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Novel nonsteroidal selective estrogen receptor modulators. Carbon and heteroatom replacement of oxygen in the ethoxypiperidine region of raloxifene.

Compounds were synthesized where oxygen in the ethoxypiperidine region of raloxifene is replaced with carbon, sulfur, or nitrogen linkages. Thia- and aza-substituted compounds were prepared by novel methodology. The compounds were evaluated in vitro as selective estrogen receptor modulators (SERMs). Calculations suggested the compounds exhibit an ER-alpha binding affinity/conformational energy relationship.

Binding, Competitive↗

Effects of selective estrogen receptor modulators (SERMs) on coactivator nuclear receptor (NR) box binding to estrogen receptors.

Coactivators are required for activation of target genes by nuclear receptors. A well-studied class of coactivators, the p160 proteins, use short nuclear receptor interaction domains (NR boxes) to bind to the activated ligand-binding domain of a nuclear receptor. To investigate how selective estrogen receptor modulators (SERMs) affect NR box recruitment, we compared the recruitment of p160 NR box peptides to the estrogen receptor (ER)alpha and ER beta in the presence of 17beta-estradiol (E2), 4-OH tamoxifen (4-OH Tam), LY 117018 (a raloxifene analog), and ICI 182780 (ICI, an ER antagonist). Our coactivator interaction assay utilizes time-resolved fluorescence technology to assess the binding of the 10 NR boxes derived from the three known p160 coactivators (SRC-1, -2, -3) to the ER subtypes in the presence of each ligand. The SERMs we studied did not increase NR box binding to either ER alpha or ER beta, but instead were potent antagonists decreasing estradiol-dependent NR box binding. We also demonstrated inverse agonism for all of the SERMs tested as they dose-dependently decreased hormone-independent NR box binding to ER beta. Therefore, the SERMs studied behave as antagonists of ER alpha and ER beta NR box binding and do not increase coactivator NR box binding to either ER subtype. In addition, we examined the preference of E2-bound ER alpha and ER beta for various naturally occurring NR boxes including the 10 SRC boxes as well as the motifs from PGC-1, TRBP, TRAP220, and CBP. Interestingly, a clear preferential pattern of interaction was noted that was receptor specific.

Amino Acid Sequence↗

Selective estrogen receptor modulators (SERMs): mechanisms of anticarcinogenesis and drug resistance.

Despite the beneficial effects of estrogens in women's health, there is a plethora of evidence that suggest an important role for these hormones, particularly 17beta-estradiol (E(2)), in the development and progression of breast cancer. Most estrogenic responses are mediated by estrogen receptors (ERs), either ERalpha or ERbeta, which are members of the nuclear receptor superfamily of ligand-dependent transcription factors. Selective estrogen receptor modulators (SERMs) are ER ligands that in some tissues (i.e. bone and cardiovascular system) act like estrogens but block estrogen action in others. Tamoxifen is the first SERM that has been successfully tested for the prevention of breast cancer in high-risk women and is currently approved for the endocrine treatment of all stages of ER-positive breast cancer. Raloxifene, a newer SERM originally developed for osteoporosis, also appears to have preventive effect on breast cancer incidence. Numerous studies have examined the molecular mechanisms for the tissue selective action of SERMs, and collectively they indicate that different ER ligands induce distinct conformational changes in the receptor that influence its ability to interact with coregulatory proteins (i.e. coactivators and corepressors) critical for the regulation of target gene transcription. The relative expression of coactivators and corepressors, and the nature of the ER and its target gene promoter also affect SERM biocharacter. This review summarizes the therapeutic application of SERMs in medicine; particularly breast cancer, and highlights the emerging understanding of the mechanism of action of SERMs in select target tissues, and the inevitable development of resistance.

Animals↗

Selective estrogen receptor modulators: the ideal estrogen replacement?(2)(2).

The ultimate estrogen for replacement therapy should exert beneficial actions upon the skeletal, cardiovascular, and central nervous systems while displaying minimal side effects in the uterus and breast. Selective estrogen receptor modulators (SERMs), such as tamoxifen and raloxifene, have recently been studied to achieve these aims. Not only are these agents potentially effective in reducing a patient's risk of breast carcinoma but they have also been shown to increase bone mineral density and prevent osteoporosis. Displaying favorable effects on lipid metabolism, SERMs also may be protective against coronary heart disease and myocardial infarction. Tamoxifen's adverse side effects on the uterus have not been noted with raloxifene, because the latter behaves as an estrogen antagonist in the endometrium. Ongoing studies, such as the Study of Tamoxifen and Raloxifene and the Raloxifene Use for the Heart trials, may help to further determine whether SERMs are the ideal estrogen for the postmenopausal female patient.

