spacer gif spacer gif spacer gif spacer gif spacer gif
 QUICK SEARCH:   [advanced]


spacer gif
     Home     Help     Feedback     Subscriptions     Archive     Search     Table of Contents    


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Ozil, J. P.
Right arrow Articles by Huneau, D.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Ozil, J. P.
Right arrow Articles by Huneau, D.
Social Bookmarking
 Add to CiteULike   Add to Complore   Add to Connotea   Add to Del.icio.us   Add to Digg   Add to Reddit   Add to Technorati   Add to Twitter  
What's this?
Abbott, A. L., Fissore, R. A. and Ducibella, T (1999). Incompetence of preovulatory mouse oocytes to undergo cortical granule exocytosis following induced calcium oscillations. Dev. Biol 207, 38-48.[Medline]

Berridge, M. J (1997). The AM and FM of calcium signalling. Nature 386, 759-760.[Medline]

Berridge, M. J. and Galione, A (1988). Cytosolic calcium oscillators. FASEB J 2, 3074-3082.[Abstract]

Berridge, M. J. and Irvine, R. F (1984). Inositol trisphosphate, a novel second messenger in cellular signal transduction. Nature 312, 315-321.[Medline]

Biggers, J. D. and Papaioannou, V. E (1991). Postnatal compensatory growth of manipulated mouse embryos. Hum. Reprod 6, 36-44.[Abstract/Free Full Text]

Blondin, P., Farin, P. W., Crosier, A. E., Alexander, J. E. and Farin, C. E (2000). In vitro production of embryos alters levels of insulin-like growth factor-II messenger ribonucleic acid in bovine fetuses 63 days after transfer. Biol. Reprod 62, 384-389.[Abstract/Free Full Text]

Bos-Mikich, A., Whittingham, D. G. and Jones, K. T (1997). Meiotic and mitotic Ca2+oscillations affect cell composition in resulting blastocysts. Dev. Biol 182, 172-179.[Medline]

Brind, S., Swann, K. and Carroll, J (2000). Inositol 1,4,5-trisphosphate receptors are downregulated in mouse oocytes in response to sperm or adenophostin A but not to increases in intracellular Ca(2+) or egg activation. Dev. Biol 223, 251-265.[Medline]

Chang, D. C (1989). Cell poration and cell fusion using an oscillating electric field. Biophys. J 56, 641-652.[Medline]

Collas, P., Chang, T., Long, C. and Robl, J. M (1995). Inactivation of histone H1 kinase by Ca2+in rabbit oocytes. Mol. Reprod. Dev 40, 253-258.[Medline]

Cuthbertson, K. S. and Cobbold, P. H (1985). Phorbol ester and sperm activate mouse oocytes by inducing sustained oscillations in cell Ca2+. Nature 316, 541-542.[Medline]

Day, M. L., McGuinness, O. M., Berridge, M. J. and Johnson, M. H (2000). Regulation of fertilization-induced Ca2+spiking in the mouse zygote. Cell Calcium 28, 47-54.[Medline]

Dobi, A. and Agoston, D (1998). Submillimolar levels of calcium regulates DNA structure at the dinucleotide repeat (TG/AC)n. Proc. Natl. Acad. Sci. USA 95, 5981-5986.[Abstract/Free Full Text]

Dolmetsch, R. E., Lewis, R. S., Goodnow, C. C. and Healy, J. I (1997). Differential activation of transcription factors induced by Ca2+ response amplitude and duration. Nature 386, 855-858.[Medline]

Dolmetsch, R. E., Xu, K. and Lewis, R. S (1998). Calcium oscillations increase the efficiency and specificity of gene expression. Nature 392, 933-936.[Medline]

Dupont, G., McGuinness, O. M., Johnson, M. H., Berridge, M. J. and Borgese, F (1996). Phospholipase C in mouse oocytes: characterization of beta and gamma isoforms and their possible involvement in sperm-induced Ca2+spiking. Biochem. J 316, 583-591.

