org/10.1538/expanim.19-0031 Text en ©2019 Japanese Association for Laboratory Animal Science This is an open-access article distributed under the terms of the Creative Commons Attribution Non-Commercial No Derivatives (by-nc-nd) License. (CC-BY-NC-ND 4.0: https://creativecommons.org/licenses/by-nc-nd/4.0/)
spellingShingle Original
Suzuki, Hayate
Dinh, Tra Thi Huong
Daitoku, Yoko
Tanimoto, Yoko
Kato, Kanako
Azami, Takuya
Ema, Masatsugu
Murata, Kazuya
Mizuno, Seiya
Sugiyama, Fumihiro
Generation of bicistronic reporter knockin mice for visualizing germ layers
title Generation of bicistronic reporter knockin mice for visualizing germ layers
title_full Generation of bicistronic reporter knockin mice for visualizing germ layers
title_fullStr Generation of bicistronic reporter knockin mice for visualizing germ layers
title_full_unstemmed Generation of bicistronic reporter knockin mice for visualizing germ layers
title_short Generation of bicistronic reporter knockin mice for visualizing germ layers
title_sort generation of bicistronic reporter knockin mice for visualizing germ layers
topic Original
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6842805/
https://www.ncbi.nlm.nih.gov/pubmed/31189761
http://dx.doi.org/10.1538/expanim.19-0031
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