Insulin signaling in mouse oocytes
BIOLOGY OF REPRODUCTION
Authors: Acevedo, Nicole; Ding, Jun; Smith, Gary D.
Abstract
Continuous exposure of follicles/oocytes to elevated levels of insulin compromises embryonic developmental competence, although the underlying cellular mechanisms are unknown. The objectives of the present study were to determine whether mouse oocytes have insulin receptors and a functional insulin signaling cascade, and whether insulin exposure during oocyte growth or maturation influences meiotic progression and chromatin remodeling. Immunoblot and immunocytochemical analyses of germinal vesicle-intact (GVI) oocytes demonstrated the presence of insulin receptor-P. Insulin receptor expression in oocytes was increased by gonadotropin stimulation, and remained elevated throughout meiotic maturation. Fully grown GVI oocytes contained 3-phosphoinositide-dependent protein kinase-1 (PDPK1), thymoma viral proto-oncogene 1 (AKT1), and glycogen synthase kinase 3 (GSK3). In vitro maturation of GVI oocytes in 5 mu g/ml insulin had no influence on meiotic progression or the incidence of normal metaphase 11 (MII) chromosome condensation. Treatment of oocytes during maturation had no effect on GSK3A/B protein expression or phosphorylation of S21/9. However, the culturing of preantral follicles for 10 days with 5 mu g/ml insulin increased the phosphorylation of oocyte GSK3B, indicating GSK3 inactivation. The rates of development to metaphase I (MI) were similar for oocytes obtained from insulin-treated follicles and controls, whereas the incidence of abnormal MI chromatin condensation was significantly higher in oocytes obtained from follicles cultured with insulin compared to those cultured without insulin. These results demonstrate that oocytes contain a functional insulin signaling pathway, and that insulin exposure during oocyte growth results in chromatin remodeling aberrations. These findings begin to elucidate the mechanisms by which chronic elevated insulin influences oocyte meiosis, chromatin remodeling, and embryonic developmental competence.
GSK-3 alpha and GSK-3 beta Proteins Are Involved in Early Stages of Chondrocyte Differentiation with Functional Redundancy through RelA Protein Phosphorylation
JOURNAL OF BIOLOGICAL CHEMISTRY
Authors: Itoh, Shozo; Saito, Taku; Hirata, Makoto; Ushita, Masahiro; Ikeda, Toshiyuki; Woodgett, James R.; Alguel, Hana; Schmid, Roland M.; Chung, Ung-il; Kawaguchi, Hiroshi
Abstract
Here we examine the roles of two isoforms of glycogen synthase kinase-3 (GSK-3), GSK-3 alpha and GSK-3 beta, in skeletal development. Both isoforms were unphosphorylated and active in chondrocyte differentiation stages during SOX9 and type II collagen (COL2A1) expression. Although knock-out of both alleles of Gsk3a (Gsk3a(-/-)) or a single allele of Gsk3b (Gsk3b(+/-)) in mice did not significantly affect skeletal development, compound knock-out (Gsk3a(-/-); Gsk3b(+/-)) caused dwarfism with impairment of chondrocyte differentiation. GSK-3 alpha and GSK-3 beta induced differentiation of cultured chondrocytes with functional redundancy in a cell-autonomous fashion, independently of the Wnt/beta-catenin signal. Computational predictions followed by SOX9 and COL2A1 transcriptional assays identified RelA (NF-kappa B p65) as a key phosphorylation target of GSK-3. Among several phosphorylation residues in RelA, Thr-254 was identified as the critical phosphorylation site for GSK-3 that modulated chondrocyte differentiation. In conclusion, redundant functions of GSK-3 alpha and GSK-3 beta through phosphorylation of RelA at Thr-254 play a crucial role in early stages of chondrocyte differentiation.