scholarly article | Q13442814 |
P6179 | Dimensions Publication ID | 1027112386 |
P356 | DOI | 10.1186/1471-213X-8-16 |
P932 | PMC publication ID | 2266721 |
P698 | PubMed publication ID | 18284699 |
P2093 | author name string | Sook-Young Yoon | |
Karl Schellander | |||
Jose B Cibelli | |||
Rafael A Fissore | |||
Pablo J Ross | |||
Zeki Beyhan | |||
Christopher Malcuit | |||
Amy E Iager | |||
P2860 | cites work | Interactions of sperm perinuclear theca with the oocyte: implications for oocyte activation, anti-polyspermy defense, and assisted reproduction | Q23919483 |
A detailed analysis of early events during in-vitro fertilization of bovine follicular oocytes | Q68259715 | ||
Phosphate is required for inhibition by glucose of development of hamster 8-cell embryos in vitro | Q69675353 | ||
Down-regulation of the inositol 1,4,5-trisphosphate receptor in mouse eggs following fertilization or parthenogenetic activation | Q73959503 | ||
Bovine embryos contain a higher proportion of polyploid cells in the trophectoderm than in the embryonic disc | Q74449381 | ||
Transgenic RNA interference reveals role for mouse sperm phospholipase Czeta in triggering Ca2+ oscillations during fertilization | Q81152556 | ||
Release of phospholipase C zetaand [Ca2+]i oscillation-inducing activity during mammalian fertilization | Q81509177 | ||
Bovine in vitro fertilization with frozen-thawed semen | Q83846966 | ||
Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4 | Q25938983 | ||
PLC zeta: a sperm-specific trigger of Ca(2+) oscillations in eggs and embryo development | Q28589375 | ||
PLCzeta, a sperm-specific PLC and its potential role in fertilization | Q34002016 | ||
Phosphorylation of IP3R1 and the regulation of [Ca2+]i responses at fertilization: a role for the MAP kinase pathway. | Q34016683 | ||
The metaphase II arrest in mouse oocytes is controlled through microtubule-dependent destruction of cyclin B in the presence of CSF. | Q34060695 | ||
Cell cycle-dependent regulation of structure of endoplasmic reticulum and inositol 1,4,5-trisphosphate-induced Ca2+ release in mouse oocytes and embryos. | Q34451369 | ||
Mammalian oocyte activation: lessons from the sperm and implications for nuclear transfer | Q34456448 | ||
Genomic imprinting is a barrier to parthenogenesis in mammals | Q34566100 | ||
Calcium oscillations and mammalian egg activation | Q36254972 | ||
Regulation of fertilization-initiated [Ca2+]i oscillations in mammalian eggs: a multi-pronged approach | Q36434201 | ||
Role of calcium signals in early development | Q36437318 | ||
Calcium signals for egg activation in mammals | Q36518813 | ||
Egg-to-embryo transition is driven by differential responses to Ca(2+) oscillation number | Q38362076 | ||
Molecular basis of mammalian egg activation. | Q40411692 | ||
Essential role of the inositol 1,4,5-trisphosphate receptor/Ca2+ release channel in Ca2+ waves and Ca2+ oscillations at fertilization of mammalian eggs | Q40855999 | ||
Ca2+ oscillations in the activation of the egg and development of the embryo in mammals. | Q41718940 | ||
Patterns of intracellular Ca2+ concentrations in fertilized bovine eggs | Q42026735 | ||
Sperm-induced Ca(2+) oscillations in mouse oocytes and eggs can be mimicked by photolysis of caged inositol 1,4,5-trisphosphate: evidence to support a continuous low level production of inositol 1, 4,5-trisphosphate during mammalian fertilization | Q42492616 | ||
Sperm increase inositol 1,4,5-trisphosphate mass in Xenopus laevis eggs preinjected with calcium buffers or heparin. | Q42497270 | ||
Sperm phospholipase Czeta from humans and cynomolgus monkeys triggers Ca2+ oscillations, activation and development of mouse oocytes | Q44205140 | ||
Ubiquitination and proteasomal degradation of endogenous and exogenous inositol 1,4,5-trisphosphate receptors in alpha T3-1 anterior pituitary cells | Q44209245 | ||
Genetic control of haploid parthenogenetic development in mammalian embryos | Q44775647 | ||
Cell cycle-coupled [Ca(2+)](i) oscillations in mouse zygotes and function of the inositol 1,4,5-trisphosphate receptor-1. | Q45050264 | ||
Fertilization and inositol 1,4,5-trisphosphate (IP3)-induced calcium release in type-1 inositol 1,4,5-trisphosphate receptor down-regulated bovine eggs | Q45295960 | ||
Developmental rate and ploidy of embryos produced by nuclear transfer with different activation treatments in cattle | Q46567970 | ||
Intracytoplasmic sperm injection in the bovine induces abnormal [Ca2+]i responses and oocyte activation | Q46944788 | ||
Changes in endoplasmic reticulum structure during mouse oocyte maturation are controlled by the cytoskeleton and cytoplasmic dynein. | Q48797828 | ||
Mammalian phospholipase Czeta induces oocyte activation from the sperm perinuclear matrix | Q48812865 | ||
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 | Q48887203 | ||
Injection of sperm cytosolic factor into mouse metaphase II oocytes induces different developmental fates according to the frequency of [Ca(2+)](i) oscillations and oocyte age. | Q48892405 | ||