Journal Article↗

Selective estrogen receptor modulators: A possible new treatment of osteoporosis in males.

More recently, osteoporosis in men has been recognized as an important public health problem. Bone loss begins in mid life and is associated with the decline of the sex steroids production. Although there is no equivalent of the menopause, gonadal function in men is affected in a slow progressive way leading to hypogonadism. Testosterone, the major androgen in men, exerts its effect on bone by local conversion to 5alpha-dihydrotestosterone or by aromatization to estrogens. Several studies have found that estrogen, rather than testosterone, levels are more closely correlated with BMD in elderly men. Selective estrogen receptor modulator (SERM) raloxifene binds to estrogen receptors and exhibit estrogenic effect in bone, but, contrary to estrogen, without feminizing effect. There are limited numbers of studies investigating the effects of SERMs in males. Animal studies demonstrated that SERMs inhibit bone turnover and prevent bone loss in orchidectomised adult male rats. Raloxifene has been shown to increase bone mineral density of the hip in men receiving androgen deprivation therapy for prostate cancer. Moreover, experimental data demonstrated dramatic increase in cell death in human prostate cancer cell lines after the treatment with raloxifene. All these observations suggest that SERMs may be useful for the prevention and treatment of osteoporosis not only in postmenopausal women but also in elderly men. However, our hypothesis should be tested in a proper designed clinical trial. Several important issues have to be addressed. Does the same drug dose that has been shown to be effective in postmenopausal women should be used in men, too? Does treatment with SERMs reduce the fracture risk in men and is it comparable to that observed in women? Does treatment with SERMs have any beneficial effect on cardiovascular system and prostate cancer? And finally, do men experience adverse events other than women treated with SERMs? Answering to these questions will have great impact in getting the decision of possible SERMs usage in the treatment of osteoporosis in elderly males.

Aged↗

[Cardiovascular effects of selective estrogen receptor modulators. Current perspectives].

The use of hormone replacement therapy (HRT) after the menopause for the prevention of the long-term complications of estrogen deprivation has recently been questioned after the publication of large clinical trials that failed to show benefits for postmenopausal women. Although these trials risk to dump the widespread opinion of the cardioprotective effects of long-term estrogen use, they have many pitfalls that prevent a direct clinical application of these negative results. Furthermore, the large amount of epidemiological and experimental evidence indicating estrogens as protective on the vascular system cannot be ignored, and efforts should be devoted to understand the reasons for the discrepancy of results of these recent large trials. In the meanwhile, different molecules should be studied in depth as for the actions on the cardiovascular system, and their specific mechanisms of actions should be elucidated. Selective estrogen receptor modulators (SERM) are a promising family of molecules and some of these compounds have positive effects on cardiovascular risk parameters as well as on vascular cells. Large trials are ongoing to study the impact of these substances on cardiovascular risk, and the near future should provide us with answers on the possible use of SERM as possible safer alternatives to HRT for the long-term prevention of cardiovascular disease in postmenopausal women.

Aged↗

Mechanism of action of estrogens and selective estrogen receptor modulators.

Estrogen, one of several sex steroid hormones, mediates its actions through the estrogen receptor. The estrogen receptor (ER) has two subtypes, ER alpha and ER beta, each of which predominates in specific tissues and organs. Cofactor proteins interact with the ER to maximize ligand-dependent transactivation of target-gene promoters. The estrogen response element is the final step in estrogen-mediated gene regulation, and current research is focused on alternate response elements. The resulting biologic action can vary according to the specific type of ER, cofactor milieu, response element, and ligand. Selective estrogen receptor modulators (SERMs) exhibit tissue-specific estrogen agonist or antagonist activity. The SERM raloxifene, which binds to ER and targets a distinct DNA element, may distinguish agonist vs antagonist activity by ER subtype and has unique activity among other SERMs because of its molecular conformation. Phytoestrogens, a potential alternative to hormone replacement therapy and for cancer prevention, do not consistently mimic estrogen's activity. Different types of phytoestrogens have different potencies, and taking high-dose supplements after menopause may not emulate the apparent benefits of lifelong consumption of phytoestrogen-rich diets. In conclusion, the complexity of estrogen action--through different ER subtypes, with various cofactors, on alternate response element--is further enhanced by ligands with selective estrogen activity. Additional research is needed to elucidate these pathways and the resulting biological effects.

Estrogens↗

The estimation and use of absolute risk for weighing the risks and benefits of selective estrogen receptor modulators for preventing breast cancer.

