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Chapter 2 - In Vivo Oocyte Development

from Section 1 - Oocyte Recruitment

Published online by Cambridge University Press:  04 January 2019

Gabor Kovacs
Affiliation:
Monash University, Victoria
Anthony Rutherford
Affiliation:
University of Leeds
David K. Gardner
Affiliation:
University of Melbourne
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Publisher: Cambridge University Press
Print publication year: 2019

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References

Picton, HM. Metabolism of the follicle and oocyte in vivo and in vitro. In “Biology and Pathology of the Oocyte” Ed. Gosden, RG, Trounson, A, Eichenlaub Ritter, U. Cambridge, UK: Cambridge University Press, 2013;pp. 200211.CrossRefGoogle Scholar
Gougeon, A. Regulation of ovarian follicular development in primates: facts and hypotheses. Endocr Rev. 1996;17:121155.CrossRefGoogle ScholarPubMed
Gosden, R, Lee, B. Portrait of an oocyte: our obscure origin. J Clin Invest. 2010;120:973983.CrossRefGoogle ScholarPubMed
Coticchio, G, Dal Canto, M, Renzini, MM et al. Oocyte maturation: gamete-somatic cells interactions, meiotic resumption, cytoskeletal dynamics and cytoplasmic reorganisation. Hum Reprod Update. 2015;21:427454.CrossRefGoogle Scholar
Zhang, H, Liu, K. Cellular and molecular regulation of the activation of mammalian primordial follicles: somatic cells initiate follicle activation in adulthood. Hum Reprod Update. 2015;21:779786.CrossRefGoogle ScholarPubMed
Weenen, C, Laven, JSE, von Bergh, ARM et al. Anti-Mullerian hormone expression patterns in the human ovary: potential implications for initial and cyclic follicle recruitment. Mol Hum Reprod. 2004;10:7783.CrossRefGoogle ScholarPubMed
Baca, M, Zamboni, L. The fine structure of human follicular oocytes. J Ultrastruct Res. 1967;19:354381.CrossRefGoogle ScholarPubMed
Bebbere, D, Masala, L, Albertini, DF, Ledda, S. The subcortical maternal complex: multiple functions for one biological structure? J Assist Reprod Genet. 2016;33:14311438.CrossRefGoogle ScholarPubMed
Steuerwald, N, Barritt, JA, Adler, R et al. Quantification of mtDNA in single oocytes, polar bodies and subcellular components by real-time rapid cycle fluorescence monitored PCR. Zygote. 2000;8:209215.CrossRefGoogle ScholarPubMed
Makabe, S, Van Blerkom, J. An Atlas of Human Female Reproduction: Ovarian Development to Embryogenesis In Vitro. 2014;London, UK: Taylor and Francis Books Ltd.Google Scholar
Gougeon, A, Chainy, GB. Morphometric studies of small follicles in ovaries of women at different ages. J Reprod Fertil. 1987;81:433442.CrossRefGoogle ScholarPubMed
Chang, H-M, Qiao, J, Leung, CK. Oocyte-somatic cell interactions in the human ovary- novel role of bone morphogenetic proteins and growth differentiation factors. Hum Reprod Update. 2017;23:118.CrossRefGoogle Scholar
Susor, A, Jansova, D, Anger, M, Kubelka, M. Translation in the mammalian oocyte in space and time. Cell Tiss Res. 2016;363:6984.Google Scholar
Gupta, SK, Bhandari, B. Acrosome reaction: relevance of zona pellucida glycoproteins. Asian J Androl. 2010;13:97105.CrossRefGoogle ScholarPubMed
Huntriss, J, Gosden, R, Hinkins, M et al. Isolation, characterization and expression of the human Factor. In the Germline alpha (FIGLA) gene in ovarian follicles and oocytes. Mol Hum Reprod. 2002;8:10871095.CrossRefGoogle ScholarPubMed
Mora, JM, Fenwick, MA, Castle, L et al. Characterization and significance of adhesion and junction-related proteins in mouse ovarian follicles. Biol Reprod. 2012;86:153, 114.CrossRefGoogle ScholarPubMed
Combelles, CM, Carabatsos, MJ, Kumar, TR, Matzuk, MM, Albertini, DF. Hormonal control of somatic cell oocyte interactions during ovarian follicle development. Mol Reprod Dev. 2004;69:347355.Google Scholar
Cotterill, M, Harris, SE, Fernandez, EC et al. The activity and copy number of mitochondrial DNA in ovine oocytes throughout oogenesis in vivo and during oocyte maturation in vitro. Mol Hum Reprod. 2013;19:444450.Google Scholar
Baerwald, AR, Adams, GP, Pierson, RA. Ovarian antral folliculogenesis during the human menstrual cycle: a review. Hum Reprod Update. 2012 January–February;18(1):7391.CrossRefGoogle ScholarPubMed
Rodgers, RJ, Irving-Rodgers, HF. Formation of the ovarian follicular antrum and follicular fluid. Biol Reprod. 2010;82:10211029.CrossRefGoogle ScholarPubMed
