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Selective estrogen receptor modulators (SERMs).

Naturally occurring estrogens, such as 17 beta-estradiol and estrone, have traditionally been thought to play a central role in the development and maintenance of the female reproductive system and secondary sexual characteristics. In recent years, their beneficial effects on the skeleton, the cardiovascular system, and the central nervous system, as well as the cancer risks associated with long term exposure have also been recognized. The widespread use of "antiestrogens" such as tamoxifen for the prevention and treatment of breast cancer has revealed that such compounds, while functioning as estrogen antagonists in mammary tissue, actually mimic the effects of estrogen in other tissues. The search for more selective agents has led to the development of raloxifene, a Selective Estrogen Receptor Modulator, which functions as an estrogen antagonist in the breast and uterus and as an estrogen agonist in the skeleton and cardiovascular system. Recent progress in the development of SERMs is the subject of this review, with an emphasis on structure activity relationships and on their effects in non-traditional target tissues.

Animals↗

The combination of a novel selective estrogen receptor modulator with an estrogen protects the mammary gland and uterus in a rodent model: the future of postmenopausal women's health?

The Women's Health Initiative Study and other reports have created major uncertainty among postmenopausal women and physicians concerning hormone replacement therapy. We have thus investigated the possibility of replacing the progestin in hormone replacement therapy by a novel selective estrogen receptor (ER) modulator having potent and pure antiestrogenic activity in the mammary gland and uterus. As measured by changes in histology and Cdc47 labeling in the rat model, the present study shows that the stimulatory effect of estradiol in the mammary gland and uterus is efficiently blocked by simultaneous administration of the novel selective ER modulator EM-652, but bone mineral density is preserved and serum cholesterol is decreased. After the administration of 14C-labeled EM-652, we observed that there is no detectable radioactivity in the brain. Moreover, ER alpha immunoreactivity remained constant in the hypothalamus after EM-652 treatment, whereas ER alpha became almost undetectable in the mammary gland and uterus. The present data show the poor or absent access of EM-652 to the brain, whereas the effects of estrogens are efficiently neutralized in the mammary gland and uterus. Such data support the exciting possibility of a novel approach that could meet most of the needs of women's health at menopause, namely control of hot flushes and prevention of breast, uterine, and ovarian cancer as well as osteoporosis and potentially helping brain function and preventing Alzheimer's disease with no identifiable risk or negative effect.

Animals↗

Comparative effects of the selective estrogen receptor modulators (-)-, (+)- and (+/-)-Z bisdehydrodoisynolic acids on metabolic and reproductive parameters in male and female rats.

Doisynolic acids are non-steroidal estrogenic compounds originally obtained from alkali fusion of estrone and equilenin. Z-bisdehydrodoisynolic acids (Z-BDDA) exhibit a low binding affinity accompanied by a disproportionately high biologic activity. Two experiments were designed to investigate the chronic effects of (+)-, (-)- and (+/-)-Z-BDDA and (+)-17beta-estradiol (E2) in male and female rats. The (+)-, (-)- and (+/-)-forms Z-BDDA were prepared and injected, daily for four to six weeks into male and female rats and changes in body weight, food intake, metabolic parameters, and reproductive parameters were investigated. Results from both experiments demonstrate that in male and female rats, (+)- and (+/-)-Z-BDDA had similar estrogenic effects on reproductive organ weight. Surprisingly, (-)-Z-BDDA did not induce the increase in uterine weight observed with (+)- and (+/-)-Z-BDDA and E2, demonstrating selective estrogen receptor modulation (SERM). Beneficial metabolic effects, although compound- and gender-specific, included a significant weight repression, reduction in cholesterol, reduction in blood glucose, and positive alterations in body fat distribution. Future research defining the optimal dosages of (-)-Z-BDDA that will maximize beneficial effects and minimize undesirable effects on reproductive tissues will lead to more efficacious treatment options for endocrine-responsive conditions in males and females.

Animals↗

Selective estrogen receptor modulators: a controversial approach for managing postmenopausal health.

Hormone replacement therapy (HRT) is considered the standard of care for managing the acute (e.g., hot flashes, vaginal dryness) and long-term (e.g., increased risk of cardiovascular disease, osteoporosis) sequelae of menopause. A group of synthetic nonsteroidal compounds, which act on the estrogen receptor, have been promoted for use as an alternative to hormonal therapy for postmenopausal women. Originally called antiestrogens because of their ability to antagonize the action of estrogen, these compounds possess both agonist and antagonist properties of estrogen action. They are now referred to as selective estrogen receptor modulators (SERMs). This article reviews the mechanism of action and the efficacy and safety data for SERMs currently used for clinical purposes. These data may indicate why the use of SERMs is a controversial alternative to HRT.