Faure, J. E., Myles, D. G. and Primakoff, P (1999). The frequency of calcium oscillations in mouse eggs at fertilization is modulated by the number of fused sperm. Dev. Biol 213, 370-377.[Medline]

Fields, R. D., Guthrie, P. B., Russell, J. T., Kater, S. B., Malhotra, B. S. and Nelson, P. G (1993). Accommodation of mouse DRG growth cones to electrically induced collapse: kinetic analysis of calcium transients and set-point theory. J. Neurobiol 24, 1080-1098.[Medline]

Fissore, R. A. and Robl, J. M (1993). Sperm, inositol trisphosphate, and thimerosal-induced intracellular Ca2+elevations in rabbit eggs. Dev. Biol 159, 122-130.[Medline]

Fissore, R. A. and Robl, J. M (1994). Mechanism of calcium oscillations in fertilized rabbit eggs. Dev. Biol 166, 634-642.[Medline]

Fukui, Y., Sawai, K., Furudate, M., Sato, N., Iwazumi, Y. and Ohsaki, K (1992). Parthenogenetic development of bovine oocytes treated with ethanol and cytochalasin B after in vitro maturation. Mol. Reprod. Dev 33, 357-362.[Medline]

Goodwin, B. C (1965). Oscillatory behavior in enzymatic control processes. Adv. Enzyme Reg 3, 425-438.[Medline]

Groigno, L. and Whitaker, M (1998). An anaphase calcium signal controls chromosome disjunction in early sea urchin embryos. Cell 92, 193-204.[Medline]

Hepler, P. K (1989). Calcium transients during mitosis: observations in flux. J. Cell Biol 109, 2567-2573.[Free Full Text]

Holm, P., Walker, S. K. and Seamark, R. F (1996). Embryo viability, duration of gestation and birth weight in sheep after transfer of in vitro matured and in vitro fertilized zygotes cultured in vitro or in vivo. J. Reprod. Fertil 107, 175-181.[Abstract/Free Full Text]

Igusa, Y., Miyazaki, S. and Yamashita, N (1983). Periodic hyperpolarizing responses in hamster and mouse eggs fertilized with mouse sperm. J. Physiol 340, 633-647.

Izant, J. G (1983). The role of calcium ions during mitosis. Calcium participates in the anaphase trigger. Chromosoma 88, 1-10.[Medline]

Jellerette, T., He, C. L., Wu, H., Parys, J. B. and Fissore, R. A (2000). Down-regulation of the inositol 1,4,5-trisphosphate receptor in mouse eggs following fertilization or parthenogenetic activation. Dev. Biol 223, 238-250.[Medline]

Jones, K. T., Carroll, J., Merriman, J. A., Whittingham, D. G. and Kono, T (1995). Repetitive sperm-induced Ca2+transients in mouse oocytes are cell cycle dependent. Development 121, 3259-3266.[Abstract]

Jones, K. T., Cruttwell, C., Parrington, J. and Swann, K (1998). A mammalian sperm cytosolic phospholipase C activity generates inositol trisphosphate and causes Ca2+ release in sea urchin egg homogenates. FEBS Lett 437, 297-300.[Medline]

Kono, T., Carroll, J., Swann, K. and Whittingham, D. G (1995). Nuclei from fertilized mouse embryos have calcium-releasing activity. Development 121, 1123-1128.[Abstract]

Kruip, Th. A. M. and den Daas, J. H. G (1997). In Vitro produced and cloned embryos: Effects on pregnacy, parturition and offspring. Theriogenology 47, 43-52.

Kure-bayashi, S., Miyake, M., Okada, K. and Kato, S (2000). Successful implantation of in vitro-matured, electro-activated oocytes in the pig. Theriogenology 53, 1105-1119.[Medline]

Lawrence, Y., Ozil, J.-P. and Swann, K (1998). The effects of a Ca2+ chelator and heavy-metal-ion chelators upon Ca2+oscillations and activation at fertilization in mouse eggs suggest a role for repetitive Ca2+increases. Biochem. J 335, 335-342.