Cell allocation and chromosomal complement of parthenogenetic and IVF bovine embryos | Q48912212 | ||
Interplay of maturation-promoting factor and mitogen-activated protein kinase inactivation during metaphase-to-interphase transition of activated bovine oocytes | Q48914923 | ||
Injection of a porcine sperm factor induces activation of mouse eggs | Q48949248 | ||
Human sperm cytosolic factor triggers Ca2+ oscillations and overcomes activation failure of mammalian oocytes | Q48959700 | ||
Injection of a porcine sperm factor triggers calcium oscillations in mouse oocytes and bovine eggs | Q48964668 | ||
Bovine parthenogenesis is characterized by abnormal chromosomal complements: implications for maternal and paternal co-dependence during early bovine development | Q48966488 | ||
Chromosomal abnormalities in bovine embryos and their influence on development | Q49025180 | ||
Rat basophilic leukemia cells as model system for inositol 1,4,5-trisphosphate receptor IV, a receptor of the type II family: functional comparison and immunological detection | Q49059142 | ||
Phospholipase Czeta causes Ca2+ oscillations and parthenogenetic activation of human oocytes. | Q50335973 | ||
Molecular cloning, testicular postnatal expression, and oocyte-activating potential of porcine phospholipase Czeta | Q50645556 | ||
Egg activation events are regulated by the duration of a sustained [Ca2+]cyt signal in the mouse | Q50661486 | ||
Fertilization increases the polyphosphoinositide content of sea urchin eggs | Q59067339 | ||
P921 | main subject | parthenogenesis | Q183236 |
bovine oocyte | Q106907984 | ||
P304 | page(s) | 16 | |
P577 | publication date | 2008-02-19 | |
P1433 | published in | BMC Developmental Biology | Q15761839 |
P1476 | title | Parthenogenetic activation of bovine oocytes using bovine and murine phospholipase C zeta | |
P478 | volume | 8 |
Q46733780 | Activation treatment of recipient oocytes affects the subsequent development and ploidy of bovine parthenogenetic and somatic cell nuclear transfer (SCNT) embryos |
Q45963063 | Active H3K27me3 demethylation by KDM6B is required for normal development of bovine preimplantation embryos. |
Q34706827 | Ca2+ signaling during mammalian fertilization: requirements, players, and adaptations |
Q45406028 | Calcium influx and sperm-evoked calcium responses during oocyte maturation and egg activation |
Q34212687 | DPPA3 prevents cytosine hydroxymethylation of the maternal pronucleus and is required for normal development in bovine embryos |
Q46294415 | Fertilization 2: Polyspermic Fertilization |
Q50632672 | Functional characterization of CDX2 during bovine preimplantation development in vitro |
Q36938264 | Human sperm devoid of PLC, zeta 1 fail to induce Ca(2+) release and are unable to initiate the first step of embryo development |
Q35787162 | Jumonji domain-containing protein 3 regulates histone 3 lysine 27 methylation during bovine preimplantation development |
Q37526318 | Lack of calcium oscillation causes failure of oocyte activation after intracytoplasmic sperm injection in pigs |
Q36170536 | Laser-assisted Cytoplasmic Microinjection in Livestock Zygotes |
Q38643849 | Molecular Characterization and Comparison of Phospholipase C zeta (PLCZ1) Gene Between Swamp (Bubalus carabanensis) and Riverine (Bubalus bubalis) Buffaloes: Its Implications and Future Perspectives |
Q43545125 | Molecular characteristics of horse phospholipase C zeta (PLCζ). |
Q38049334 | Molecular mechanism of fertilization in the pig. |
Q26750781 | Molecular triggers of egg activation at fertilization in mammals |
Q39155622 | Oocyte Activation and Fertilisation: Crucial Contributors from the Sperm and Oocyte |
Q36086851 | Oocyte activation and phospholipase C zeta (PLCζ): diagnostic and therapeutic implications for assisted reproductive technology |
Q38582312 | Oocyte activation deficiency: a role for an oocyte contribution? |
Q37732273 | Oolemma receptors and oocyte activation |
Q55003383 | PLCζ Induced Ca2+ Oscillations in Mouse Eggs Involve a Positive Feedback Cycle of Ca2+ Induced InsP3 Formation From Cytoplasmic PIP2. |
Q36957679 | PLCζ sequence, protein levels, and distribution in human sperm do not correlate with semen characteristics and fertilization rates after ICSI |
Q24633918 | Phospholipase C-ζ-induced Ca2+ oscillations cause coincident cytoplasmic movements in human oocytes that failed to fertilize after intracytoplasmic sperm injection |
Q90705572 | Phospholipase Cζ (PLCζ) versus postacrosomal sheath WW domain-binding protein (PAWP): Which molecule will survive as a sperm factor? |
Q48652224 | Recombinant human phospholipase C zeta 1 induces intracellular calcium oscillations and oocyte activation in mouse and human oocytes |
Q33926634 | Species-specific differences in the activity and nuclear localization of murine and bovine phospholipase C zeta 1 |
Q33581534 | Suppression of chemically induced and spontaneous mouse oocyte activation by AMP-activated protein kinase |
Q38597724 | Vertebrate Reproduction |
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