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An Ex vivo Model to Study Hormone Action in the Human Breast
Published on: January 8, 2015
Biological responses of progestogen metabolites in normal and cancerous human breast
Abstract:
At present, more than 200 progestogen molecules are available, but their biological response is a function of various factors: affinity to progesterone or other receptors, their structure, the target tissues considered, biological response, experimental conditions, dose, method of administration and metabolic transformations. Metabolic transformation is of huge importance because in various biological processes the metabolic product(s) not only control the activity of the maternal hormone but also have an important activity of its own. In this regard, it was observed that the 20-dihydro derivative of the progestogen dydrogesterone (Duphaston®) is significantly more active than the parent compound in inhibiting sulfatase and 17β-hydroxysteroid dehydrogenase in human breast cancer cells. Estrone sulfatase activity is also inhibited by norelgestromin, a norgestimate metabolite. Interesting information was obtained with a similar progestogen, tibolone, which is rapidly metabolized into the active 3α/3β-hydroxy and 4-ene metabolites. All these metabolites can inhibit sulfatase and 17β-hydroxysteroid dehydrogenase and stimulate sulfotransferase in human breast cancer cells. Another attractive aspect is the metabolic transformation of progesterone itself in human breast tissues. In the normal breast progesterone is mainly converted to 4-ene derivatives, whereas in the tumor tissue it is converted mostly to 5α-pregnane derivatives. 20α-Dihydroprogesterone is found mainly in normal breast tissue and possesses antiproliferative properties as well as the ability to act as an anti-aromatase agent. Consequently, this progesterone metabolite could be involved in the control of estradiol production in the normal breast and therefore implicated in one of the multifactorial mechanisms of the breast carcinogenesis process. In conclusion, a better understanding of both natural and synthetic hormone metabolic transformations and their control could potentially provide attractive new therapies for the treatment of hormone-dependent pathologies.
Insights
Metabolic transformations of progestogens and progesterone significantly impact their activity, with specific metabolites showing potent inhibition of enzymes crucial in hormone-dependent cancers. Understanding these pathways offers new therapeutic strategies for hormone-related diseases.
Area of Science:
- Endocrinology
- Molecular Biology
- Cancer Research
Background:
- Over 200 progestogen molecules exist, but their biological effects depend on factors like receptor affinity, structure, and metabolism.
- Metabolic transformations are critical as metabolites can possess distinct and significant biological activities compared to the parent hormone.
Purpose of the Study:
- To investigate the role of metabolic transformations of progestogens and progesterone in hormone-dependent pathologies, particularly breast cancer.
- To explore the potential of hormone metabolites as therapeutic agents.
Main Methods:
- Analysis of metabolic products of progestogens like dydrogesterone and tibolone in human breast cancer cells.
- Comparison of progesterone metabolism in normal versus tumor breast tissues.
- Assessment of enzyme inhibition (sulfatase, 17β-hydroxysteroid dehydrogenase, aromatase) and enzyme stimulation (sulfotransferase) by hormone metabolites.
Main Results:
- The 20-dihydro derivative of dydrogesterone showed higher activity in inhibiting sulfatase and 17β-hydroxysteroid dehydrogenase than dydrogesterone.
- Metabolites of tibolone inhibited key enzymes and stimulated sulfotransferase in breast cancer cells.
- Progesterone metabolism differs between normal (4-ene derivatives) and tumor (5α-pregnane derivatives) breast tissues, with 20α-Dihydroprogesterone in normal tissue exhibiting antiproliferative and anti-aromatase properties.
Conclusions:
- Metabolic transformations of progestogens and progesterone yield active compounds that can modulate key enzymes involved in hormone-dependent diseases.
- Understanding these metabolic pathways and their control is crucial for developing novel therapeutic strategies for hormone-related pathologies.