Li, W., Llopis, J., Whitney, M., Zlokarnik, G. and Tsien, R. Y (1998). Cell-permeant caged InsP3 ester shows that Ca2+spike frequency can optimize gene expression. Nature 392, 936-941.[Medline]

Loi, P., Ledda, S., Fulka, J., Jr., Cappai, P. and Moor, R. M (1998). Development of parthenogenetic and cloned ovine embryos: effect of activation protocols. Biol. Reprod 58, 1177-1187.[Abstract/Free Full Text]

McCulloh, D. H., Rexroad, C. E., Jr. and Levitan, H (1983). Insemination of rabbit eggs is associated with slow depolarization and repetitive diphasic membrane potentials. Dev. Biol 95, 372-377.[Medline]

Miyazaki, S., Hashimoto, N., Yoshimoto, Y., Kishimoto, T., Igusa, Y. and Hiramoto, Y (1986). Temporal and spatial dynamics of the periodic increase in intracellular free calcium at fertilization of golden hamster eggs. Dev. Biol 118, 259-267.[Medline]

Miyazaki, S., Shirakawa, H., Nakada, K., Honda, Y., Yuzaki, M., Nakade, S. and Mikoshiba, K (1992). Antibody to the inositol trisphosphate receptor blocks thimerosal-enhanced Ca2+-induced Ca2+release and Ca2+oscillations in hamster eggs. FEBS Lett 309, 180-184.[Medline]

Moore, N. W., Adams, C. E. and Rowson, L. E. A (1968). Developmental potential of single blastomeres of the rabbit eggs. J. Reprod. Fertil 17, 527-531.[Abstract/Free Full Text]

Niemann, H. and Wrenzycki, C (2000). Alterations of expression of developmentally important genes in preimplantation bovine embryos by in vitro culture conditions: implications for subsequent development. Theriogenology 53, 21-34.[Medline]

Ozil, J.-P (1983). Production of identical twins by bisection of blastocysts in the cow. J. Reprod. Fertil 69, 463-468.[Abstract/Free Full Text]

Ozil, J.-P (1990). The parthenogenetic development of rabbit oocytes after repetitive pulsatile electrical stimulation. Development 109, 117-127.[Abstract]

Ozil, J.-P. and Modlinski, J. A (1986). Effects of electric field on fusion rate and survival of 2-cell rabbit embryos. J. Embryol. Exp. Morphol 96, 211-228.[Medline]

Ozil, J.-P. and Swann, K (1995). Stimulation of repetitive calcium transients in mouse eggs. J. Physiol 483, 331-346.

Plachot, M. and Crozet, N (1992). Fertilization abnormalities in human in-vitro fertilization. Hum. Reprod 7, 1-.[Abstract/Free Full Text]

Poenie, M., Alderton, J., Tsien, R. Y. and Steinhardt, R. A (1985). Changes of free calcium levels with stages of the cell division cycle. Nature 315, 147-149.[Medline]

Reik, W., Romer, I., Barton, S. C., Surani, M. A., Howlett, S. K. and Klose, J (1993). Adult phenotype in the mouse can be affected by epigenetic events in the early embryo. Development 119, 933-942.[Abstract/Free Full Text]

Renard, J. P., Chastant, S., Chesne, P., Richard, C., Marchal, J., Cordonnier, N., Chavatte, P. and Vignon, X (1999). Lymphoid hypoplasia and somatic cloning. Lancet 353, 1489-1491.[Medline]

Reynolds, S. R. M (1947). The relation of hydrostatic conditions in the uterus to the size and shape of the conceptus during pregnacy: a concept of uterine accomodation. Anat. Rec 95, 283-296.

Schatten, G., Simerly, C. and Schatten, H (1991). Maternal inheritance of centrosomes in mammals? Studies on parthenogenesis and polyspermy in mice. Proc. Natl. Acad. Sci. USA 88, 6785-6789.[Abstract/Free Full Text]

Schultz, R. M., Davis, W., Jr., Stein, P. and Svoboda, P (1999). Reprogramming of gene expression during preimplantation development. J. Exp. Zool 285, 276-282.[Medline]

Schultz, R. M. and Kopf, G. S (1995). Molecular basis of mammalian egg activation. Curr. Top. Dev. Biol 30, 21-62.[Medline]

Seidel, G. E., Jr (2000). Reproductive biotechnology and \324big' biological questions. Theriogenology 53, 187-194.[Medline]

