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Targeted Disruption of the MORG1 Gene in Mice Causes Embryonic Resorption in Early Phase of Development

The mitogen-activated protein kinase organizer 1 (MORG1) is a scaffold molecule for the ERK signaling pathway, but also binds to prolyl-hydroxylase 3 and modulates HIFα expression. To obtain further insight into the role of MORG1, knockout-mice were generated by homologous recombination. While Morg1...

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Autores principales: Wulf, Sophie, Mizko, Luisa, Herrmann, Karl-Heinz, Sánchez-Carbonell, Marta, Urbach, Anja, Lemke, Cornelius, Berndt, Alexander, Loeffler, Ivonne, Wolf, Gunter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10377003/
https://www.ncbi.nlm.nih.gov/pubmed/37509073
http://dx.doi.org/10.3390/biom13071037
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author Wulf, Sophie
Mizko, Luisa
Herrmann, Karl-Heinz
Sánchez-Carbonell, Marta
Urbach, Anja
Lemke, Cornelius
Berndt, Alexander
Loeffler, Ivonne
Wolf, Gunter
author_facet Wulf, Sophie
Mizko, Luisa
Herrmann, Karl-Heinz
Sánchez-Carbonell, Marta
Urbach, Anja
Lemke, Cornelius
Berndt, Alexander
Loeffler, Ivonne
Wolf, Gunter
author_sort Wulf, Sophie
collection PubMed
description The mitogen-activated protein kinase organizer 1 (MORG1) is a scaffold molecule for the ERK signaling pathway, but also binds to prolyl-hydroxylase 3 and modulates HIFα expression. To obtain further insight into the role of MORG1, knockout-mice were generated by homologous recombination. While Morg1+/− mice developed normally without any apparent phenotype, there were no live-born Morg1−/− knockout offspring, indicating embryonic lethality. The intrauterine death of Morg1−/− embryos is caused by a severe failure to develop brain and other neuronal structures such as the spinal cord and a failure of chorioallantoic fusion. On E8.5, Morg1−/− embryos showed severe underdevelopment and proliferative arrest as indicated by absence of Ki67 expression, impaired placental vascularization and altered phenotype of trophoblast giant cells. On E9.5, the malformed Morg1−/− embryos showed defective turning into the final fetal position and widespread apoptosis in many structures. In the subsequent days, apoptosis and decomposition of embryonic tissue progressed, accompanied by a massive infiltration of inflammatory cells. Developmental aberrancies were accompanied by altered expression of HIF-1/2α and VEGF-A and caspase-3 activation in embryos and extraembryonic tissues. In conclusion, the results suggest a multifactorial process that causes embryonic death in homozygous Morg1 mutant mice, described here, to the best of our knowledge, for the first time.
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spelling pubmed-103770032023-07-29 Targeted Disruption of the MORG1 Gene in Mice Causes Embryonic Resorption in Early Phase of Development Wulf, Sophie Mizko, Luisa Herrmann, Karl-Heinz Sánchez-Carbonell, Marta Urbach, Anja Lemke, Cornelius Berndt, Alexander Loeffler, Ivonne Wolf, Gunter Biomolecules Article The mitogen-activated protein kinase organizer 1 (MORG1) is a scaffold molecule for the ERK signaling pathway, but also binds to prolyl-hydroxylase 3 and modulates HIFα expression. To obtain further insight into the role of MORG1, knockout-mice were generated by homologous recombination. While Morg1+/− mice developed normally without any apparent phenotype, there were no live-born Morg1−/− knockout offspring, indicating embryonic lethality. The intrauterine death of Morg1−/− embryos is caused by a severe failure to develop brain and other neuronal structures such as the spinal cord and a failure of chorioallantoic fusion. On E8.5, Morg1−/− embryos showed severe underdevelopment and proliferative arrest as indicated by absence of Ki67 expression, impaired placental vascularization and altered phenotype of trophoblast giant cells. On E9.5, the malformed Morg1−/− embryos showed defective turning into the final fetal position and widespread apoptosis in many structures. In the subsequent days, apoptosis and decomposition of embryonic tissue progressed, accompanied by a massive infiltration of inflammatory cells. Developmental aberrancies were accompanied by altered expression of HIF-1/2α and VEGF-A and caspase-3 activation in embryos and extraembryonic tissues. In conclusion, the results suggest a multifactorial process that causes embryonic death in homozygous Morg1 mutant mice, described here, to the best of our knowledge, for the first time. MDPI 2023-06-24 /pmc/articles/PMC10377003/ /pubmed/37509073 http://dx.doi.org/10.3390/biom13071037 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wulf, Sophie
Mizko, Luisa
Herrmann, Karl-Heinz
Sánchez-Carbonell, Marta
Urbach, Anja
Lemke, Cornelius
Berndt, Alexander
Loeffler, Ivonne
Wolf, Gunter
Targeted Disruption of the MORG1 Gene in Mice Causes Embryonic Resorption in Early Phase of Development
title Targeted Disruption of the MORG1 Gene in Mice Causes Embryonic Resorption in Early Phase of Development
title_full Targeted Disruption of the MORG1 Gene in Mice Causes Embryonic Resorption in Early Phase of Development
title_fullStr Targeted Disruption of the MORG1 Gene in Mice Causes Embryonic Resorption in Early Phase of Development
title_full_unstemmed Targeted Disruption of the MORG1 Gene in Mice Causes Embryonic Resorption in Early Phase of Development
title_short Targeted Disruption of the MORG1 Gene in Mice Causes Embryonic Resorption in Early Phase of Development
title_sort targeted disruption of the morg1 gene in mice causes embryonic resorption in early phase of development
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10377003/
https://www.ncbi.nlm.nih.gov/pubmed/37509073
http://dx.doi.org/10.3390/biom13071037
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