Human Chorionic Gonadotropin and 8-Bromo-Adenosine 3'5'-Monophosphate Stimulate [125I]Low Density Lipoprotein Uptake and Metabolism by Luteinized Human Granulosa Cells in Culture*
- 1 October 1985
- journal article
- research article
- Published by The Endocrine Society in Journal of Clinical Endocrinology & Metabolism
- Vol. 61 (4), 633-638
- https://doi.org/10.1210/jcem-61-4-633
Abstract
In nonsteroidogenic cells, cellular cholesterol requirements and sterol availability determine low density lipoprotein (LDL) receptor expression and LDL metabolism. We wished to learn if hCG and cAMP increase LDL metabolism by cultured luteinized human granulosa cells and whether this increase is dependent on enhanced metabolism of cellular cholesterol stores to steroid. Granulosa cells were cultured for 48 h in medium containing 20% human male serum and then for 48 h in seurm- and hormone-free medium. The cells then received either fresh medium (no additions) or one of the following treatments: 500 mlU hCG/ml, 1.5 mM 8-bromo-cAMP, 100 μg aminoglutethimide (AG)/ml to inhibit cholesterol metabolism to steroid hormones, hCG plus AG, or 8-bromo-cAMP plus AG. After 6-48 h of exposure to tropic agents, specific metabolism of [125I]LDL was determined. hCG and 8-bromo-cAMP significantly increased (P < 0.05) the amount of [125I[DLDL bound (2.2- fold), internalized (2.3-fold), and degraded (2.9-fold) by the luteinized granulosa cells. The apparent Km values for LDL degradation in control and hCG-treated cells were similar (2.0 and 2.6 /tg/ml, respectively). As little as 10 mlU hCG/ml stimulated LDL metabolism in a time-dependent fashion: a stimulatory effect was detected within 6 h of exposure to hCG and was greater after 24 h. AG attenuated but did not prevent the hCG- or 8-bromo-cAMP-stimulated increase in both LDL uptake and metabolism, although it completely inhibited the steroidogenic response. AG alone had no significant effect on [126I] LDL metabolism. We conclude that hCG and cAMP increase LDL metabolism by luteinized human granulosa cells. These effects are apparently not simply a consequence of enhanced cellular cholesterol metabolism to steroids.Keywords
This publication has 11 references indexed in Scilit:
- Hormone changes during the menstrual cycle in abetalipoproteinemia: reduced luteal phase progesterone in a patient with homozygous hypobetalipoproteinemia.Proceedings of the National Academy of Sciences, 1982
- Lipoprotein-Binding Sites in Human Corpus Luteum Membrane Fractions*Endocrinology, 1982
- Progesterone Synthesis by Luteinized Human Granulosa Cells in Culture: The Role of de Novo Sterol Synthesis and Lipoprotein-Carried Sterol*Journal of Clinical Endocrinology & Metabolism, 1982
- Modulation of low density lipoprotein metabolism in bovine granulosa cells as a function of their steroidogenic activity.Journal of Biological Chemistry, 1981
- High density lipoprotein utilization by dispersed rat luteal cellsBiochimica et Biophysica Acta (BBA) - Lipids and Lipid Metabolism, 1981
- Plasma Lipoprotein Regulation of Progesterone Biosynthesis by Human Corpus Luteum Tissue in Organ Culture*Journal of Clinical Endocrinology & Metabolism, 1981
- Influence of adrenocorticotropin on transport of a cholesteryl linoleate-low density lipoprotein complex into adrenal tumor cells.Journal of Biological Chemistry, 1979
- Receptor-mediated uptake of low density lipoprotein and utilization of its cholesterol for steroid synthesis in cultured mouse adrenal cells.Journal of Biological Chemistry, 1977
- A Rapid and Sensitive Method for the Quantitation of Microgram Quantities of Protein Utilizing the Principle of Protein-Dye BindingAnalytical Biochemistry, 1976
- THE DISTRIBUTION AND CHEMICAL COMPOSITION OF ULTRACENTRIFUGALLY SEPARATED LIPOPROTEINS IN HUMAN SERUMJournal of Clinical Investigation, 1955