The goal of fertilization is the union of the parental genomes within the cytoplasm of an activated egg. To accomplish this several movements must occur which culminate in the apposition and fusion of the male and female pronuclei at the egg center. This revised application is focused on two central questions: how is motility regulated?; and how are microtubules organized at fertilization? Seven questions will be posed about the regulation of egg-mediated motility during fertilization and the dynamics of microtubule organization: 1. Are phosphorylation and dephosphorylation necessary for egg-mediated motility during fertilization, and is the first cell cycle regulated differently than later cell cyles? This will be performed by localizing phosphorylated epitopes, and investigating the effects of kinase and phosphatase inhibition on motility. 2. What are the temporal and spatial patterns of the intracellular calcium release at fertilization, and is there a requirement for increased nuclear calcium? Confocal calcium ion detection provides improved imaging of the fertilization transient, and the effects of regionally blocking the newly discovered increase in nuclear calcium will be explored by reversible chelation. 3. Is the increase in centrosome size observed during fertilization dependent on newly synthesized proteins? The impact of arresting protein synthesis on the centrosome will be studied. 4. Is the centrosome contributed exclusively by the sperm, and is its apparent size due to an unfurling of compact material? The paternal contribution to centrosome volume will be investigated during polyspermy by quantitative confocal laser scanning microscopy. 5. Is the bulk of the centrosomal material maternally-derived and attracted to the sperm during fertilization? This will be tested by studying centrosome behavior during polyspermy, fertilization of egg fragments, artificial activation, parthenogenesis, refertilization and fertilization after artificial activation. 6. Is the centrosome cycle regulated similarly to the chromosome cycle? The possibility of uncoupling the two cycles with disulfide-reducing agents, sulfhydryl oxidizers, and protease inhibitors will be investigated. 7. Is gamma- tubulin the key microtubule organizing component of the centrosome and is it paternally contributed at fertilization? This will be explored using a novel antibody to the conserved region of gamma-tubulin in gametes during fertilization, parthenogenesis, and after microtubule disruption. By investigating the mechanisms leading to the union of the parental genomes at fertilization, this research addresses a central question in reproduction, and may contribute to new approaches for treating infertility, designing contraceptive approaches, and for the screening and avoidance of birth defects.

Agency
National Institute of Health (NIH)
Institute
Eunice Kennedy Shriver National Institute of Child Health & Human Development (NICHD)
Type
Research Project (R01)
Project #
5R01HD012913-14
Application #
2196944
Study Section
Reproductive Biology Study Section (REB)
Project Start
1979-08-01
Project End
1996-12-31
Budget Start
1995-01-01
Budget End
1995-12-31
Support Year
14
Fiscal Year
1995
Total Cost
Indirect Cost
Name
University of Wisconsin Madison
Department
Zoology
Type
Schools of Arts and Sciences
DUNS #
161202122
City
Madison
State
WI
Country
United States
Zip Code
53715
Yue, Junming; Sheng, Yi; Orwig, Kyle E (2008) Identification of novel homologous microRNA genes in the rhesus macaque genome. BMC Genomics 9:8
Hermann, Brian P; Sukhwani, Meena; Lin, Chih-Cheng et al. (2007) Characterization, cryopreservation, and ablation of spermatogonial stem cells in adult rhesus macaques. Stem Cells 25:2330-8
Sackett, Gene; Ruppenthal, Gerald; Hewitson, Laura et al. (2006) Neonatal behavior and infant cognitive development in rhesus macaques produced by assisted reproductive technologies. Dev Psychobiol 48:243-65
Tengowski, M W; Wassler, M J; Shur, B D et al. (2001) Subcellular localization of beta1,4-galactosyltransferase on bull sperm and its function during sperm-egg interactions. Mol Reprod Dev 58:236-44
Hewitson, L; Takahashi, D; Dominko, T et al. (1998) Fertilization and embryo development to blastocysts after intracytoplasmic sperm injection in the rhesus monkey. Hum Reprod 13:3449-55
Manandhar, G; Sutovsky, P; Joshi, H C et al. (1998) Centrosome reduction during mouse spermiogenesis. Dev Biol 203:424-34
Gross, S D; Simerly, C; Schatten, G et al. (1997) A casein kinase I isoform is required for proper cell cycle progression in the fertilized mouse oocyte. J Cell Sci 110 ( Pt 24):3083-90
Walther, P; Chen, Y; Malecki, M et al. (1993) Scanning electron microscopy of high-pressure-frozen sea urchin embryos. Scanning Microsc 7:1283-92;discussion 1292-3
Stricker, S A; Centonze, V E; Paddock, S W et al. (1992) Confocal microscopy of fertilization-induced calcium dynamics in sea urchin eggs. Dev Biol 149:370-80
Holy, J; Schatten, G (1991) Differential behavior of centrosomes in unequally dividing blastomeres during fourth cleavage of sea urchin embryos. J Cell Sci 98 ( Pt 3):423-31

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