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GGPP-Mediated Protein Geranylgeranylation in Oocyte Is Essential for the Establishment of Oocyte-Granulosa Cell Communication and Primary-Secondary Follicle Transition in Mouse Ovary

Folliculogenesis is a progressive and highly regulated process, which is essential to provide ova for later reproductive life, requires the bidirectional communication between the oocyte and granulosa cells. This physical connection-mediated communication conveys not only the signals from the oocyte...

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Autores principales: Jiang, Chen, Diao, Fan, Sang, Yong-Juan, Xu, Na, Zhu, Rui-Lou, Wang, Xiu-Xing, Chen, Zhong, Tao, Wei-Wei, Yao, Bing, Sun, Hai-Xiang, Huang, Xing-Xu, Xue, Bin, Li, Chao-Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5224981/
https://www.ncbi.nlm.nih.gov/pubmed/28072828
http://dx.doi.org/10.1371/journal.pgen.1006535
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author Jiang, Chen
Diao, Fan
Sang, Yong-Juan
Xu, Na
Zhu, Rui-Lou
Wang, Xiu-Xing
Chen, Zhong
Tao, Wei-Wei
Yao, Bing
Sun, Hai-Xiang
Huang, Xing-Xu
Xue, Bin
Li, Chao-Jun
author_facet Jiang, Chen
Diao, Fan
Sang, Yong-Juan
Xu, Na
Zhu, Rui-Lou
Wang, Xiu-Xing
Chen, Zhong
Tao, Wei-Wei
Yao, Bing
Sun, Hai-Xiang
Huang, Xing-Xu
Xue, Bin
Li, Chao-Jun
author_sort Jiang, Chen
collection PubMed
description Folliculogenesis is a progressive and highly regulated process, which is essential to provide ova for later reproductive life, requires the bidirectional communication between the oocyte and granulosa cells. This physical connection-mediated communication conveys not only the signals from the oocyte to granulosa cells that regulate their proliferation but also metabolites from the granulosa cells to the oocyte for biosynthesis. However, the underlying mechanism of establishing this communication is largely unknown. Here, we report that oocyte geranylgeranyl diphosphate (GGPP), a metabolic intermediate involved in protein geranylgeranylation, is required to establish the oocyte-granulosa cell communication. GGPP and geranylgeranyl diphosphate synthase (Ggpps) levels in oocytes increased during early follicular development. The selective depletion of GGPP in mouse oocytes impaired the proliferation of granulosa cells, primary-secondary follicle transition and female fertility. Mechanistically, GGPP depletion inhibited Rho GTPase geranylgeranylation and its GTPase activity, which was responsible for the accumulation of cell junction proteins in the oocyte cytoplasm and the failure to maintain physical connection between oocyte and granulosa cells. GGPP ablation also blocked Rab27a geranylgeranylation, which might account for the impaired secretion of oocyte materials such as Gdf9. Moreover, GGPP administration restored the defects in oocyte-granulosa cell contact, granulosa cell proliferation and primary-secondary follicle transition in Ggpps depletion mice. Our study provides the evidence that GGPP-mediated protein geranylgeranylation contributes to the establishment of oocyte-granulosa cell communication and then regulates the primary-secondary follicle transition, a key phase of folliculogenesis essential for female reproductive function.
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spelling pubmed-52249812017-01-31 GGPP-Mediated Protein Geranylgeranylation in Oocyte Is Essential for the Establishment of Oocyte-Granulosa Cell Communication and Primary-Secondary Follicle Transition in Mouse Ovary Jiang, Chen Diao, Fan Sang, Yong-Juan Xu, Na Zhu, Rui-Lou Wang, Xiu-Xing Chen, Zhong Tao, Wei-Wei Yao, Bing Sun, Hai-Xiang Huang, Xing-Xu Xue, Bin Li, Chao-Jun PLoS Genet Research Article Folliculogenesis is a progressive and highly regulated process, which is essential to provide ova for later reproductive life, requires the bidirectional communication between the oocyte and granulosa cells. This physical connection-mediated communication conveys not only the signals from the oocyte to granulosa cells that regulate their proliferation but also metabolites from the granulosa cells to the oocyte for biosynthesis. However, the underlying mechanism of establishing this communication is largely unknown. Here, we report that oocyte geranylgeranyl diphosphate (GGPP), a metabolic intermediate involved in protein geranylgeranylation, is required to establish the oocyte-granulosa cell communication. GGPP and geranylgeranyl diphosphate synthase (Ggpps) levels in oocytes increased during early follicular development. The selective depletion of GGPP in mouse oocytes impaired the proliferation of granulosa cells, primary-secondary follicle transition and female fertility. Mechanistically, GGPP depletion inhibited Rho GTPase geranylgeranylation and its GTPase activity, which was responsible for the accumulation of cell junction proteins in the oocyte cytoplasm and the failure to maintain physical connection between oocyte and granulosa cells. GGPP ablation also blocked Rab27a geranylgeranylation, which might account for the impaired secretion of oocyte materials such as Gdf9. Moreover, GGPP administration restored the defects in oocyte-granulosa cell contact, granulosa cell proliferation and primary-secondary follicle transition in Ggpps depletion mice. Our study provides the evidence that GGPP-mediated protein geranylgeranylation contributes to the establishment of oocyte-granulosa cell communication and then regulates the primary-secondary follicle transition, a key phase of folliculogenesis essential for female reproductive function. Public Library of Science 2017-01-10 /pmc/articles/PMC5224981/ /pubmed/28072828 http://dx.doi.org/10.1371/journal.pgen.1006535 Text en © 2017 Jiang et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Jiang, Chen
Diao, Fan
Sang, Yong-Juan
Xu, Na
Zhu, Rui-Lou
Wang, Xiu-Xing
Chen, Zhong
Tao, Wei-Wei
Yao, Bing
Sun, Hai-Xiang
Huang, Xing-Xu
Xue, Bin
Li, Chao-Jun
GGPP-Mediated Protein Geranylgeranylation in Oocyte Is Essential for the Establishment of Oocyte-Granulosa Cell Communication and Primary-Secondary Follicle Transition in Mouse Ovary
title GGPP-Mediated Protein Geranylgeranylation in Oocyte Is Essential for the Establishment of Oocyte-Granulosa Cell Communication and Primary-Secondary Follicle Transition in Mouse Ovary
title_full GGPP-Mediated Protein Geranylgeranylation in Oocyte Is Essential for the Establishment of Oocyte-Granulosa Cell Communication and Primary-Secondary Follicle Transition in Mouse Ovary
title_fullStr GGPP-Mediated Protein Geranylgeranylation in Oocyte Is Essential for the Establishment of Oocyte-Granulosa Cell Communication and Primary-Secondary Follicle Transition in Mouse Ovary
title_full_unstemmed GGPP-Mediated Protein Geranylgeranylation in Oocyte Is Essential for the Establishment of Oocyte-Granulosa Cell Communication and Primary-Secondary Follicle Transition in Mouse Ovary
title_short GGPP-Mediated Protein Geranylgeranylation in Oocyte Is Essential for the Establishment of Oocyte-Granulosa Cell Communication and Primary-Secondary Follicle Transition in Mouse Ovary
title_sort ggpp-mediated protein geranylgeranylation in oocyte is essential for the establishment of oocyte-granulosa cell communication and primary-secondary follicle transition in mouse ovary
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5224981/
https://www.ncbi.nlm.nih.gov/pubmed/28072828
http://dx.doi.org/10.1371/journal.pgen.1006535
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