Sheng, H. Z., Fields, R. D. and Nelson, P. G (1993). Specific regulation of immediate early genes by patterned neuronal activity. J. Neurosci. Res 35, 459-467.[Medline]

Sinclair, K. D., McEvoy, T. G., Maxfield, E. K., Maltin, C. A., Young, L. E., Wilmut, I., Broadbent, P. J. and Robinson, J. J (1999). Aberrant fetal growth and development after in vitro culture of sheep zygotes. J. Reprod. Fertil 116, 177-186.[Abstract/Free Full Text]

Solter, D (1988). Differential imprinting and expression of maternal and paternal genomes. Annu. Rev. Genet 22, 127-146.[Medline]

Steinhardt, R. A., Epel, D., Carroll, E. J., Jr and Yanagimachi, R (1974). Is calcium ionophore a universal activator for unfertilised eggs?. Nature 252, 41-43.[Medline]

Stros, M., Reich, J. and Kolibalova, A (1994). Calcium binding to HMG1protein induces DNA looping by the HMG-box domains. FEBS Lett 344, 201-206.[Medline]

Surani, M. A., Barton, S. C. and Norris, M. L (1984). Development of reconstituted mouse eggs suggests imprinting of the genome during gametogenesis. Nature 308, 548-550.[Medline]

Swann, K (1993). The soluble sperm oscillogen hypothesis. Zygote 1, 273-276.[Medline]

Swann, K (1994). Ca2+oscillations and sensitization of Ca2+release in unfertilized mouse eggs injected with a sperm factor. Cell Calcium 15, 331-339.[Medline]

Swann, K. and Ozil, J.-P (1994). Dynamics of the calcium signal that triggers mammalian egg activation. Int. Rev. Cytol 152, 183-222.[Medline]

Swann, K. and Parrington, J (1999). Mechanism of Ca2+release at fertilization in mammals. J. Exp. Zool 285, 267-275.[Medline]

Swanson, C. A., Arkin, A. P. and Ross, J (1997). An endogenous calcium oscillator may control early embryonic division. Proc. Natl. Acad. Sci. USA 94, 1194-1199.[Abstract/Free Full Text]

Szollosi, D. and Ozil, J.-P (1991). De novo formation of centrioles in parthenogenetically activated, diploidized rabbit embryos. Biol. Cell 72, 61-66.[Medline]

Tarkowski, A. K (1959). Experiments on the development of isolated blastomeres of mouse eggs. Nature 184, 1286-1287.[Medline]

Tarkowski, A. K., Witkowska, A. and Nowicka, J (1970). Experimental partheonogenesis in the mouse. Nature 226, 162-165.[Medline]

Thompson, E. M., Legouy, E., Christians, E. and Renard, J. P (1995). Progressive maturation of chromatin structure regulates HSP70.1 gene expression in the preimplantation mouse embryo. Development 121, 3425-3437.[Abstract]

Vitullo, A. D. and Ozil, J.-P (1992). Repetitive calcium stimuli drive meiotic resumption and pronuclear development during mouse oocyte activation. Dev. Biol 151, 128-136.[Medline]

Whittingham, D. G (1980). Parthenognesis in mammals. Oxford Review of Reproductive Biology 2, 205-231.

Willadsen, S. M., Janze, R. E., McAlister, R. J., Shea, B. F. and Hamilton, G. M. D (1991). The viability of late morulae and blastocysts produced by nuclear transplantation in cattle. Theriogenology 35, 161-170.

Willadsen, S. M (1980). The viability of early cleavage stages containing half the normal number of blastomeres in the sheep. J. Reprod. Fertil 59, 357-362.[Abstract/Free Full Text]

Willadsen, S. M (1981). The development capacity of blastomeres fr. J. Embryol. Exp. Morphol 65, 165-172.[Medline]

Wolffe, A. P. and Guschin, D (2000). Review: chromatin structural features and targets that regulate transcription. J. Struct. Biol 129, 102-122.[Medline]

Xu, Z., Abbott, A., Kopf, G. S., Schultz, R. M. and Ducibella, T (1997). Spontaneous activation of ovulated mouse eggs: time-dependent effects on M-phase exit, cortical granule exocytosis, maternal messenger ribonucleic acid recruitment, and inositol 1,4,5-trisphosphate sensitivity. Biol. Reprod 57, 743-750.[Abstract]

