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A more accurate analysis of maternal effect genes by siRNA electroporation into mouse oocytes

Maternal RNA and proteins accumulate in mouse oocytes and regulate initial developmental stages. Sperm DNA combines with protamine, which is exchanged after fertilization with maternal histones, including H3.3; however, the effect of H3.3 on development post-fertilization remains unclear. Herein, we...

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Autores principales: YAMAMOTO, Takuto, HONDA, Shinnosuke, IDEGUCHI, Issei, SUEMATSU, Motoki, IKEDA, Shuntaro, MINAMI, Naojiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Society for Reproduction and Development 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10085774/
https://www.ncbi.nlm.nih.gov/pubmed/36858514
http://dx.doi.org/10.1262/jrd.2022-122
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author YAMAMOTO, Takuto
HONDA, Shinnosuke
IDEGUCHI, Issei
SUEMATSU, Motoki
IKEDA, Shuntaro
MINAMI, Naojiro
author_facet YAMAMOTO, Takuto
HONDA, Shinnosuke
IDEGUCHI, Issei
SUEMATSU, Motoki
IKEDA, Shuntaro
MINAMI, Naojiro
author_sort YAMAMOTO, Takuto
collection PubMed
description Maternal RNA and proteins accumulate in mouse oocytes and regulate initial developmental stages. Sperm DNA combines with protamine, which is exchanged after fertilization with maternal histones, including H3.3; however, the effect of H3.3 on development post-fertilization remains unclear. Herein, we established an electroporation method to introduce H3.3 siRNA into germinal vesicle (GV)-stage oocytes without removing cumulus cells. Oocyte-attached cumulus cells need to be removed during the traditional microinjection method; however, we confirmed that artificially removing cumulus cells from oocytes reduced fertilization rates, and oocytes originally free of cumulus cells had reduced developmental competence. On introducing H3.3 siRNA at the GV stage, H3.3 was maintained in the maternal pronucleus and second polar body but not in the paternal pronucleus, resulting in embryonic lethality after fertilization. These findings indicate that H3.3 protein was not incorporated into the paternal pronucleus, as it was repeatedly translated and degraded over a relatively short period. Conversely, H3.3 protein incorporated into the maternal genome in the GV stage escaped degradation and remained in the maternal pronucleus after fertilization. This new method of electroporation into GV-stage oocytes without cumulus cell removal is not skill-intensive and is essential for the accurate analysis of maternal effect genes.
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spelling pubmed-100857742023-04-12 A more accurate analysis of maternal effect genes by siRNA electroporation into mouse oocytes YAMAMOTO, Takuto HONDA, Shinnosuke IDEGUCHI, Issei SUEMATSU, Motoki IKEDA, Shuntaro MINAMI, Naojiro J Reprod Dev Original Article Maternal RNA and proteins accumulate in mouse oocytes and regulate initial developmental stages. Sperm DNA combines with protamine, which is exchanged after fertilization with maternal histones, including H3.3; however, the effect of H3.3 on development post-fertilization remains unclear. Herein, we established an electroporation method to introduce H3.3 siRNA into germinal vesicle (GV)-stage oocytes without removing cumulus cells. Oocyte-attached cumulus cells need to be removed during the traditional microinjection method; however, we confirmed that artificially removing cumulus cells from oocytes reduced fertilization rates, and oocytes originally free of cumulus cells had reduced developmental competence. On introducing H3.3 siRNA at the GV stage, H3.3 was maintained in the maternal pronucleus and second polar body but not in the paternal pronucleus, resulting in embryonic lethality after fertilization. These findings indicate that H3.3 protein was not incorporated into the paternal pronucleus, as it was repeatedly translated and degraded over a relatively short period. Conversely, H3.3 protein incorporated into the maternal genome in the GV stage escaped degradation and remained in the maternal pronucleus after fertilization. This new method of electroporation into GV-stage oocytes without cumulus cell removal is not skill-intensive and is essential for the accurate analysis of maternal effect genes. The Society for Reproduction and Development 2023-03-02 2023-04 /pmc/articles/PMC10085774/ /pubmed/36858514 http://dx.doi.org/10.1262/jrd.2022-122 Text en ©2023 Society for Reproduction and Development https://creativecommons.org/licenses/by-nc-nd/4.0/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 Article
YAMAMOTO, Takuto
HONDA, Shinnosuke
IDEGUCHI, Issei
SUEMATSU, Motoki
IKEDA, Shuntaro
MINAMI, Naojiro
A more accurate analysis of maternal effect genes by siRNA electroporation into mouse oocytes
title A more accurate analysis of maternal effect genes by siRNA electroporation into mouse oocytes
title_full A more accurate analysis of maternal effect genes by siRNA electroporation into mouse oocytes
title_fullStr A more accurate analysis of maternal effect genes by siRNA electroporation into mouse oocytes
title_full_unstemmed A more accurate analysis of maternal effect genes by siRNA electroporation into mouse oocytes
title_short A more accurate analysis of maternal effect genes by siRNA electroporation into mouse oocytes
title_sort more accurate analysis of maternal effect genes by sirna electroporation into mouse oocytes
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10085774/
https://www.ncbi.nlm.nih.gov/pubmed/36858514
http://dx.doi.org/10.1262/jrd.2022-122
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