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Selective estrogen receptor modulators: a look ahead.

Selective estrogen receptor modulators (SERMs) are structurally diverse compounds that bind to estrogen receptors (ER) and elicit agonist or antagonist responses depending on the target tissue and hormonal milieu. They are being evaluated primarily for conditions associated with aging, including hormone-responsive cancer, osteoporosis and cardiovascular disease. Several SERMs are marketed or are in clinical development, including triphenylethylenes (tamoxifen and its derivatives: toremifene, droloxifene and idoxifene), chromans (levormeloxifene), benzothiophenes (raloxifene, LY353381) and naphthalenes (CP336,156). Tamoxifen and toremifene, both used to treat advanced breast cancer, also have beneficial effects on bone mineral density and serum lipids in postmenopausal women. Tamoxifen was recently shown to decrease the risk of invasive breast cancer in women at high risk. Unfortunately, both drugs also have stimulatory effects on the endometrium. Raloxifene, used for prevention of postmenopausal osteoporosis and fragility fractures, also has favourable effects on bone mineral density, serum lipids and the incidence of invasive breast cancer in postmenopausal women but does not stimulate the endometrium. Like replacement estrogens, SERMs increase the risk of venous thromboembolism. SERMs offer post-menopausal women many of the advantages of estrogen replacement while mitigating some of the disadvantages, particularly the concern over breast cancer. Newer SERMs, exemplified by raloxifene, also eliminate the concerns over endometrial stimulation that were not addressed by first generation SERMs. The clinical success of SERMs has set the stage for a variety of drug therapies based on selective modulation of nuclear receptor activity.

Estrogen Antagonists↗

Breast cancer chemoprevention phase I evaluation of biomarker modulation by arzoxifene, a third generation selective estrogen receptor modulator.

PURPOSE: Arzoxifene, a new selective estrogen receptor modulator with strong breast antiestrogen activity and absence of uterine agonist activity, was explored as a potential chemoprevention agent. We performed a multi-institutional evaluation of arzoxifene in women with newly diagnosed ductal carcinoma in situ or T1/T2 invasive cancer. EXPERIMENTAL DESIGN: In a Phase IA trial, 50 pre- or postmenopausal women were randomized to 10, 20, or 50 mg of arzoxifene daily in the interval between biopsy and re-excision or were enrolled as no-treatment controls. In a Phase IB trial, 76 postmenopausal women were randomized to 20 mg of arzoxifene versus matched placebo. Serum specimens collected at entry and at re-excision were assayed for various hormones and growth factors. Tissue from biopsies (estrogen receptor + and/or progesterone receptor +) and re-excision specimens was evaluated immunohistochemically for proliferation (Ki-67 by MIB-1 and proliferating cell nuclear antigen) and other biomarkers. RESULTS: In both trials, increases in serum sex hormone binding globulin were noted, as were decreases in insulin-like growth factor (IGF)-I and the IGF-I:IGF binding protein-3 ratio (P < 0.007 versus control/placebo). For 45 evaluable women in Phase IA, decreases in proliferation indices were more prevalent for arzoxifene (particularly 20 mg) than for controls. For 58 evaluable women in Phase IB, a decrease in estrogen receptor expression for arzoxifene was observed compared with no change with placebo (P = 0.0068). However, decreases in proliferation indices for arzoxifene were not statistically different from placebo, perhaps due to a confounding effect of stopping hormone replacement therapy before entry. CONCLUSION: Given the favorable side effect profile and the biomarker modulations reported here, arzoxifene remains a reasonable candidate for additional study as a breast cancer chemoprevention agent.

Anticarcinogenic Agents↗

Selective estrogen receptor modulators--a new age of estrogens in cardiovascular disease?

A large body of evidence suggests hormone replacement therapy (HRT) reduces cardiovascular risk in postmenopausal women. It is, however, associated with serious side effects, such as increased risk of breast and endometrial cancer. This has likely caused uneasiness among both women and health care providers. A new class of compounds, called selective estrogen receptor modulators (SERMs), have emerged. Through their interactions at the estrogen receptor level they have become a class of compounds distinct from estrogen. While they share similar effects with estrogen on such factors as lipid profile and bone density, they affect other tissues differently. Specifically, they do not induce endometrial hyperplasia and are therefore not associated with endometrial cancer. In vitro studies have also shown that they inhibit lipoprotein oxidation and vascular smooth muscle cell proliferation. The cumulative effects of these compounds may prove quite beneficial in reducing cardiovascular risk in postmenopausal women while avoiding serious side effects. This may, in turn, ease much of the anxiety surrounding the issue of HRT. Clinical trials are presently being conducted to evaluate the effectiveness of raloxifene, a SERM, on cardiovascular risk reduction in postmenopausal women.