Yanagida, K., Katayose, H., Yazawa, H., Kimura, Y., Sato, A., Yanagimachi, H. and Yanagimachi, R (1999). Successful fertilization and pregnancy following ICSI and electrical oocyte activation. Hum. Reprod 14, 1307-1311.[Abstract/Free Full Text]

Zhang, D. H., Callaham, D. A. and Hepler, P. K (1990). Regulation of anaphase chromosome motion in Tradescantia stamen hair cells by calcium and related signalling agents. J. Cell Biol 111, 171-182.[Abstract/Free Full Text]


Add to CiteULike CiteULike   Add to Complore Complore   Add to Connotea Connotea   Add to Del.icio.us Del.icio.us   Add to Digg Digg   Add to Reddit Reddit   Add to Technorati Technorati   Add to Twitter Twitter    What's this?


This article has been cited by other articles:


Home page
ReproductionHome page
P. J Ross, R. M Rodriguez, A. E Iager, Z. Beyhan, K. Wang, N. P Ragina, S.-Y. Yoon, R. A Fissore, and J. B Cibelli
Activation of bovine somatic cell nuclear transfer embryos by PLCZ cRNA injection
Reproduction, March 1, 2009; 137(3): 427 - 437.
[Abstract] [Full Text] [PDF]


Home page
ReproductionHome page
K Hinrichs, Y H Choi, D D Varner, and D L Hartman
Production of cloned horse foals using roscovitine-treated donor cells and activation with sperm extract and/or ionomycin
Reproduction, August 1, 2007; 134(2): 319 - 325.
[Abstract] [Full Text] [PDF]


Home page
Mol Hum ReprodHome page
S. Markoulaki, M. Kurokawa, S.-Y. Yoon, S. Matson, T. Ducibella, and R. Fissore
Comparison of Ca2+ and CaMKII responses in IVF and ICSI in the mouse
Mol. Hum. Reprod., April 1, 2007; 13(4): 265 - 272.
[Abstract] [Full Text] [PDF]


Home page
Biol. Reprod.Home page
A. Ajduk, Y. Yamauchi, and M. A Ward
Sperm Chromatin Remodeling after Intracytoplasmic Sperm Injection Differs from That of In Vitro Fertilization
Biol Reprod, September 1, 2006; 75(3): 442 - 451.
[Abstract] [Full Text] [PDF]


Home page
ReproductionHome page
N T Rogers, G Halet, Y Piao, J Carroll, M S H Ko, and K Swann
The absence of a Ca2+ signal during mouse egg activation can affect parthenogenetic preimplantation development, gene expression patterns, and blastocyst quality
Reproduction, July 1, 2006; 132(1): 45 - 57.
[Abstract] [Full Text] [PDF]


Home page
ReproductionHome page
J. Loren and O. Lacham-Kaplan
The employment of strontium to activate mouse oocytes: effects on spermatid-injection outcome
Reproduction, February 1, 2006; 131(2): 259 - 267.
[Abstract] [Full Text] [PDF]


Home page
Physiol. Rev.Home page
M. Whitaker
Calcium at Fertilization and in Early Development
Physiol Rev, January 1, 2006; 86(1): 25 - 88.
[Abstract] [Full Text] [PDF]


Home page
ReproductionHome page
S. Toth, D. Huneau, B. Banrezes, and J.-P. Ozil
Egg activation is the result of calcium signal summation in the mouse
Reproduction, January 1, 2006; 131(1): 27 - 34.
[Abstract] [Full Text] [PDF]


Home page
Hum ReprodHome page
D. Zhang, L. Pan, L.-H. Yang, X.-K. He, X.-Y. Huang, and F.-Z. Sun
Strontium promotes calcium oscillations in mouse meiotic oocytes and early embryos through InsP3 receptors, and requires activation of phospholipase and the synergistic action of InsP3
Hum. Reprod., November 1, 2005; 20(11): 3053 - 3061.
[Abstract] [Full Text] [PDF]