Cardiovascular Diseases↗

Therapeutic potential of selective estrogen receptor modulators.

The hormone estradiol has effects on many tissues in both males and females. Some of these effects, such as inhibition of cancer growth and modulation of the devastating effects of aging on bone, brain, skin and bladder, are good. Others, such as the effect on the breast and endometrium, are undesirable. The task of designing drugs that would have only the good effects of estradiol has, until recently, seemed almost impossible because it was thought that there was only one estrogen receptor and that an estrogenic agent was definitively categorized as an estrogen agonist or an antagonist. More recently we have learnt that there are two estrogen receptors which, under certain conditions, have opposite effects on gene transcription. In addition, it is now understood that agents cannot be described as agonists or antagonists because a single agent can be an agonist in one tissue and an antagonist in another. The term 'selective' estrogen receptor modulator' was designed to incorporate this. The idea of estrogen receptor modulators has raised new hope that tissue specific estrogens or anti-estrogens can be designed.

Animals↗

Hypocholesterolemic activity of raloxifene (LY139481): pharmacological characterization as a selective estrogen receptor modulator.

After once-daily oral dosing in ovariectomized rats, raloxifene (LY139481) hydrochloride produced dose- and time-dependent reductions in serum cholesterol and high-density lipoprotein-cholesterol. Paired-feeding studies demonstrated that effects of raloxifene on serum lipids were not secondary to effects on food consumption. Maximal reductions in serum cholesterol occurred within 4 days of raloxifene administration or sooner, depending on the administered dose. The ED50 for 50% reduction in serum cholesterol by raloxifene was 0.13 +/- 0.04 mg/kg/day (mean +/- S.E.M., n = 17); maximal cholesterol reduction by raloxifene (68%) was significantly less than that produced by estrogen (17 alpha-ethinylestradiol; 89%) after 4 to 7 days of daily dosing. Dose-response curves for cholesterol lowering by raloxifene were generated in the presence of varying doses of 17 alpha-ethinylestradiol; two-way analysis of variance revealed significant interactions between estrogen and raloxifene with respect to cholesterol lowering (P < .001). Furthermore, a high dose of raloxifene (10 mg/kg/day) prevented further reduction of serum cholesterol by estrogen (1-100 micrograms/kg/ day) beyond that produced by raloxifene alone. For a series of closely related structural analogs of raloxifene, log(ED50) values for cholesterol lowering were highly correlated with log(relative binding affinity) for the estrogen receptor (r = 0.93; P < .0001). Thus, cholesterol lowering by raloxifene in ovariectomized rats is mediated primarily via partial agonist effects at estrogen receptors. Taken together with previous observations in uterine tissue of estrogen antagonism by raloxifene in the absence of significant agonism, the present findings support the classification of raloxifene as a selective estrogen receptor modulator.

Animals↗

Small artery endothelial dysfunction in postmenopausal women: in vitro function, morphology, and modification by estrogen and selective estrogen receptor modulators.

OBJECTIVE: Our objective was to assess vascular endothelial function and morphology in resistance vasculature from healthy pre- and postmenopausal women in vitro and to determine potential mechanisms of vascular protection by estrogenic compounds. METHODS: Arteries (approximately 220 microm) were dissected from sc fat biopsies obtained from healthy premenopausal and postmenopausal women. Flow-mediated dilatation, agonist-induced endothelium-dependent and -independent relaxation, and myogenic responses to changes in intraluminal pressure were evaluated before and after incubation (3 h) with 17beta-estradiol, propyl pyrazole triol [a selective estrogen receptor-alpha (ERalpha) agonist], raloxifene (a second-generation selective ER modulator), and the phytoestrogen genistein, using pressure myography technique. In addition, endothelial morphology was assessed in arteries from pre- and postmenopausal women, and distribution of ERs within the artery wall from postmenopausal women was evaluated. RESULTS: Functional and morphological disturbances of endothelial function were observed in small arteries from postmenopausal women. Incubation with 17beta-estradiol improved postmenopausal resistance artery function, an effect mimicked by propyl pyrazole triol but not raloxifene or genistein. Immunohistochemical staining revealed similar expression of ERalpha and ERbeta in the smooth muscle of arteries from postmenopausal women; however, ERalpha was dominant in endothelium. CONCLUSIONS: The resistance arteries from postmenopausal women show functional and morphological abnormalities. ERalpha may contribute to vascular protection by estrogens in the peripheral resistance circulation in postmenopausal women. Selective ERalpha agonists warrant further investigation as therapeutic agents for prevention of cardiovascular disease in postmenopausal women.