In order to weigh the risks and benefits of intervention with selective estrogen response modifiers for preventing breast cancer, one needs to consider the effects of intervention on several health outcomes. For example, tamoxifen was shown to reduce the risks of breast cancer and hip fracture while increasing the risks of endometrial cancer and cardiovascular end points, including stroke. One approach to weighing risks and benefits is to estimate the net effect of the intervention on the absolute risk of each of the relevant health outcomes. To estimate this net effect, one needs to know not only the relative risk from the intervention, but also the absolute risk of the health outcome in the absence of intervention. Intervention trials yield unbiased estimates of intervention relative risks, but data are usually too limited to estimate these relative risks precisely for subgroups or for rare health outcomes. Moreover, intervention trials are usually too small to provide data for developing a model for estimating the individualized absolute risk of various health outcomes in the absence of intervention. The model of Gail et al. for projecting the individualized risk of breast cancer, as modified for use in the Breast Cancer Prevention Trial, has been validated. To weigh various risks and benefits of interventions, there is a need for research to develop such models for a range of health outcomes.

Breast Neoplasms↗

Molecular perspectives on selective estrogen receptor modulators (SERMs): progress in understanding their tissue-specific agonist and antagonist actions.

Synthetic estrogen receptor ligands such as tamoxifen and raloxifene produce biologic responses which can be either estrogenic or anti-estrogenic, depending upon the tissue in which their action is examined. To reflect the fact that they are not 'pure' antagonists, such ligands have been more accurately termed selective estrogen receptor modulators (SERMs). Recent progress in our understanding of the molecular biology of estrogen receptor (ER) action has provided a great deal of evidence which promises to increase our understanding of the mechanism through which SERMs elicit their tissue-specific effects. The identification of numerous coactivators and corepressors which modulate receptor function and the realization of two subtypes of ER attest to the potential complexity through which SERMs produce diverse tissue-specific responses. Evidence from co-crystal structures of ER ligand-binding domains complexed with SERMs provides additional information as to how this class of ligands can elicit diverse biologic responses. SERMs also influence the stability of the ER protein, and recent information on the determinants of receptor stability and the role of proteasome-mediated protein degradation in ER-driven transcription also promises to give a fuller understanding of SERM biology. These aspects of the molecular biology of estrogen receptor action may help clarify the mechanism(s) of SERM biologic action and will be addressed in further detail in this review.

Animals↗

The selective estrogen receptor modulators, tamoxifen and raloxifene, impair dendritic cell differentiation and activation.

Most immune cells, including myeloid progenitors and terminally differentiated dendritic cells (DC), express estrogen receptors (ER) making these cells sensitive to estrogens. Our laboratory recently demonstrated that 17-beta-estradiol (E2) promotes the GM-CSF-mediated development of CD11c+ CD11b(int) DC from murine bone marrow precursors. We tested whether the therapeutic selective estrogen receptor modulators (SERM), raloxifene and tamoxifen, can perturb DC development and activation. SERM, used in treatment of breast cancer and osteoporosis, bind to ER and mediate tissue-specific agonistic or antagonistic effects. Raloxifene and tamoxifen inhibited the differentiation of estrogen-dependent DC from bone marrow precursors ex vivo in competition experiments with physiological levels of E2. DC differentiated in the presence of SERM were assessed for their capacity to internalize fluoresceinated Ags as well as respond to inflammatory stimuli by increasing surface expression of molecules important for APC function. Although SERM-exposed DC exhibited increased ability to internalize Ags, they were hyporesponsive to bacterial LPS: relative to control DC, they less efficiently up-regulated the expression of MHC class II, CD86, and to a lesser extent, CD80 and CD40. This phenotype indicates that these SERM act to maintain DC in an immature state by inhibiting DC responsiveness to inflammatory stimuli. Thus, raloxifene and tamoxifen impair E2-promoted DC differentiation and reduce the immunostimulatory capacity of DC. These observations suggest that SERM may depress immunity when given to healthy individuals for the prevention of osteoporosis and breast cancer and may interfere with immunotherapeutic strategies to improve antitumor immunity in breast cancer patients.

Adjuvants, Immunologic↗

Selective estrogen receptor modulators and coronary heart disease.

The vasculature has been recognized as an important target of estrogen action through rapid non-genomic effects and/or via the classic pathway (genomic effects) involving estrogen receptors (ER-alpha and ER-beta). Multiple mechanisms participate in the regulation of different estrogen-controlled genes, providing a wide spectrum of possibilities for development of drugs, including pure agonists or antagonists or mixed agonists/antagonists, the so-called selective estrogen receptor modulators (SERM). In theory, an ideal SERM should reduce the risks of coronary heart disease (CHD) and preserve bone density, without or with very low incidences of breast and endometrial neoplasms or venous thromboembolism (VTE). The precise mechanism for the protective effects of estrogens and their receptors on cardiovascular diseases is not yet fully established. In this review, we summarize the recent advances in understanding the action of ERs/ligands, the therapeutic implications for CHD, and highlight the recent progress of both clinical and basic studies on the protection issue. Finally, a number of newly developed SERMs and their clinical applications as well as the laboratory investigations are discussed.

