Anderson, E. & Albertini, D.F. (1976). Gap junction between the oocyte and companion follicle cells in the mammalian ovary. J. Cell Biol. 71, 680–6.
Ayalon, D.A., Tsafriri, A., Linder, H.R., Cordova, T. & Harell, A. (1972). Serum gonadotrophin levels in pro-oestrus rats in relation to the resumption of meiosis by the oocytes J. Reprod. Fert. 317, 51–8.
Bae, I.-H. & Channing, C. (1985). Effects of Ca ion on the maturation of cumulus-enclosed pig follicular oocytes isolated from medium-sized Graafian follicles. Biol.Reprod. 33, 79–87.
Bar-Ami, S. & Tsafriri, A. (1981). Acquisition of meiotic competence in the rat: role of gonadotrophin and estrogen. Gamete Res. 4, 463–72.
Batta, S.K. & Knudsen, J.F. (1980). Ca concentration in cumulus enclosed oocytes of rats after treatment with pregnant mare's serum. Biol. Reprod. 22, 243–6.
Bornslaeger, E.A., Poueymirou, W.T., Mattei, P. & Schultz, R.M. (1986). Effects of protein kinase C activator on germinal vesicle breakdown and polar body emission of mouse oocytes. Exp. Cell Res. 165, 507–17.
Chambers, et al. (1974). The activation of sea urchin eggs by the divalent ionophore A23187 and X-537a. Biochem. Biophys. Res. Commun. 60, 126–132.
Channing, C.P. & Tsafriri, A. (1977). Mechanisms of action of luteinizing hormone and follicle stimulating hormone on the ovary in vitro. Metabolism 26, 413–68.
Cho, W.K., Stern, S. & Biggars, J.D. (1974). Inhibitory effect of dibutyryl cAMP on mouse oocyte maturation in vitro. J. Exp. Zool. 187, 383–6.
Clapham, D.E. & DeFelice, L.J. (1984). Voltage-gated K channels in embryonic chick heart. Biophys. J. 43, 38–9.
Cross, M.H., Cross, P.C. & Brinster, R.L. (1973). Changes in membrane potential during mouse egg development. Dev. Biol. 33, 412–16.
Dawson, J.E. & Conrad, J.T. (1972). The effect of human chorionic gonadotrophin and luteinizing hormone upon the membrane potential of unovulated frog oocytes. Biol.Reprod. 6, 58–66.
DeFelice, L.J., Mazzanti, J., Murnane, J. & Cohen, J. (1988). Patch-clamp and whole-cell recording from human oocytes. Biophys. J. 53, 547a.
DeFelici, M. & Siracusa, G. (1982). Survival of isolated, fully grown mouse ovarian oocytes in strictly dependent on external Ca2+. Dev. Biol. 92, 539–43.
Dekel, N. & Beers, W.H. (1980). Development of the rat oocyte in vitro: inhibition and induction of maturation in the presence or absence of the cumulus oophorus. Dev.Biol. 75, 247–54.
Dekel, N., Aberdam, E. & Sherizly, I. (1984). Spontaneous maturation in vitro of cumulus-enclosed rat oocytes is inhibited by forskolin. Biol. Reprod. 31, 244–50.
Donahue, R.P. (1968). Maturation of the mouse oocyte in vitro. I. Sequence and timing of nuclear progression. Exp. Zool. 169, 237–301.
Downs, S.M. & Eppig, J.J. (1986). The role of purines in the maintenance of meiotic arrest in mouse oocytes. Tokai J. Exp. Clin. Med. 11, 463–9.
Downs, S.M., Daniel, S.A. & Eppig, J.J. (1988). Induction of maturation in cumulus cell-enclosed mouse oocytes by follicle-stimulating hormone and epidermal growth factor: evidence for a positive stimulus of somatic cell origin. J. Exp. Zool., 245, 86–96.