Adult↗

Benzoxepin-derived estrogen receptor modulators: a novel molecular scaffold for the estrogen receptor.

We present and examine the efficacy of a novel benzoxepin-based scaffold for modulation of the human estrogen receptor. Receptor tolerance of this new molecular scaffold is examined through presentation of experimentally determined antiproliferative effects on human MCF-7 breast tumor cells and measured binding affinities. The effect of functional group substitution on the benzoxepin scaffold is explored through a brief computational structure-activity relationship investigation with molecular simulation.

Antineoplastic Agents↗

Androgen dependent mammary gland virilism in rats given the selective estrogen receptor modulator LY2066948 hydrochloride.

A selective estrogen receptor modulator (SERM) is a nonsteroidal compound with tissue specific estrogen receptor (ER) agonist or antagonist activities. In animals, SERMs may produce morphologic changes in hormonally-sensitive tissues like the mammary gland. Mammary glands from female rats given the SERM LY2066948 hydrochloride (LY2066948) for 1 month at >or= 175 mg/kg had intralobular ducts and alveoli lined by multiple layers of vacuolated, hypertrophied epithelial cells, resembling in part the morphology of the normal male rat mammary gland. We hypothesized that these SERM-mediated changes represented an androgen-dependent virilism of the female rat mammary gland. To test this hypothesis, the androgen receptor antagonist flutamide was co-administered with LY2066948 (175 mg/kg) to female rats for 1 month. Female rats given SERM alone had hyperandrogenemia and the duct and alveolar changes described here. Flutamide cotreatment did not affect serum androgen levels but completely blocked the SERM-mediated mammary gland change. In the mouse, a species that does not have the sex-specific differences in the mammary gland observed in the rat, SERM treatment resulted in hyperandrogenemia but did not alter mammary gland morphology. These studies demonstrate that LY2066948 produces species-specific, androgen-dependent mammary gland virilism in the female rat.

Androgen Antagonists↗

Future use of selective estrogen receptor modulators and aromatase inhibitors.

Selective estrogen receptor modulators (SERMs) may act as estrogens or antiestrogens depending on the cell and tissue targets. The triphenylethylene SERMs are represented by tamoxifen and toremifene and a new agent with a novel carboxylic acid side chain (GW5638). Because of isomerization in the triphenylethylene molecule, "fixed ring" SERMs were introduced. The major one in development is the benzothiophene arzoxiphene (LY353381), which is now in Phase III clinical trial versus tamoxifen. A fourth group of SERMs is based on the estrogen molecule and comprises the so-called "pure" antiestrogen ICI 182,780 (fulvestrant, Faslodex) and a new oral analogue just entering trials, SR16234. The steroidal aromatase inhibitors [AIs (40H androstenedione 'and exemestane)] inactivate aromatase, whereas the triazole AIs (anastrozole and letrozole) inhibit the enzyme via the heme prosthetic group. Thus, there are two groups of AIs that show relative non-cross-resistance in advanced breast cancer and four groups of SERMs that also show a high degree of non-cross-resistance. With six different treatments and six or more clinical situations (prevention, neoadjuvant, adjuvant, and first- and second-line treatments for advanced disease) in which they may be used, the possible combinations of treatment are enormous. At present, we have few clinical pointers to optimal sequence of treatments. Now that most of the appropriate comparative trials have been performed, it may be the time to initiate novel approaches. These include alternating and sequential treatments, preferably with treatments changed before overt progression occurs.

Aromatase Inhibitors↗

[Clinical results of selective estrogen receptor modulators (SERM)].

The SERMs (selective estrogen receptor modulators) are a new class of molecules that bind to the estrogen receptor, resulting in an estradiol agonist or antagonist response according to the target tissue. Raloxifene, a new SERM, has been shown to prevent postmenopausal bone loss, to reduce the risk of vertebral fractures in osteoporotic women, to decrease serum cholesterol and its LDL fraction, and to reduce significantly the risk of breat cancer. Raloxifene is available in France for the prevention of post-menopausal osteoporosis.