Adult↗

Identification of selective estrogen receptor modulators by their gene expression fingerprints.

Clinical studies have shown that estrogen replacement therapy (ERT) reduces the incidence and severity of osteoporosis and cardiovascular disease in postmenopausal women. However, long term estrogen treatment also increases the risk of endometrial and breast cancer. The selective estrogen receptor (ER) modulators (SERMs) tamoxifen and raloxifene, cause antagonistic and agonistic responses when bound to the ER. Their predominantly antagonistic actions in the mammary gland form the rationale for their therapeutic utility in estrogen-responsive breast cancer, while their agonistic estrogen-like effects in bone and the cardiovascular system make them candidates for ERT regimens. Of these two SERMs, raloxifene is preferred because it has markedly less uterine-stimulatory activity than either estrogen or tamoxifen. To identify additional SERMs, a method to classify compounds based on differential gene expression modulation was developed. By analysis of 24 different combinations of genes and cells, a selected set of assays that permitted discrimination between estrogen, tamoxifen, raloxifene, and the pure ER antagonist ICI164384 was generated. This assay panel was employed to measure the activity of 38 compounds, and the gene expression fingerprints (GEFs) obtained for each compound were used to classify all compounds into eight groups. The compound's GEF predicted its uterine-stimulatory activity. One group of compounds was evaluated for activity in attenuating bone loss in ovariectomized rats. Most compounds with similar GEFs had similar in vivo activities, thereby suggesting that GEF-based screens could be useful in predicting a compound's in vivo pharmacological profile.

Animals↗

Genomic and nongenomic mechanisms of nitric oxide synthesis induction in human endothelial cells by a fourth-generation selective estrogen receptor modulator.

Cardiovascular disease is the leading cause of morbidity and mortality in postmenopausal women. EM-652 (acolbifene) is a fourth-generation selective ER modulator (SERM) exerting complete antiestrogenic effects on the breast and uterus. EM-652 potently inhibits bone resorption and induces positive lipid modifications in estrogen-deficient animals. As most of the cardioprotective actions of estrogen are exerted directly at the vascular level, we studied the effects of EM-652 on endothelial production of nitric oxide (NO) in vitro and in vivo. EM-652 triggers NO release by human umbilical vein endothelial cells through nongenomic mechanisms, rapidly activating endothelial nitric oxide synthase (eNOS) via an ER-dependent sequential activation of MAPKs and PI3K/Akt pathways independently from gene transcription or protein synthesis. Moreover, EM-652 increases eNOS protein levels during prolonged treatments. Upon pharmacological comparison, EM-652 is markedly more potent than the SERMs raloxifene and tamoxifen in increasing NO synthesis from endothelial cells. In ovariectomized and fertile rats, EM-652 increases aortic eNOS expression and enzymatic activity at low, but not at higher, dosages. The present data show that EM-652 (acolbifene) has estrogen-like activity on the vascular wall, directly increasing NO production through genomic and nongenomic mechanisms in vitro and in vivo.

Animals↗

Treatment of Postmenopausal Breast Cancer with Selective Estrogen Receptor Modulators (SERMs).

Endocrine therapy that targets the estrogen receptor (ER) is a standard of care for the treatment of postmenopausal women with ER-positive breast cancer. The selective ER modulator (SERM) tamoxifen has been in use for the treatment of advanced breast cancer for more than 30 years and is currently a treatment option for all stages of ER-positive disease. Tamoxifen blocks the action of estrogen by binding to the ER, and possesses both ER-agonist and antagonist properties. Unfortunately, long-term use of tamoxifen is associated with several important concerns including an increased risk of endometrial cancer and thromboembolic complications. In addition, many patients who initially respond to tamoxifen eventually relapse with resistant disease. New treatment approaches are therefore required. A number of alternative SERMs have been tested as substitutes for tamoxifen. These include; toremifene, droloxifene, idoxifene, and keoxifene. Unfortunately, the SERMs have not proved to be more effective than tamoxifen for the treatment of advanced breast cancer and have shown a high level of cross-resistance with tamoxifen. The subsequent development of the aromatase inhibitors (AIs) is an important therapeutic advance by creating a "no estrogen" environment. Another approach is the development of pure antiestrogens. Fulvestrant is a novel ER antagonist that destroys the ER and its signaling pathway and is not associated with tamoxifen-like agonist effects. It produces high response rates compared with other SERMs and is not cross-resistant to tamoxifen or aromatase inhibitors and is equally as effective as the AI anastrozole in the treatment of postmenopausal women with advanced breast cancer who have progressed on prior adjuvant tamoxifen therapy. This review article discusses the significant and continuing value of SERMs for the treatment of postmenopausal ER-positive breast cancer.

Aged↗