Ducibella, T.A., Anderson, D.F., Albertini, F., Aalberg, J. & Rangarajan, S. (1988). Quantitative studies of changes in cortical granule number and distribution in the mouse oocyte during maturation. Dev. Biol. 130, 184–97.
Dullart, J.,Kent, J. & Ryle, M. (1975). Serum gonadotrophin concentration in infantile mice. J. Reprod. Fertil. 43, 189–92.
Edwards, R.G. (1965). Maturation in vitro of mouse, sheep, cow, pig, rhesus monkey and human ovarian oocytes. Nature 208, 349–51.
Eppig, J.J. (1977). Mouse development in vitro with various culture systems. Dev. Biol. 60, 371–88.
Eppig, J.J. (1979). A comparison between oocytes grown in co-culture with granulosa cells and oocytes with granulosa cell-oocyte junctional contact maintained in vitro. J. Exp. Zool. 209, 345–53.
Eppig, J.J. (1982). The relationship between cumulus cell-oocyte coupling, oocyte meiotic maturation, and cumulus expansion. Dev. Biol. 119, 313–21.
Eppig, J.J. & Downs, S.M. (1984). Chemical signals that regulate mammalian oocyte maturation. Biol. Reprod. 30, 1–11.
Eppig, J.J., Freter, R.R., Ward-Bailey, F. & Schultz, R.M. (1983). Inhibition of oocyte maturation in the mouse: participation of cAMP, steroid hormones, and a putative maturation-inhibitory factor. Dev. Biol. 100, 39–49.
Erickson, G.F. & Sorensen, R.A. (1974). In vitro maturation of mouse oocytes isolated from late, middle and preantral Graafian follicles. J. Exp. Zool. 190, 123–7.
Eusebi, F., Colonna, R. & Mangia, F. (1983). Development of membrane excitability in mammalian oocytes and early embryos. Gamete Res. 7, 39–47.
Franchimont, P., Demoulin, A. & Valcke, J.C. (1988). Endocrine, paracrine and autocrine control of follicular development. Horm. Metab. Res. 20, 193–203.
Fulton, B.F. & Whittingham, B.G. (1978). Activation of mammalian oocytes by intracellular injection of Ca. Nature 273, 149–51.
Georgiou, P., Bountra, C., Bland, K.P. & House, C.R. (1984). Ca action potentials in unfertilized eggs of mice and hamsters. Exp. Physiol. 69, 365–80.
Gilula, N.B., Epstein, M.L. & Beers, W.H. (1978). Cell-to-cell communication and ovulation. J. Cell Biol. 78, 58–75.
Hasimoto, N. & Kishimoto, T. (1986). Cell cycle dynamic of maturation-promoting factor during mouse oocyte maturation. Tokai J. Exp. Med. 11, 471–7.
Heller, D.T. & Schultz, R.M. (1980). Ribonucleoside metabolism in mouse oocytes: metabolic cooperativity between fully-grown oocyte and cumulus cells. Exp. Zool. 214, 355–64.
Heller, D.T., Cahill, D.M. & Schultz, R.M. (1981). Biochemical studies of mammalian oogenesis: metabolic cooperativity between granulosa cells and growing mouse oocytes. Dev. Biol. 84, 455–64.
Hillensjo, T., Barnia, A., Nilsson, L., Herlitz, H. & Ahrin, K. (1974). Temporal relationship between serum LH levels and oocyte maturation in prepubertal rats injected with pregnant mare's serum gonadotropin. Endocrinology 95, 1762–6.
Hillensjo, T., Channing, C.P., Pomerantz, S.H. & Schwartz-Kriporer, A. (1979). Intrafollicular control of oocyte maturation in the pig. In Vitro 15, 32–9.
Igusa, Y., Miyazaki, S. & Yamashita, N. (1983). Periodic hyperpolarizing responses in hamster and mouse eggs fertilized with mouse sperm. J. Physiol. (Lond.) 340, 633–47.