Home page
ReproductionHome page
R Tomashov-Matar, D Tchetchik, A Eldar, R Kaplan-Kraicer, Y Oron, and R Shalgi
Strontium-induced rat egg activation
Reproduction, October 1, 2005; 130(4): 467 - 474.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
G. FitzHarris, M. Larman, C. Richards, and J. Carroll
An increase in [Ca2+]i is sufficient but not necessary for driving mitosis in early mouse embryos
J. Cell Sci., October 1, 2005; 118(19): 4563 - 4575.
[Abstract] [Full Text] [PDF]


Home page
Biol. Reprod.Home page
C. Malcuit, J. G. Knott, C. He, T. Wainwright, J. B. Parys, J. M. Robl, and R. A. Fissore
Fertilization and Inositol 1,4,5-Trisphosphate (IP3)-Induced Calcium Release in Type-1 Inositol 1,4,5-Trisphosphate Receptor Down-Regulated Bovine Eggs
Biol Reprod, July 1, 2005; 73(1): 2 - 13.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
F. Prodon, P. Dru, F. Roegiers, and C. Sardet
Polarity of the ascidian egg cortex and relocalization of cER and mRNAs in the early embryo
J. Cell Sci., June 1, 2005; 118(11): 2393 - 2404.
[Abstract] [Full Text] [PDF]


Home page
Biol. Reprod.Home page
H. Igarashi, T. Takahashi, E. Takahashi, N. Tezuka, K. Nakahara, K. Takahashi, and H. Kurachi
Aged Mouse Oocytes Fail to Readjust Intracellular Adenosine Triphosphates at Fertilization
Biol Reprod, May 1, 2005; 72(5): 1256 - 1261.
[Abstract] [Full Text] [PDF]


Home page
Biol. Reprod.Home page
J. G. Knott, M. Kurokawa, R. A. Fissore, R. M. Schultz, and C. J. Williams
Transgenic RNA Interference Reveals Role for Mouse Sperm Phospholipase C{zeta} in Triggering Ca2+ Oscillations During Fertilization
Biol Reprod, April 1, 2005; 72(4): 992 - 996.
[Abstract] [Full Text] [PDF]


Home page
ReproductionHome page
N T Rogers, E Hobson, S Pickering, F A Lai, P Braude, and K Swann
Phospholipase C{zeta} causes Ca2+ oscillations and parthenogenetic activation of human oocytes
Reproduction, December 1, 2004; 128(6): 697 - 702.
[Abstract] [Full Text] [PDF]


Home page
Biol. Reprod.Home page
T. P. Fleming, W. Y. Kwong, R. Porter, E. Ursell, I. Fesenko, A. Wilkins, D. J. Miller, A. J. Watkins, and J. J. Eckert
The Embryo and Its Future
Biol Reprod, October 1, 2004; 71(4): 1046 - 1054.
[Abstract] [Full Text] [PDF]


Home page
ReproductionHome page
J. Van Blerkom
Mitochondria in human oogenesis and preimplantation embryogenesis: engines of metabolism, ionic regulation and developmental competence
Reproduction, September 1, 2004; 128(3): 269 - 280.
[Abstract] [Full Text] [PDF]


Home page
Hum ReprodHome page
T. Ebner, M. Moser, M. Sommergruber, K. Jesacher, and G. Tews
Complete oocyte activation failure after ICSI can be overcome by a modified injection technique
Hum. Reprod., August 1, 2004; 19(8): 1837 - 1841.
[Abstract] [Full Text] [PDF]


Home page
Hum ReprodHome page
A. Jones, J. Van Blerkom, P. Davis, and A. A. Toledo
Cryopreservation of metaphase II human oocytes effects mitochondrial membrane potential: implications for developmental competence
Hum. Reprod., August 1, 2004; 19(8): 1861 - 1866.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
R. Dumollard, P. Marangos, G. Fitzharris, K. Swann, M. Duchen, and J. Carroll
Sperm-triggered [Ca2+] oscillations and Ca2+ homeostasis in the mouse egg have an absolute requirement for mitochondrial ATP production
Development, July 1, 2004; 131(13): 3057 - 3067.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
M. G. Larman, C. M. Saunders, J. Carroll, F. A. Lai, and K. Swann
Cell cycle-dependent Ca2+ oscillations in mouse embryos are regulated by nuclear targeting of PLC{zeta}
J. Cell Sci., May 15, 2004; 117(12): 2513 - 2521.
[Abstract] [Full Text] [PDF]