Anderson, O, Heasman, J, Wylie, C. Early events in the mammalian germ line. Int Rev Cytol. 2001;203:215230.CrossRefGoogle ScholarPubMed
Richani, D, Gilchrist, RB. The epidermal growth factor network: role in oocyte growth, maturation and developmental competence. Hum Reprod Update. 2017;114.Google Scholar
Van Blerkom, J. Epigenetic influences on oocyte developmental competence: perifollicular vascularity and intrafollicular oxygen. J Assist Reprod Genet. 1998;15:226234.Google Scholar
Gosden, RG, Hunter, RH, Telfer, E, Torrance, C, Brown, N. Physiological factors underlying the formation of ovarian follicular fluid. J Reprod Fertil. 1988;82:813825.Google Scholar
Harris, SE, Maruthini, D, Tang, T, Balen, AH, Picton, HM. Metabolism and karyotype analysis of oocytes from patients with PCOS. Hum Reprod. 2010;25:23052315.Google Scholar
Sutton-McDowall, ML, Gilchrist, RB, Thompson, JG. The pivotal role of glucose in determining oocyte developmental competence. Reproduction. 2010;139:685695.CrossRefGoogle ScholarPubMed
Su, YQ, Sugiura, K, Wigglesworth, K et al. Oocyte regulation of metabolic cooperativity between mouse cumulus cells and oocytes: BMP15 and GDF9 control cholesterol biosynthesis in cumulus cells. Development. 2008;135:111121.Google Scholar
Eppig, JJ, Pendola, FL, Wigglesworth, K, Pendola, JK. Mouse oocytes regulate metabolic cooperativity between granulosa cells and oocytes: amino acid transport. Biol. Reprod. 2005;73:351357.Google Scholar
Downs, SM. Nutrient pathways regulating the nuclear maturation of mammalian oocytes. Reprod Fert Dev. 2015;27:572582.CrossRefGoogle ScholarPubMed
Dunning, KR, Russell, DL, Robker, RL. Lipids and oocyte developmental competence: the role of fatty acids and B oxidation. Reproduction. 2014;148:R1527.Google Scholar
McKeegan, PJ, Sturmey, RG. The role of fatty acids in oocyte and early embryo development. Reprod Fert Dev. 2011;24:5967.CrossRefGoogle ScholarPubMed
Adhikari, D, Liu, K. The regulation of maturation promoting factor during prophase I arrest and meiotic entry in mammalian oocytes. Mol Cell Endocrinol. 2014;382:480487.CrossRefGoogle ScholarPubMed
Li, R, Albertini, DF. The road to maturation: somatic cell interaction and self-organisation of the mammalian oocyte. Nat Rev Mol Cell Biol. 2013;14:141152.CrossRefGoogle Scholar
Coticchio, G, Dal Canto, M, Fadini, R et al. Ultrastructure of human oocytes after in vitro maturation. Mol Hum Reprod. 2016;22:110118.CrossRefGoogle ScholarPubMed
Mann, JS, Lowther, KM, Mehlmann, LM. Reorganization of the endoplasmic reticulum and development of Ca2+ release mechanisms during meiotic maturation of human oocytes. Biol Reprod. 2010;83:578583.CrossRefGoogle ScholarPubMed
Van Blerkom, J. Mitochondrial function in the human oocyte and embryo and their role in developmental competence. Mitochondrion. 2011;11:797813.Google Scholar
Gilchrist, RB, Luciano, AM, Richani, D et al. Oocyte maturation and quality: role of cyclic nucleotides. Reproduction. 2016;152R: 143R157.Google Scholar
Clift, D, Schuh, M. Restarting life: fertilisation and the transition from meiosis to mitosis. Nat Rev Mol Cell Biol. 2013;14:549562.CrossRefGoogle ScholarPubMed
Reyes, JM, Ross, PJ. Cytoplasmic polyadenylation in mammalian oocyte maturation. WIREs RNA 2016;7:7189.Google Scholar
Capalbo, A, Hoffmann, ER, Cimadomo, D, Ubaldi, FM, Rienzi, L. Human female meiosis revised: new insights into the mechanisms of chromosome segregation and aneuploidies from advanced genomics and time-lapse imaging. Hum Reprod Update. 2017; 117.CrossRefGoogle Scholar
Webster, A, Schuh, M. Mechanisms of aneuploidy in human eggs. Trends Cell Biol. 2017;27:5568.Google Scholar
Touati, SA, Wassmann, K. How oocytes try to get it right: spindle checkpoint control in meiosis. Chromosoma. 2016;125:321335.CrossRefGoogle ScholarPubMed
Svoboda, P, Franke, V, Schultz, RM. Sculpting the transcriptome during the oocyte-to-embryo transition in mouse. Curr Top Dev Biol. 2015;113:305349.Google Scholar
Ernst, EH, Grøndahl, ML, Grund, S et al. Dormancy and activation of human oocytes from primordial and primary follicles: molecular clues to oocyte regulation. Hum Reprod. 2017;32:16841700.Google Scholar

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