Jagiello, G., Ducayen, M.B., Downey, R. & Jonassen, A. (1982). Alterations of mammalian oocyte meiosis I with divalent cations and calmodulin. Cell Ca 3, 153–62.
Kaplan, R., Dekel, N. & Kracier, P.F. (1978). Acceleration of onset of oocyte maturation in vitro by luteinizing hormone. Gamete Res. 1, 59–63.
Kline, D. (1988). Ca-dependent events at fertilization of the frog egg: injection of a Ca buffer blocks ion channel opening, exocytosis, and formation of pronuclei. Dev. Biol. 126, 346–61.
Kubiak, J.Z. (1989). Mouse oocytes gradually develop the capacity for activation during the metaphase II arrest. Dev. Biol. 136, 537–5.
Lawrence, T.S., Beers, W.H. & Gilula, N.B. (1978). Transmission of hormonal stimulation by cell-to-cell communication. Nature 272, 501–7.
Magnusson, C. & Hillensjo, T. (1977). Inhibition of maturation and metabolism in rat oocytes by cyclic AMP. J. Exp. Zool. 201, 139–41.
Maller, J.L. & Krebs, E.G. (1980). Regulation of oocyte maturation.. Curr. Top. Cell Regul. 16, 271–311.
Martin, R.B. and Richardson, F.S. (1979). Lanthanum as probes for calcium in biological systems. Quart. Rev. Biophys. 12, 181–209.
Maruska, D.V., Leibfreid, M.L. & First, N.L. (1984). Role of Ca and Ca–calmodulin complex in resumption of meiosis, Electrical maturation of the murine oocyte 59 cumulus expansion, viability, and hyaluronidase sensitivity of bovine cumulus–oocyte complexes. Biol. Reprod. 31, 1–6.
Masui, Y. & Clarke, H.J. (1979). Oocyte maturation. Int. J. Cytol. 57, 185–282.
Masui, Y., Meyerhof, P.G., Miller, M.A. & Wasserman, W.J. (1977). Roles of divalent cations in maturation and activation of vertebrate oocytes. Differentiation 9, 49–57.
Moor, R.M., Smith, M.W. & Dawson, R.M.C. (1980). Measurement of intracellular coupling between oocytes and cumulus cells using intracellular markers. Exp. Cell Res. 126, 15–29.
Moor, R.M., Osborn, J.C., Cran, D.G. & Walters, D.E. (1981). Selective effect of gonadotrophins on cell coupling, nuclear maturation, and protein synthesis in mammalian oocytes. Embryol. Exp. Morphol. 61, 347–65.
Moreau, M.P., Doree, M. & Guerrier, P. (1976). Electrophoretic introduction of Ca ions into the cortex of Xenopus laevis oocytes triggers meiosis reinitiation. J. Exp. Zool. 197, 443–9.
Okamoto, H., Takahashi, K. & Yamashita, N. (1977). Ionic currents through the membrane of the mammalian oocyte and their comparison with those in the tunicate and sea urchin. J. Physiol. (Lond.) 7, 465–95.
Paleos, G.A. & Powers, R.D. (1981). The effect of Ca on the first meiotic division of the mammalian oocyte. J. Exp. Zool. 217, 409–16.
Pedersen, T. & Peters, H. (1968). Proposal for a classification of oocytes and folliclesin the mouse ovary. J. Reprod. Fert. 17, 555–7.
Peres, A. (1986). Resting membrane potential and inward current properties of mouse ovarian oocytes and eggs. Pflugers Arch. 407, 534–40.
Peres, A. (1987). The Ca current of mouse egg measured in physiological Ca and temperature conditions. J. Physiol. (Lond.) 391, 573–88.
Peters, H. (1962). The development of the mouse ovary from birth to puberty. Acta Endocrinol. (Copenh.) 62, 98–116.
Pincus, G. & Enzmann, E.V. (1935). The comparative behavior of mammalian eggs in vivo and in vitro. I. The activation of ovarian eggs. J. Exp. Med. 62, 665–75.
