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Cell–cell interaction and oocyte growth

Published online by Cambridge University Press:  26 September 2008

Rita Canipari
Affiliation:
Istituto dia Istologia ed Embriologia generale, Universitä ‘La sapienza’, Rome, Italy

Extract

In most mammals, oocytes initiate meiosis in late fetal life; by the time of birthe they have already entered the diplotene stage of prophase I of meiosis and becaome arrested thereafter at the dictyate state(Baker, 1972). At this stage they became surrounded by a few nonproliferating flat follicle cells forming a unit called the resting or primordial follicle.

Type
Article
Copyright
Copyright © Cambridge University Press 1994

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References

Anderson, E. &Albertini, D.F.. (1976). Gap junctions between the oocyte and companion follicle cells in mammalian overy. J. cell Biol. 71, 680–6.Google Scholar
Bachvarova, R., Baran, M.M. & Tejblum, A.. (1980). Development of naked growing mouse oocytes in vitro. J. Exp. Zool. 211. 159–96.Google Scholar
Baker, T.G. (1972). Oogenesis and ovulation. In Reproduction in Mammals Austin, CR & Short, RV 1 14–45. London, Cambridge University Press.Google Scholar
Besmer, P.. (1991) The kit–ligand encoded at the murine steel locus: a pleiotropix growth and differentiation factor. Curr. Opin. Cell Biol. 3. 939–46.Google Scholar
Boland, N.I.Humpherson, P.G., Leese, H.J., &Gosden, R.G.. (1993). pattern of lactate production and steroidogenesis during growth and maturation of mouse ovarian follicles. In vitro. Biol, Reprod. 48, 798–.Google Scholar
Brower, P.T. & Schultz, R.M.. (1982). Intercellular communication between granulosa cells and mouse oocytes: existence and possinle nutritional role during oocyte growth. Dev. Biol. 90, 144–.Google Scholar
Buccione, R., Cecconi, S., Tatone, C., Mangia, F. &Colonn, R.. (1987) Follicle cell regulation of mammalian oocyte growth. J. Exp. Zool. 242, 3512–4.Google Scholar
Buccione, R., Vanderhyden, B.C., Caron, P.J.,&Eppig, J. J.. (1990).FSH–induced expansion of the mouse cumuls oophorus in vitro is dependent upon a specific factor(s) secretes by the oocyte. Dev. Biol. 138. 1625.Google Scholar
Canipari, R.Palombi, F., Riminucci, M. &Mangia, F.. (1984). Early programming of maturation competence in mouse oogenesis. Dec. Biol. 102, 519–24.Google Scholar
Colonna, R. & Mangin, F.. (1983). MacHanisms of amino acid uptake in cumulus–enclosed mouse oocytes Biol. Reprod. 28 797803.Google Scholar
Coulombre, J. L., & Russel, E.S.. (1954). Analysis of pleitropism at the W–locus in the mouse: the effects of W and Ww substitution upon postnatal development of germ cells J. Exp. Zool. 126 277–96.Google Scholar
El–Fouly, M.A., Cook, B., Nekola, M. &Nalbandov, A.V.. (1970). Role of the ovum in follicular luteinization. Endocrinology 87 288–93.Google Scholar
Eppig, J.J. (1977). Mouse oocyte development in vitro with various culture systems, Dev. Biol. 60 371–88.Google Scholar
Eppig, J.J. (1979). A comparsion between oocyte growth in coulture with granulosa cells and oocytes with granulosa cell–oocyte junctional contact maintained in viteo, J. Exp. Zool. 209. 345–53;Google Scholar
Eppig, J.J., &Schroeder, A.C. (1989) Capacity of mouse oocytes from presentral follicles to undergo embryogenesis and developement to live young after growth, maturation and fertilization in vitro. Biol. Reprod. 41 268–76.Google Scholar
Gilula, N.B., Epstein, M.L. &Beers, W.H.. (1978). Cell–to–cell communication and ovulation: a study of cumulus cell– oocyte complex, J. cell Biol. 78 5875.Google Scholar
Heller, D.T., & Schultz, R.M. (1980). Ribonucleoside metabolism by mouse oocytes and cumulus cells. J. Exp. Zool. 214. 355–64.CrossRefGoogle Scholar
Heller, D.T., Cahill, D.M.,& Schultz, R.M.. (1981).Biochemical studies of mammalian oogenesis: metabolic cooperativity between granulosa cells and growth mouse oocytes. Dev Biol. 84,455–64.Google Scholar
Mangia, F.,& Epstein, C.J.. (1975). Biochemical studies of growing mouse oocytes: preparation of oocytes and analysis of glucose–6–phosphate dehydrogenase and lactate dehydrogenase activities, Dev. Biol. 45, 211–20.Google Scholar
Packer, A.I., Hsu, Y.C., Besmer, P. & Bachvarova, R.. (1994). THe ligand of the c–kit receptor promotes oocyte growth. Dev. Biol. 161 194205.CrossRefGoogle Scholar
Peters, H., Byskov, A.G., & Faber, M.. (1973). Introvarian regulation of follicle growth in the immature mouse. In The Development and Maturation of the ovary and it Functions. Peters, H.AmsterdamExcerpta Medica 20–3.Google Scholar
Racowsky, C. & Baldwin, K.V.. (1989). In vitro and in vivo studies reveal that hamste oocyte meiotic arrest is maintained only transiently by follicular fluid, but persistently by membrana/cumulus granulosa cell contact. Dev. Biol. 134 297306.Google Scholar
Salustri, A., Yanagishita, M., &Hascall, V.C.. (1990). MOuse oocytes regulate hyaluronic acid synthesis and mucification by FSH–stimulated cumulus cells, Dev. Biol. 138, 2632.Google Scholar
Schultz, R.M.. (1991). Meiotic maturation on mammalian oocytes In Elements of Mammalian FertilizationWassarman, PM. BostonCRC press 77104.Google Scholar
Sorensen, R.A., &Wassarman, P.M.. (1976). Relationship between growth and meiotic maturaion of the mouse oocyte. Dev. Biol. 50, 531–6.Google Scholar
Telfer, E.,Torrance, C. & Gosde, R.G.. (1990). Morphological study of cultured preantral overian folliclec of mice after transpantation under the kidney capsule. J. Reprod. Fertil. 89. 565–71.Google Scholar
Torrance, C., Telfer, E. &Gosden, R.G. (1989). Quantitative study of the development of isolated mouse pre–antral follicles in collagen gel culture. J. Reprod. Fertil. 87, 367–74.Google Scholar
Tsafriri, A. & Channing, C.P.. (1975).An inhibitory influence of granulosa cells and follicuar fluid upon meiosid in vitro Endocrinology 96 922–7.Google Scholar
Vanderhyden, B.C., Telfer, E.E. & Eppig, J.J. (1992). Mouse oocytes promote proliferation of granulosa cells from preantral and antral follicles in vitro Biol. Reprod. 46, 1196–204.CrossRefGoogle Scholar
Vanderhyden, B.C., Cohen, J.N., &Morly, P.. (1993). Mouse oocytes regulate granulosa cell steroidogenesis. Endocrinology 133 423–7Google Scholar
Witt, O.N.. (1990). steel lous defines new multipotent growth factor cell 63 56.Google Scholar