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R B Lathi

Publications and source records attributed to R B Lathi.

2 recordsLinked to original sources

Dose-dependent insulin regulation of insulin-like growth factor binding protein-1 in human endometrial stromal cells is mediated by distinct signaling pathways.

IGF binding protein-1 (IGFBP-1) is a major product of decidualized human endometrial stromal cells and decidua, and as a modulator of IGF action and/or by independent mechanisms, it regulates cell growth and differentiation and embryonic implantation in these tissues. IGFBP-1 secretion is primarily stimulated by progesterone and cAMP and is inhibited by insulin and IGFs. The signaling pathways mediating the latter are not well defined, and the current study was conducted to determine which pathways mediate the effects of insulin on IGFBP-1 mRNA and protein expression by human endometrial stromal cells decidualized in vitro by progesterone. Cells were cultured and treated with different combinations of insulin; wortmannin, an inhibitor of the phosphatidylinositide-3-kinase (PI3-kinase) pathway; and PD98059, an inhibitor of the MAPK pathway. IGFBP-1 mRNA was determined by real-time PCR, and protein secretion in the conditioned medium was measured by ELISA. Activation of the PI3-kinase and the MAPK pathways was assessed by the detection of phosphorylated AKT and ERK in Western blots, respectively. Insulin inhibited IGFBP-1 mRNA and protein secretion in a dose-dependent fashion, with an ED(50) for the latter 0.127 ng/ml (21.6 pm). Inhibitor studies revealed that at low doses, insulin acts through the PI3-kinase pathway, whereas at higher levels it also activates the MAPK pathway in the inhibition of IGFBP-1. The data demonstrate that human endometrium is a target for insulin action in the regulation of IGFBP-1. At physiological levels insulin likely plays a homeostatic role for energy metabolism in the endometrium, and in hyperinsulinemic states, insulin action on the endometrium may activate cellular mitosis via the MAPK pathway and perhaps predispose this tissue to hyperplasia and/or cancer.

Adult↗

Recombinant gonadotropins.

Recombinant DNA technology makes it possible to produce large amounts of human gene products for pharmacologic applications, supplanting the need for human tissues. The genes for the alpha and beta subunits of follicle-stimulating hormone (FSH), luteinizing hormone (LH), and human chorionic gonadotropin (hCG) have been characterized and cloned. Recombinant FSH (rFSH) has been shown to be safe and effective in the treatment of fertility disorders. In comparison with the urinary gonadotropin products, human menopausal gonadotropins (HMG), and urinary follitropins (uFSH), rFSH is more potent and better tolerated by patients. Recombinant HCG appears to be as efficacious as urinary HCG with the benefit of improved local tolerance. Recombinant LH (rLH) is likely to be recommended as a supplement to rFSH for ovulation induction in hypogonadotropic women. It may also benefit in vitro fertilization patients undergoing controlled ovarian hyperstimulation with rFSH combined with pituitary suppression, with a gonadotropin-releasing hormone agonist or antagonist.

Adult↗