Powers, R.D. (1982). Changes in mouse oocyte membrane potential and permeability during meiotic maturation. J. Exp. Zool. 221, 365–71.
Powers, R.D. & Biggers, J.D. (1976). Inhibition of mouse oocyte maturation by cell membrane potential hyperpolarization. J. Cell Biol. 70, 352a.
Powers, R.D. & Paleos, G.A. (1982). The combined effects of Ca and dibutyryl cyclic AMP on germinal vesicle breakdown in the mouse oocyte. Reprod. Fert. 66, 1–8.
Powers, R.D. & Tupper, J.T. (1977). Developmental changes in membrane transport and permeability properties in the early mouse embryo. Dev. Biol. 56, 306–15.
Preston, S.L., Parmer, T.G. & Behrman, H.R. (1987). Adenosine reverses Ca-dependent inhibition of follicle-stimulating hormone action and induction of maturation in cumulus-enclosed rat oocytes. Endocrinology 120, 1356–64.
Racowsky, C. & Satterlie, R.A. (1985). Metabolic, fluorescent dye and electrical coupling between hamster oocytes and cumulus cells during maturation in vivo and in vitro. Dev. Biol. 108, 191–202.
Rasmussen, H. (1982). Ca as intracellular messenger in hormone action. Adv. Exp. Med. Biol. 151, 473–91.
Reed, P.W. & Lardy, H.A. (1972). A23187: a divalent cation ionophore. Biol. Chem. 247, 6870–7.
Reuter, H. (1973). Divalent cations as charge carriers in excitable membranes. Prog. Biophy. Mol. Biol. 26, 1–43.
Richards, J.S. & Midgley, A.R. (1976). Protein hormone action: a key to understanding ovarian follicular and luteal cell development. Biol. Reprod. 14, 82–94.
Salustri, A. & Siracusa, G. (1983). Metabolic coupling, cumulus expansion and meiotic resumption in mouse cumuli oophori cultured in vitro in the presence of FSH or cAMP, or stimulated in vivo by hCG. J. Reprod. Fert. 68, 335–41.
Salustri, A.. Petrungaro, S., DeFelici, M., Conti, M. & Siracusa, G. (1985). Effect of follicle-stimulating hormone on cyclic adenosine monophosphate level and on meiotic maturation in mouse cumulus cell-enclosed oocytes cultured in vitro. Biol. Reprod. 33, 777–82.
Schorderet-Slatkine, S. & Urner, F. (1986). Pharmacological manipulation of meiotic maturation in vitro: a comparative study between amphibian (Xenopus) and the mammalian (mouse) oocyte. Tokai J. Exp. Clin. Med. 6, 453–62.
Schuetz, A.W. (1974). Role of hormones in oocyte maturation. Biol. Reprod. 10, 150–78.
Schuetz, A.W. (1975). Induction of nuclear breakdown and meiosis in Spisula solidissima oocytes by Ca ionophore. Exp. Zool. 191, 433–40.
Schultz, R.M., Montgomery, R.R.Ward-Bailey, P.F. & Eppig, J.J. (1983). Regulation of oocyte maturation in the mouse: possible roles of intracellular cAMP and testosterone. Dev. Biol. 95, 294–304.
Sorenson, R. & Wasserman, P.M. (1976). Relationship between growth and meiotic maturation of the mouse oocyte. Dev. Biol. 50, 531–6.
Spitzer, N.C. (1979). Ion channels in development. Annu. Rev. Neurosci. 2, 363–97
Steinhardt, R.A.Epel, D., Carroll, E.F. & Yanagimachi, R. (1974). Is Ca ionophore a universal activator for unfertilized eggs? Nature 252, 41–3.
Szbek, K. (1972). In vitro maturation of oocytes from sexually immature mice. J. Endocrinol. 54, 527–8.