Animals↗

[Selective estrogen receptors modulators (SERMs): biochemistry, pharmacology, and clinical use in gynecology].

The selective strogen receptors modulators (SERMs) were initially developed as antistrogens for the treatment of breast cancer, but their unusual properties have led to their use in the treatment and prevention of other diseases as well. SERMs bind the strogen receptor (ER) and modulated ER-mediated gene transcription. Tamoxifen is an effective treatment for hormone responsive breast cancer and can prevent breast cancer in high-risk women. Raloxifene was approved for the prevention and treatment of osteoporosis in postmenopausal women, also appears to prevent breast cancer. Other SERMs are in development, with the goal of improving efficacy and reducing toxicity.

Breast Neoplasms↗

Selective estrogen receptor modulators: structure, function, and clinical use.

The sex hormone estrogen is important for many physiologic processes. Prolonged stimulation of breast ductal epithelium by estrogen, however, can contribute to the development and progression of breast cancer, and treatments designed to block estrogen's effects are important options in the clinic. Tamoxifen and other similar drugs are effective in breast cancer prevention and treatment by inhibiting the proliferative effects of estrogen that are mediated through the estrogen receptor (ER). However, these drugs also have many estrogenic effects depending on the tissue and gene, and they are more appropriately called selective estrogen receptor modulators (SERMs). SERMs bind ER, alter receptor conformation, and facilitate binding of coregulatory proteins that activate or repress transcriptional activation of estrogen target genes. Theoretically, SERMs could be synthesized that would exhibit nearly complete agonist activity on the one hand or pure antiestrogenic activity on the other. Depending on their functional activities, SERMs could then be developed for a variety of clinical uses, including prevention and treatment of osteoporosis, treatment and prevention of estrogen-regulated malignancies, and even for hormone replacement therapy. Tamoxifen is effective in patients with ER-positive metastatic breast cancer and in the adjuvant setting. The promising role for tamoxifen in ductal carcinoma-in-situ or for breast cancer prevention is evolving, and its use can be considered in certain patient groups. Other SERMs are in development, with the goal of reducing toxicity and/or improving efficacy, and future agents have the potential of providing a new paradigm for maintaining the health of women.

Animals↗

The effects of estradiol and selective estrogen receptor modulators on gene expression and messenger RNA stability in immortalized sheep endometrial stromal cells and human endometrial adenocarcinoma cells.

The purpose of this study was to identify an endometrial cell line that maintained the E2 up-regulation of estrogen receptor (ER) mRNA by enhanced message stability and to assess its dependence on ER protein. Estradiol (E2) effects on gene expression were measured in three cell lines: one immortalized from sheep endometrial stroma (ST) and two from human endometrial adenocarcinomas (Ishikawa and ECC-1). E2 up-regulated ER mRNA levels in ST and Ishikawa cells, but down-regulated ER mRNA levels in ECC-1 cells. E2 up-regulated progesterone receptor (PR), glyceraldehyde 3-phosphate dehydrogenase (GAPDH), and transforming growth factor-alpha (TGF-alpha) in both Ishikawa and ECC-1 cells. The selective estrogen receptor modulator ICI 182,780 antagonized the E2-induced up-regulation of ER and/or PR mRNA levels in all three cells, while another, GW 5638, antagonized the up-regulation of PR mRNA in Ishikawa and ECC-1 cells. In mechanistic studies, E2 had no effect on ER mRNA stability in ST cells and it destabilized ER mRNA in ECC-1 cells. Thus, Ishikawa cells appear to be the most physiologically relevant cell line in which to study the up-regulation of ER mRNA levels by enhanced mRNA stability. Its antagonism by ICI 182,780 reveals that ER protein is involved in this E2 response.

Adenocarcinoma↗

Breast cancer prevention with selective estrogen receptor modulators: a perspective.