Bone and Bones↗

[Lasofoxifene, a next generation estrogen receptor modulator: preclinical studies].

Estrogen replacement therapy, in spite of efficacy in the prevention of osteoporotic fractures, has significant side effects and risks that limit its widespread usage in postmenopausal women. Thus significant medical need exists to find modalities that prevent osteoporosis, but without the side effects of estrogen. Selective estrogen receptor modulators (SERMs) have the potential to provide the skeletal benefits of estrogen without the increased risk of uterine and breast cancer. Tamoxifen, a first generation SERM is approved for the prevention and treatment of breast cancer, and raloxifene, a second generation SERM has been approved for the prevention and treatment of osteoporosis. Lasofoxifene, a new potent, nonsteroidal SERM, binds with high affinity to human estrogen receptors and acts as a tissue selective estrogen antagonist or agonist. In preclinical models of postmenopausal osteoporosis, lasofoxifene inhibited bone turnover and prevented bone loss throughout the skeleton. In studies designed to investigate the combination of lasofoxifene with estrogen, lasofoxifene blocked the hypertrophic effects of estrogen in the uterus, but did not block the bone protective effects. In immature and aged female rats, lasofoxifene did not affect the uterine weight and uterine histology. In preclinical studies designed to evaluate the effects of lasofoxifene on the uterus, a slight increase in wet uterine weight was observed in immature and aged female rats, but this difference was not observed in dry uterine weight suggesting that the increased uterine weight was due to increased water content in the tissue. In preclinical studies designed to evaluate the effects of lasofoxifene in breast cancer, lasofoxifene inhibited breast tumor formation in mice injected with human MCF-7 breast cancer cells and in rats bearing mammary carcinomas. Thus, in preclinical models, lasofoxifene, a next generation SERM, prevents estrogen deficiency-induced bone loss, inhibits breast tumor formation, and reduces serum cholesterol, without causing uterine hypertrophy. These data suggest that lasofoxifene is a new potential therapy for the prevention of osteoporosis in postmenopausal women.

Animals↗

Molecular determinants of tissue selectivity in estrogen receptor modulators.

Interaction of the estrogen receptor/ligand complex with a DNA estrogen response element is known to regulate gene transcription. In turn, specific conformations of the receptor-ligand complex have been postulated to influence unique subsets of estrogen-responsive genes resulting in differential modulation and, ultimately, tissue-selective outcomes. The estrogen receptor ligands raloxifene and tamoxifen have demonstrated such tissue-specific estrogen agonist/antagonist effects. Both agents antagonize the effects of estrogen on mammary tissue while mimicking the actions of estrogen on bone. However, tamoxifen induces significant stimulation of uterine tissue whereas raloxifene does not. We postulate that structural differences between raloxifene and tamoxifen may influence the conformations of their respective receptor/ligand complexes, thereby affecting which estrogen-responsive genes are modulated in various tissues. These structural differences are 4-fold: (A) the presence of phenolic hydroxyls, (B) different substituents on the basic amine, (C) incorporation of the stilbene moiety into a cyclic benzothiophene framework, and (D) the imposition of a carbonyl "hinge" between the basic amine-containing side chain and the olefin. A series of raloxifene analogs that separately exemplify each of these differences have been prepared and evaluated in a series of in vitro and in vivo assays. This strategy has resulted in the development of a pharmacophore model that attributes the differences in effects on the uterus between raloxifene and tamoxifen to a low-energy conformational preference imparting an orthogonal orientation of the basic side chain with respect to the stilbene plane. This three-dimensional array is dictated by a single carbon atom in the hinge region of raloxifene. These data indicate that differences in tissue selective actions among benzothiophene and triarylethylene estrogen receptor modulators can be ascribed to discrete ligand conformations.

Animals↗

Review on raloxifene: profile of a selective estrogen receptor modulator.