Thibault, C. (1977). Are follicular maturation and oocyte maturation independent processes?. J. Reprod. Fert. 51, 1–15.
Thibault, C. & Gerard, M. (1973). Cytoplasmic and nuclear maturation of rabbit oocyte in vitro. Annu. Rev. Anim. Biochem. Biophys. 13, 145–6.
Thibault, C., Szollosi, D. & Gerard, M. (1987). Mammalian oocyte maturation. Reprod. Nutr. Dev. 27, 865–96.
Tombes, R.M., Simerly, C., Borisk, G.C. & Shatten, G. (1992). Meiosis, egg activation, and nuclear envelope breakdown are differentially reliant on Ca, whereas germinal vesicle breakdown is Ca independent in the mouse oocyte. J. Cell Biol. 117, 799–811.
Tsafriri, A. & Channing, C.P. (1975 a).An inhibitory influence of granulosa cells and follicular fluid upon porcine oocyte meiosis in vitro. Endocrinology 96, 922–7.
Tsafriri, A. & Channing, C.P. (1975 b). Influence of follicular maturation and culture conditions on the meiosis of pig oocytes in vitro. J. Reprod. Fert. 43, 149–52.
Tsafriri, A. & Kraicer, P.F. (1972). The time sequence of ovum maturation in the rat. Reprod. Fert. 29, 387–93.
Tsafriri, A., Linder, H.R., Zor, U. & Lamprecht, S.A. (1972). In vitro induction of meiotic division in follicle-enclosed rat oocytes by LH, cyclic AMP, and prostaglandin E2. Reprod. Fert. 31, 39–50.
Tsafriri, A., Pomerantz, S. & Channing, C.P. (1976). Inhibition of oocyte maturation by porcine follicular fluid: partial characterization of the inhibitor. Biol. Reprod. 14, 511–16.
Tupper, J.T. (1974). Inhibition of increased K permeability following fertilization of the echinoderm embryo: its relationship to the initiation of protein synthesis and K exchangeability. Dev. Biol. 38, 332–5.
Tupper, J.T. & Powers, R.D. (1973). Na and K permeability during early echinoderm development: electrophysiological and tracer-flux determination. J. Exp. Zool. 184, 356–64.
Umezu, M., Hashizume, K. & Masaki, J. (1978). Follicular and oocyte maturation during the period of ovulation in immature rats pretreated with PMS. Jpn. J. Anim. Reprod. 24, 69–72.
Wasserman, P.M., Josefowicz, W.J. & Letourneau, S.A. (1976). Meiotic maturation of mouse oocytes in vitro: inhibition of maturation at specific stages of nuclear progression. J. Cell Sci. 22, 532–45.
Wasserman, W.J. & Masui, Y. (1975). Initiation of meiotic maturation in Xenopus laevis oocytes by the combination of divalent cations and ionophore A23187. J. Exp. Zool. 193, 369–75.
Weisenseel, M.H. & Jaffe, L.F. (1972). Membrane potential and impedance of developing fucoid eggs. Dev. Biol. 27, 555–74.
Whitefield, J.F., Boyton, A.L., Macmanus, J.P., Sikorska, M. & Tsang, B.K. (1979). The regulation of cell proliferation by Ca and cyclic AMP. Mol. Cell. Biochem. 27, 155–79.
Williams, (1976). Calcium chemistry and its relation to biological function. In Calcium in Biological Systems (Duncan, C.J., Eds.), pp. 1–17, Cambridge University Press, Cambridge.
Yamashita, N. (1982). Enhancement of ionic currents through voltage-gated channels in the mouse after fertilization. J. Physiol. (Lond.) 329, 263–80.
Yoshida, S. (1982). Na and Ca spikes produced by ions passing through Ca channels in mouse ovarian oocytes. Pflugers Arch. 395, 84–6.
Yoshida, S. (1983). Permeation of divalent and monovalent cations through the ovarian oocyte membrane of the mouse. J. Physiol. (Lond.) 339, 631–42.