Chemoprevention for breast cancer is both old and new. It has long been appreciated that early ovarian ablation dramatically reduces the incidence of breast cancer in premenopausal women. It was subsequently demonstrated, in the Early Breast Cancer Trialists' Collaborative Group (EBCTCG) overview, that tamoxifen results in a 40% or greater reduction in the incidence of contralateral breast cancer. Now, the National Surgical Adjuvant Breast and Bowel Project (NSABP) has shown a similar reduction in a randomized trial [Breast Cancer Prevention Trial (BCPT)] comparing tamoxifen and placebo in women aged 35 years or over at increased risk of developing breast cancer because of age, family history, or other factors. In this trial, the incidences of both ductal carcinoma in situ (DCIS) and invasive cancer were reduced. Reduction in incidence was similar over all years of the study and in all subgroups of high-risk women. However, all of the reduction was confined to estrogen receptor (ER)-positive tumors. Raloxifene, a newer selective estrogen receptor modulator (SERM) originally developed for osteoporosis, also appears to have a major preventive effect on breast cancer incidence. Limitations in the design and patient population of raloxifene trials, however, have made it difficult to as yet recommend raloxifene for risk reduction of breast cancer. The randomized Study of Tamoxifen and Raloxifene (STAR) study, which will compare raloxifene to tamoxifen in over 20,000 postmenopausal women at increased risk of breast cancer, as well as ongoing and proposed placebo-controlled studies of tamoxifen, the aromatase inhibitor anastrazole, and other antiestrogens in high- or average-risk postmenopausal women, will provide further results on optimal prevention strategies.

Breast Neoplasms↗

Inhibition of LDL oxidation and myeloperoxidase dependent tyrosyl radical formation by the selective estrogen receptor modulator raloxifene (LY139481 HCL).

Cellular oxidation of protein and lipoproteins is believed to contribute to the pathology associated with both acute and chronic inflammatory processes. Enzymatic, myeloperoxidase and lipoxygenase, and non- enzymatic oxidation of low density lipoprotein, LDL, has been implicated in foam cell formation and the progression of atherosclerotic changes within the arterial wall. In the present study, the in vitro protective role of the selective estrogen receptor modulator, raloxifene, in these oxidant triggered processes has been investigated. Raloxifene, as with estrogen was observed to inhibit both copper mediated LDL oxidation as well as the cellular modification of LDL by murine peritoneal macrophages. Raloxifene was, however, a more potent inhibitor of LDL oxidation than 17 beta-estradiol. The inhibition of macrophage LDL modification by raloxifene was not due to a non-specific effect on all effector functions as phagocytosis of opsonized yeast was comparable with control macrophage cultures. In addition to the protective effects on LDL oxidation, raloxifene also inhibited tyrosyl radical formation catalyzed by myeloperoxidase. The inhibition of myeloperoxidase activity was observed for both the isolated enzyme and in phorbol ester stimulated murine peritoneal neutrophils. In contrast, raloxifene was a weaker inhibitor of horseradish peroxidase. These results demonstrate a potential protective role for raloxifene as an anti-oxidant in in vitro assays designed to evaluate oxidant mediated radical formation and tissue damage.

Animals↗

[Estrogen receptor and selective estrogen receptor modulators (SERMs)].

The incidence of osteoporosis and of cardiovascular disease increases in women after menopause. Although theses diseases can be prevented by estrogen replacement therapy, this treatment is associated with an increased risk of endometrial cancer and perhaps also with an increased risk of breast cancer. Thus, a therapy that could prevent postmenopausal bone loss and lower serum cholesterol concentrations without stimulating reproductive tissues would be desirable. Selective estrogen receptor modulators (SERMs), such as raloxifene and tamoxifen, produce beneficial estrogen-like effects on bone and lipid metabolism, while antagonizing estrogen in reproductive tissue. Both agonist and antagonist activities are mediated via high affinity interaction with the estrogen receptor (ER). Both types of ER (alpha and beta) may be involved in the mechanism by which SERMs produce tissue-selective pharmacology. This review will discuss the roles of ER alpha and ER beta in novel signal transduction pathways.

Arteriosclerosis↗

Selective estrogen receptor modulators: tissue actions and potential for CNS protection.

Significant physiologic changes occur during menopause. Evidence exists to suggest that estrogen may be neuroprotective under specific conditions. However, there are limitations in the neuroprotection afforded by standard hormone therapy. Accordingly, alternative agents with selected estrogenic effects may hold even greater promise rather than conventional hormone replacement therapy for the prevention and treatment of CNS injury. Recently, a variety of selective estrogen receptor modulators (SERMs) have been developed to retain the favorable and minimize the adverse side effects of estrogens. This review focuses on the CNS and known neuroprotective effects of two specific SERMs, raloxifene and arzoxifene. Recent studies hint that raloxifene and arzoxifene are neuroprotective and may preserve some elements of cognitive function. However, the mechanism of action is not well described and it is unclear if the beneficial effects of SERMs rely on activation of estrogen receptors.

Animals↗