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Ablation of ZC3H11A causes early embryonic lethality and dysregulation of metabolic processes

ZC3H11A (zinc finger CCCH domain–containing protein 11A) is a stress-induced mRNA-binding protein required for efficient growth of nuclear-replicating viruses. The cellular functions of ZC3H11A during embryonic development are unknown. Here, we report the generation and phenotypic characterization o...

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Autores principales: Younis, Shady, Jouneau, Alice, Larsson, Mårten, Oudin, Jean-Francois, Adenot, Pierre, Omar, Jihad, Brochard, Vincent, Andersson, Leif
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10266022/
https://www.ncbi.nlm.nih.gov/pubmed/37252988
http://dx.doi.org/10.1073/pnas.2216799120
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author Younis, Shady
Jouneau, Alice
Larsson, Mårten
Oudin, Jean-Francois
Adenot, Pierre
Omar, Jihad
Brochard, Vincent
Andersson, Leif
author_facet Younis, Shady
Jouneau, Alice
Larsson, Mårten
Oudin, Jean-Francois
Adenot, Pierre
Omar, Jihad
Brochard, Vincent
Andersson, Leif
author_sort Younis, Shady
collection PubMed
description ZC3H11A (zinc finger CCCH domain–containing protein 11A) is a stress-induced mRNA-binding protein required for efficient growth of nuclear-replicating viruses. The cellular functions of ZC3H11A during embryonic development are unknown. Here, we report the generation and phenotypic characterization of Zc3h11a knockout (KO) mice. Heterozygous null Zc3h11a mice were born at the expected frequency without distinguishable phenotypic differences compared with wild-type mice. In contrast, homozygous null Zc3h11a mice were missing, indicating that Zc3h11a is crucial for embryonic viability and survival. Zc3h11a (–/–) embryos were detected at the expected Mendelian ratios up to late preimplantation stage (E4.5). However, phenotypic characterization at E6.5 revealed degeneration of Zc3h11a (–/–) embryos, indicating developmental defects around the time of implantation. Transcriptomic analyses documented a dysregulation of glycolysis and fatty acid metabolic pathways in Zc3h11a(–/–) embryos at E4.5. Proteomic analysis indicated a tight interaction between ZC3H11A and mRNA-export proteins in embryonic stem cells. CLIP-seq analysis demonstrated that ZC3H11A binds a subset of mRNA transcripts that are critical for metabolic regulation of embryonic cells. Furthermore, embryonic stem cells with an induced deletion of Zc3h11a display an impaired differentiation toward epiblast-like cells and impaired mitochondrial membrane potential. Altogether, the results show that ZC3H11A is participating in export and posttranscriptional regulation of selected mRNA transcripts required to maintain metabolic processes in embryonic cells. While ZC3H11A is essential for the viability of the early mouse embryo, inactivation of Zc3h11a expression in adult tissues using a conditional KO did not lead to obvious phenotypic defects.
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spelling pubmed-102660222023-06-15 Ablation of ZC3H11A causes early embryonic lethality and dysregulation of metabolic processes Younis, Shady Jouneau, Alice Larsson, Mårten Oudin, Jean-Francois Adenot, Pierre Omar, Jihad Brochard, Vincent Andersson, Leif Proc Natl Acad Sci U S A Biological Sciences ZC3H11A (zinc finger CCCH domain–containing protein 11A) is a stress-induced mRNA-binding protein required for efficient growth of nuclear-replicating viruses. The cellular functions of ZC3H11A during embryonic development are unknown. Here, we report the generation and phenotypic characterization of Zc3h11a knockout (KO) mice. Heterozygous null Zc3h11a mice were born at the expected frequency without distinguishable phenotypic differences compared with wild-type mice. In contrast, homozygous null Zc3h11a mice were missing, indicating that Zc3h11a is crucial for embryonic viability and survival. Zc3h11a (–/–) embryos were detected at the expected Mendelian ratios up to late preimplantation stage (E4.5). However, phenotypic characterization at E6.5 revealed degeneration of Zc3h11a (–/–) embryos, indicating developmental defects around the time of implantation. Transcriptomic analyses documented a dysregulation of glycolysis and fatty acid metabolic pathways in Zc3h11a(–/–) embryos at E4.5. Proteomic analysis indicated a tight interaction between ZC3H11A and mRNA-export proteins in embryonic stem cells. CLIP-seq analysis demonstrated that ZC3H11A binds a subset of mRNA transcripts that are critical for metabolic regulation of embryonic cells. Furthermore, embryonic stem cells with an induced deletion of Zc3h11a display an impaired differentiation toward epiblast-like cells and impaired mitochondrial membrane potential. Altogether, the results show that ZC3H11A is participating in export and posttranscriptional regulation of selected mRNA transcripts required to maintain metabolic processes in embryonic cells. While ZC3H11A is essential for the viability of the early mouse embryo, inactivation of Zc3h11a expression in adult tissues using a conditional KO did not lead to obvious phenotypic defects. National Academy of Sciences 2023-05-30 2023-06-06 /pmc/articles/PMC10266022/ /pubmed/37252988 http://dx.doi.org/10.1073/pnas.2216799120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Younis, Shady
Jouneau, Alice
Larsson, Mårten
Oudin, Jean-Francois
Adenot, Pierre
Omar, Jihad
Brochard, Vincent
Andersson, Leif
Ablation of ZC3H11A causes early embryonic lethality and dysregulation of metabolic processes
title Ablation of ZC3H11A causes early embryonic lethality and dysregulation of metabolic processes
title_full Ablation of ZC3H11A causes early embryonic lethality and dysregulation of metabolic processes
title_fullStr Ablation of ZC3H11A causes early embryonic lethality and dysregulation of metabolic processes
title_full_unstemmed Ablation of ZC3H11A causes early embryonic lethality and dysregulation of metabolic processes
title_short Ablation of ZC3H11A causes early embryonic lethality and dysregulation of metabolic processes
title_sort ablation of zc3h11a causes early embryonic lethality and dysregulation of metabolic processes
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10266022/
https://www.ncbi.nlm.nih.gov/pubmed/37252988
http://dx.doi.org/10.1073/pnas.2216799120
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