Raloxifene is a selective estrogen receptor modulator approved for prevention and treatment of osteoporosis in postmenopausal women. Raloxifene has an estrogen-agonistic effect on bone, although it is unclear how this effect comes about. It has been proven that raloxifene decreases levels of both bone formation markers and bone resorption markers in postmenopausal women. Moreover, it preserves the bone mineral density at most skeletal sites in these women. Raloxifene decreases the serum levels of low-density lipoprotein cholesterol and total cholesterol. In breast tissue, raloxifene is an estrogen antagonist. It decreases the risk of breast cancer in postmenopausal women. In contrast to estrogen and tamoxifen, raloxifene does not increase the risk of uterine cancer and it does not cause endometrial proliferation. Raloxifene is rapidly absorbed after oral administration, but its bioavailability is only 2% because of an extensive first-past effect. The maximum plasma concentration of 0.5 ng/ml is reached after 6 hours. Raloxifene is more than 95% bound to plasma proteins and the apparent volume of distribution is 2,348 l/kg. The clearance is 40 - 60 l/kg x h and the half-life of raloxifene after multiple dosing is 32.5 h. Less than 0.2% of an oral dose is excreted unchanged in the urine and less than 6% is excreted in urine as glucuronide conjugates. Serious adverse event caused by raloxifene is a 3-fold increase in the risk of thromboembolic events.

Adult↗

[Specific estrogen receptor modulators (SERMs)].

PRINCIPLE CHARACTERISTICS: Specific estrogen receptor modulators (SERMs) are non-steroid molecules that maintain some of the agonist properties of estrogens on bone tissue and cardiovascular system, but not their stimulating effects on the gynecological sphere. OLD AND NEW MOLECULES: SERMs were formerly known as "antiestrogens" in reference to their primary inhibition of breast tumor growth. Hence, tamoxifen has been used for many years as adjuvant treatment of breast cancer. However, its long-term use is limited by the risk of endometrial hyperplasia, which has led to the development of new molecules devoid of this side effect. Among these molecules, raloxifen, more specifically reserved for the prevention of osteoporosis in menopausal women, has been the subject of major pre-clinical and clinical developments. THE EFFECTS OF RALOXIFEN: In the prevention of postmenopausal bone loss and vertebral fractures, the effects of raloxifen have been established in several randomized, double-blind studies against placebo, which were the basis of its current marketing authorization. Moreover, raloxifen has a favorable effect on lipid profile and, contrary to oral estrogens, does not increase the C-Reactive protein. Endometrial tolerance is good and it is associated with a significant reduction in the incidence of breast cancer in elderly osteoporotic women. ITS PLACE IN THERAPY: Raloxifen's properties raise the question of its place, together with hormone replacement therapy (HRT), in the management of menopausal women. Its absence of efficacy in the control of the climacteric syndrome does not a priori make it a treatment of choice at the beginning of postmenopausal phase. However, its effects in the prevention of vertebral fracture, its good gynecological tolerance and the fact that it is easy to administer, are arguments for its administration in the prevention of osteoporosis in 60 year-old women or in relay to HRT. Its safety on gynecological level privileges its use in all women exhibiting benign breast or uterine pathologies at the origin of poor tolerance to HRT.

Adult↗

Clinical use of selective estrogen receptor modulators.

The concept of selective estrogen receptor modulators (SERMs) is derived from the observation that tamoxifen, an effective adjuvant therapy of breast cancer that has an antiestrogenic effect on breast tissue, has estrogen-like effects on the skeleton and on plasma lipoproteins. Raloxifene is a SERM that has undergone extensive clinical investigation in the prevention and treatment of postmenopausal osteoporosis. It prevents bone loss at all skeletal sites, and in a large trial in osteoporotic women, the incidence of vertebral fractures was significantly decreased (relative risk 0.64) after up to 4 years of treatment with raloxifene 60 mg. The decrease of nonvertebral fractures did not reach the level of significance. Raloxifene decreased significantly the incidence of breast cancer (relative risk 0.28) and has no effect on the risk of endometrial cancer. SERMs are likely to play an important role in the management of postmenopausal women.

Bone Density↗

Pharmacokinetics of (deaminohydroxy)toremifene in humans: a new, selective estrogen-receptor modulator.