Home page
Biol. Reprod.Home page
S. J. Bedford, M. Kurokawa, K. Hinrichs, and R. A. Fissore
Patterns of Intracellular Calcium Oscillations in Horse Oocytes Fertilized by Intracytoplasmic Sperm Injection: Possible Explanations for the Low Success of This Assisted Reproduction Technique in the Horse
Biol Reprod, April 1, 2004; 70(4): 936 - 944.
[Abstract] [Full Text] [PDF]


Home page
Hum ReprodHome page
J. V. Blerkom, P. Davis, and S. Alexander
Inner mitochondrial membrane potential ({Delta}{Psi}m), cytoplasmic ATP content and free Ca2+ levels in metaphase II mouse oocytes
Hum. Reprod., November 1, 2003; 18(11): 2429 - 2440.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
K. E. Vrana, J. D. Hipp, A. M. Goss, B. A. McCool, D. R. Riddle, S. J. Walker, P. J. Wettstein, L. P. Studer, V. Tabar, K. Cunniff, et al.
Nonhuman primate parthenogenetic stem cells
PNAS, September 30, 2003; 100(suppl_1): 11911 - 11916.
[Abstract] [Full Text] [PDF]


Home page
Mol Hum ReprodHome page
M. Kurokawa and R. A. Fissore
ICSI-generated mouse zygotes exhibit altered calcium oscillations, inositol 1,4,5-trisphosphate receptor-1 down-regulation, and embryo development
Mol. Hum. Reprod., September 1, 2003; 9(9): 523 - 533.
[Abstract] [Full Text] [PDF]


Home page
Biol. Reprod.Home page
N. Ogonuki, K. Mochida, K. Inoue, J. Matsuda, Y. Yamamoto, K. Takano, and A. Ogura
Fertilization of Oocytes and Birth of Normal Pups Following Intracytoplasmic Injection with Spermatids in Mastomys (Praomys coucha)
Biol Reprod, May 1, 2003; 68(5): 1821 - 1827.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
P. Marangos, G. FitzHarris, and J. Carroll
Ca2+ oscillations at fertilization in mammals are regulated by the formation of pronuclei
Development, April 1, 2003; 130(7): 1461 - 1472.
[Abstract] [Full Text] [PDF]


Home page
Biol. Reprod.Home page
A. Krivokharchenko, E. Popova, I. Zaitseva, L. Vil'ianovich, D. Ganten, and M. Bader
Development of Parthenogenetic Rat Embryos
Biol Reprod, March 1, 2003; 68(3): 829 - 836.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
R. Dumollard, K. Hammar, M. Porterfield, P. J. Smith, C. Cibert, C. Rouviere, and C. Sardet
Mitochondrial respiration and Ca2+ waves are linked during fertilization and meiosis completion
Development, February 15, 2003; 130(4): 683 - 692.
[Abstract] [Full Text] [PDF]


Home page
Hum ReprodHome page
J. Van Blerkom, P. Davis, V. Mathwig, and S. Alexander
Domains of high-polarized and low-polarized mitochondria may occur in mouse and human oocytes and early embryos
Hum. Reprod., February 1, 2002; 17(2): 393 - 406.
[Abstract] [Full Text] [PDF]


Home page
Hum ReprodHome page
J. Fenwick, P. Platteau, A.P. Murdoch, and M. Herbert
Time from insemination to first cleavage predicts developmental competence of human preimplantation embryos in vitro
Hum. Reprod., February 1, 2002; 17(2): 407 - 412.
[Abstract] [Full Text] [PDF]


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Ozil, J. P.
Right arrow Articles by Huneau, D.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Ozil, J. P.
Right arrow Articles by Huneau, D.
Social Bookmarking
 Add to CiteULike   Add to Complore   Add to Connotea   Add to Del.icio.us   Add to Digg   Add to Reddit   Add to Technorati   Add to Twitter  
What's this?