Literature DB >> 19121865

Cytoplasmic maturation of bovine oocytes: structural and biochemical modifications and acquisition of developmental competence.

E M Ferreira1, A A Vireque, P R Adona, F V Meirelles, R A Ferriani, P A A S Navarro.   

Abstract

Oocyte maturation is a long process during which oocytes acquire their intrinsic ability to support the subsequent stages of development in a stepwise manner, ultimately reaching activation of the embryonic genome. This process involves complex and distinct, although linked, events of nuclear and cytoplasmic maturation. Nuclear maturation mainly involves chromosomal segregation, whereas cytoplasmic maturation involves organelle reorganization and storage of mRNAs, proteins and transcription factors that act in the overall maturation process, fertilization and early embryogenesis. Thus, for didactic purposes, we subdivided cytoplasmic maturation into: (1) organelle redistribution, (2) cytoskeleton dynamics, and (3) molecular maturation. Ultrastructural analysis has shown that mitochondria, ribosomes, endoplasmic reticulum, cortical granules and the Golgi complex assume different positions during the transition from the germinal vesicle stage to metaphase II. The cytoskeletal microfilaments and microtubules present in the cytoplasm promote these movements and act on chromosome segregation. Molecular maturation consists of transcription, storage and processing of maternal mRNA, which is stored in a stable, inactive form until translational recruitment. Polyadenylation is the main mechanism that initiates protein translation and consists of the addition of adenosine residues to the 3' terminal portion of mRNA. Cell cycle regulators, proteins, cytoplasmic maturation markers and components of the enzymatic antioxidant system are mainly transcribed during this stage. Thus, the objective of this review is to focus on the cytoplasmic maturation process by analyzing the modifications in this compartment during the acquisition of meiotic competence for development.

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Year:  2009        PMID: 19121865     DOI: 10.1016/j.theriogenology.2008.10.023

Source DB:  PubMed          Journal:  Theriogenology        ISSN: 0093-691X            Impact factor:   2.740


  49 in total

1.  LH-induced neuregulin 1 (NRG1) type III transcripts control granulosa cell differentiation and oocyte maturation.

Authors:  Noritaka Noma; Ikko Kawashima; Heng-Yu Fan; Youko Fujita; Tomoko Kawai; Yoshinori Tomoda; Toshihiro Mihara; Joanne S Richards; Masayuki Shimada
Journal:  Mol Endocrinol       Date:  2010-11-03

2.  Regulation of oocyte mitochondrial DNA copy number by follicular fluid, EGF, and neuregulin 1 during in vitro maturation affects embryo development in pigs.

Authors:  J Mao; K M Whitworth; L D Spate; E M Walters; J Zhao; R S Prather
Journal:  Theriogenology       Date:  2012-05-22       Impact factor: 2.740

3.  Defective sperm head decondensation undermines the success of ICSI in the bovine.

Authors:  Luis Águila; Ricardo Felmer; María Elena Arias; Felipe Navarrete; David Martin-Hidalgo; Hoi Chang Lee; Pablo Visconti; Rafael Fissore
Journal:  Reproduction       Date:  2017-09       Impact factor: 3.906

4.  Cumulus cell expansion and ultrastructural changes in in vitro matured bovine oocytes under heat stress.

Authors:  J A Ahmed; N Nashiruddullah; D Dutta; R K Biswas; P Borah
Journal:  Iran J Vet Res       Date:  2017       Impact factor: 1.376

5.  Maturation outcomes are improved following Cryoleaf vitrification of immature human oocytes when compared to choline-based slow-freezing.

Authors:  Catherine M H Combelles; S Temel Ceyhan; Haiyan Wang; Catherine Racowsky
Journal:  J Assist Reprod Genet       Date:  2011-11-17       Impact factor: 3.412

6.  Effect of C-type natriuretic peptide pretreatment on in vitro bovine oocyte maturation.

Authors:  Tong Zhang; Chunqiang Zhang; Xiaomei Fan; Ruilan Li; Jiaxin Zhang
Journal:  In Vitro Cell Dev Biol Anim       Date:  2016-10-19       Impact factor: 2.416

7.  Zap70 and downstream RanBP2 are required for the exact timing of the meiotic cell cycle in oocytes.

Authors:  Hyun-Jung Kim; Su-Yeon Lee; Hyun-Seo Lee; Eun-Young Kim; Jung-Jae Ko; Kyung-Ah Lee
Journal:  Cell Cycle       Date:  2017-07-26       Impact factor: 4.534

8.  Spindle and chromosome configurations of in vitro-matured oocytes from polycystic ovary syndrome and ovulatory infertile women: a pilot study.

Authors:  Rodolpho C Vieira; Ionara D Barcelos; Elisa M Ferreira; Wellington P Martins; Rui A Ferriani; Paula A Navarro
Journal:  J Assist Reprod Genet       Date:  2010-09-04       Impact factor: 3.412

9.  Fatty acid synthesis and oxidation in cumulus cells support oocyte maturation in bovine.

Authors:  Laura Sanchez-Lazo; Daphné Brisard; Sébastien Elis; Virginie Maillard; Rustem Uzbekov; Valérie Labas; Alice Desmarchais; Pascal Papillier; Philippe Monget; Svetlana Uzbekova
Journal:  Mol Endocrinol       Date:  2014-07-24

10.  Pre-IVM treatment with C-type natriuretic peptide in the presence of cysteamine enhances bovine oocytes antioxidant defense ability and developmental competence in vitro.

Authors:  J Zhenwei; Z Xianhua
Journal:  Iran J Vet Res       Date:  2019       Impact factor: 1.376

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