PURPOSE: New selective estrogen-receptor modulators for the treatment and prevention of osteoporosis, cardiovascular disease and breast cancer are currently the focus of intense research. (Deaminohydroxy)toremifene (Z-2-[4-(4-chloro- 1,2-diphenyl-but-1-enyl)phenoxy]ethanol; FC-1271a) has been shown to prevent bone resorption in rats while having no or weak estrogen-like effects on the uterus, which makes it a good candidate drug for osteoporosis prevention. Our purpose here was to examine the pharmacokinetics of (deaminohydroxy)toremifene in humans included in two phase-I studies. METHODS: The first was a single-dose, dose-escalation study with 28 healthy male volunteers. Doses ranged from 10 mg to 800 mg. The second study was conducted during a 12-week period with 40 healthy, post-menopausal women, who received repeated oral doses of 25-200 mg. Standard pharmacokinetic parameters were assessed. RESULTS: In the single-dose study, time to reach peak concentration (tmax) ranged from 1.3 h to 4.0 h; peak concentration (Cmax) ranged from 15 ng/ml to 445 ng/ ml; and the estimated terminal elimination half-life (mean +/- SD; t1/2) was 24.8 +/- 7.0 h. In the repeated-dose study, tmax ranged from 1.9 h to 2.6 h at 6 weeks and from 2.5 h to 2.9 h at 12 weeks. Cmax ranged from 295 ng/ml to 1,043 ng/ml at 6 weeks and from 25 ng/ml to 1211 ng/ml at 12 weeks. The average t1/2 at all dose levels was 29.7 +/- 1.5 h (overall mean +/- SD). Strong linear correlations between the dose and Cmax and between the dose and the area under the curve were observed in both studies. CONCLUSION: Our results indicate that (deaminohydroxy)toremifene has pharmacokinetics suitable for single daily dosing. The prophylactic use of this agent in women susceptible to development of osteoporosis, cardiovascular disease and breast cancer could, therefore, be tested using a once-daily dosing schedule similar to those of other hormone-replacement therapy regimens.

Adolescent↗

Inhibition of intimal hyperplasia using the selective estrogen receptor modulator raloxifene.

HYPOTHESIS: The selective estrogen receptor modulator raloxifene hydrochloride inhibits intimal hyperplasia. DESIGN: Controlled laboratory experiment. SETTING: Experimental animal model. INTERVENTION AND MAIN OUTCOME MEASURES: Forty-three senile female sheep were randomized to sham operation, ovariectomy, or ovariectomy followed by treatment with 17beta-estradiol or raloxifene. Six months after initial operation, we performed necropsy with histological assessment of the aortic bifurcation and bone mineral densitometry and assayed serum lipids. RESULTS: After 6 months, serum triglyceride and total and high-density lipoprotein cholesterol levels were similar among groups and within the reference range. Ovarian ablation alone resulted in intimal hyperplasia, which was attenuated with estradiol and raloxifene therapy. Furthermore, estradiol and raloxifene therapy reversed ovariectomy-induced decreases in bone mineral density measured using spine morphometry. CONCLUSIONS: Raloxifene attenuates ovariectomy-induced aortic intimal hyperplasia independent of serum lipid levels. These data suggest that raloxifene, in addition to its beneficial influence on bone density, has direct, beneficial cardiovascular effects.

Animals↗

Target specificity of selective estrogen receptor modulators within human endometrial cancer cells.

Selective estrogen receptor modulators (SERMs) are estrogen receptor (ER) ligands that function as antagonists in some tissues, but have either partial or full agonist activity in others. SERMs often display variable partial agonist activity in uterine tissues and this activity can be displayed in uterine cell lines such as the human Ishikawa endometrial adenocarcinoma cell line. In this study, we compared the effects of several ER ligands including some SERMs on alkaline phosphatase (AP) activity and the expression of an ER target gene, the progesterone receptor (PR), in Ishikawa cells. As expected, estradiol (E2) was a potent and efficacious activator of both AP activity and PR mRNA expression. 4-Hydroxytamoxifen (4OHT) stimulated AP activity to a level 47% of that of E2 (100nM), while CP 336156 (lasofoxifene) increased AP activity 18%. A benzothiophene, such as LY 117018, a raloxifene analog, stimulated AP even less with values approximately 11% of E2-stimulated levels. A pure antiestrogen, ICI 182,780 did not stimulate AP activity. Interestingly, when we examined the ability of these compounds to increase the expression of the ER target gene, PR, a different rank order of efficacy was detected. After E2, CP 336156 was the most efficacious in increasing PR mRNA with a maximal stimulation of 20% of E2 levels, while 4OHT stimulated only 17%. LY 117018 increased PR mRNA expression 8% while ICI 182,780 did not increase PR mRNA expression at all. These data illustrate the target specificity that a SERM is able to display within a single cell type independent of "tissue specificity" and differential levels of expression of various cofactors. While 4OHT is 160% more active than CP 336156 in terms of inducing AP activity in the Ishikawa cells, CP 336156 has equivalent activity as 4OHT when one examines the ability of these SERMs to induce PR mRNA expression. Since the stimulation of Ishikawa cells by ER ligands is often used to assess the potential in vivo uterotrophic activity, these data indicate that examination of several endpoints in these cells may be necessary in order to fully characterize the activity of SERMs.

Adenocarcinoma↗

A review of selective estrogen receptor modulators in the treatment of breast and endometrial cancer.

The understanding of how estrogen affects different body tissues by selective actions on the two subtypes of estrogen receptors (alpha and beta) has created the possibility of targeted therapy by the manufacturing of a group of compounds known as selective estrogen receptor modulators. The goal of an ideal selective estrogen receptor modulator that has all the beneficial effects of estrogen receptor modulation without adverse side effects seems increasingly achievable with improving drug design. The clinical findings for the new selective estrogen receptor modulator, arzoxifene, which has been shown to be highly active in the treatment of advanced breast cancer as well as advanced endometrial cancer, has confirmed the value of selective targeting of the estrogen receptors, and may herald a new era in endocrine therapy in clinical oncology.

Antineoplastic Agents, Hormonal↗

Raloxifene: a selective estrogen receptor modulator.

Raloxifene is a selective estrogen receptor modulator that produces both estrogen-agonistic effects on bone and lipid metabolism and estrogen-antagonistic effects on uterine endometrium and breast tissue. Because of its tissue selectivity, raloxifene may have fewer side effects than are typically observed with estrogen therapy. The most common adverse effects of raloxifene are hot flushes and leg cramps. The drug is also associated with an increased risk of thromboembolic events. The beneficial estrogenic activities of raloxifene include a lowering of total and low-density lipoprotein cholesterol levels and an augmentation of bone mineral density. Raloxifene has been labeled by the U.S. Food and Drug Administration for the prevention of osteoporosis. However, its effects on fracture risk and its ability to protect against cardiovascular disease have yet to be determined. Studies are also being conducted to determine its impact on breast and endometrial cancer reduction.

Bone and Bones↗

Gene expression profiles with activation of the estrogen receptor alpha-selective estrogen receptor modulator complex in breast cancer cells expressing wild-type estrogen receptor.

Selective Estrogen Receptor Modulators (SERMs) are a new class of drugsthat bind to estrogen receptor (ER) and elicit agonistic or antagonistic responses, depending on the target tissue. We have developed an in vitro system in which some SERMs (4-hydroxytamoxifen and resveratrol) demonstrate estrogenic response through wild-type (wt) ER, whereas others (raloxifene and GW7604) remain antiestrogenic. This system mimics the tamoxifen-resistant phenotype in clinic, when resistant tumors contain wtER. We used Atlas cDNA arrays to study gene expression profiles after ER activation by different SERMs in MDA-MB-231 human breast cancer cells stably transfected with wtER. Cells were treated with estradiol, four different SERMs, and the pure antiestrogen ICI 182,780. The obtained expression data were analyzed using GeneSpring software. Real-time reverse transcription-PCR was used to verify the array data. Our results showed that treatment with various compounds altered the expression of a diverse group of genes, revealing sets of overlapping genes that may represent a complex network of genes of interrelated signal transduction pathways. Sets of "agonistic" and "antagonistic" genes were identified on the basis of the known response to different SERMs. Further analysis of selected sets of genes revealed functionally related group of genes in each set, encoding proteins that were related to cell proliferation, survival, and apoptosis. Flow cytometry data indicated an antiapoptotic activity in cells treated with agonists versus apoptotic activity in cells treated with antagonists. A model for estradiol-like (survival) and antiestrogen-like (apoptosis) activities of SERMs on the basis of their gene expression profiles is suggested.

Breast Neoplasms↗