Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Selective Estrogen Receptor Modulators”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 73 records · Page 4Linked to original sources

Chemoprevention of breast cancer with selective estrogen receptor modulators: views from broadly diverse focus groups of women with elevated risk for breast cancer.

Selective estrogen receptor modulators (SERMs) are anti-estrogens that selectively antagonize the proliferative effects of estrogens on breast cells, thereby inhibiting or reversing neoplastic progression to clinical breast cancer. The goal is to administer these agents to healthy women with an elevated risk for breast cancer. The study reported here assessed the knowledge and attitude of 26 broadly selected women with an elevated risk for breast cancer who participated in three focus groups (eight to ten per group) that discussed the use of SERMs, such as tamoxifen and raloxifen. Data were analyzed by cross-case procedure using variable-oriented strategies. Acceptance of breast cancer chemoprevention treatment with SERMs was found to be influenced by various factors, including a knowledge of breast cancer risk factors, the perception of personal risk for breast cancer, and the perception of barriers and benefits to receiving chemoprevention treatment. The issues involved in making the decision to accept treatment with SERMs are discussed. Most of the participants in the groups indicated they were unlikely to accept breast cancer chemoprevention treatment with SERMs.

Adult↗

Differential effects of selective estrogen receptor modulators and estrogens on mammary blood flow in the ovine.

OBJECTIVE: Hormone replacement therapy has been implicated in the increased incidence of breast cancer, although selective estrogen receptor modulators have been shown to be effective in the prevention of breast cancer. Breast cancers are associated with increased mammary blood flow compared to benign breast lesions. However, few studies have examined the hemodynamic effects of hormonal agents on the mammary circulation that promote or reduce the risk of breast cancers. Although estradiol-17beta has been shown to increase mammary blood flow, the effect of selective estrogen receptor modulators remains undetermined. We therefore compared the vascular effects of selective estrogen receptor modulators and estrogens on mammary blood flow. STUDY DESIGN: Fourteen nonpregnant ovariectomized ewes were instrumented to measure mean arterial pressure, heart rate, and uterine and mammary blood flows. Compounds were administered intravenously on separate days, and responses were monitored up to 4 hours. Compounds that were studied included estradiol-17beta (1 microg/kg), conjugated equine estrogens (0.625 and 1.25 mg), tibolone (2.5 and 5 mg), raloxifene (10 microg/kg), and tamoxifen (300 microg/kg). RESULTS: None of these compounds significantly affected mean arterial pressure or heart rate, but all of the compounds significantly increased uterine blood flow. Estradiol-17beta increased mammary blood flow by 98% +/- 25%; conjugated equine estrogen increased mammary blood flow by 46% +/- 6% and 68% +/- 13% at the 0.625 and 1.25 mg doses, respectively. Tibolone increased mammary blood flow by 37% +/- 13% at the 2.5-mg dose and by only 14% +/- 4% at the 5-mg dose. Neither raloxifene nor tamoxifen significantly altered mammary blood flow. CONCLUSION: Although estrogens and selective estrogen receptor modulators induced similar increases in uterine blood flow, they had differential effects on mammary blood flow.

Animals↗

Selective estrogen receptor modulators: mechanism of action and clinical experience. Focus on raloxifene.

Selective estrogen receptor modulators (SERMs) are a diverse group of compounds that bind with specific, high-affinity binding to the estrogen receptor (ER). Depending on the tissue, SERMs can act as either ER agonists or antagonists. Recent advances in ER biology have provided insight into possible mechanisms by which SERMs elicit these tissue-specific estrogen agonist and estrogen antagonist activities. The estrogen response pathway has been shown to differ among target tissues depending on various tissue and cellular factors, such as the ER subtype, the structure of the bound receptor-ligand complex, and the tissue-specific cellular transcriptional machinery. Clinically available SERMs include clomiphene, tamoxifen and toremifene, which are triphenylethylenes, and raloxifene, a benzothiophene. Raloxifene has estrogen agonist effects on bone, serum lipids, and arterial vasculature, and estrogen antagonist effects in breast and uterus. Clinical trial data for raloxifene is used to illustrate some of the mechanisms by which SERMs exert their tissue-specific estrogen agonist and estrogen antagonist effects. The complex pharmacology surrounding the tissue selectivity of SERMs is discussed.

Clinical Trials as Topic↗

Reproductive toxicity assessment of lasofoxifene, a selective estrogen receptor modulator (SERM), in female rats.

BACKGROUND: Lasofoxifene is a nonsteroidal selective estrogen receptor modulator (SERM). With high affinity to the alpha and beta human estrogen receptors and greater potency than other SERMs, lasofoxifene is potentially a superior treatment for postmenopausal osteoporosis. In light of the known effects of estrogen-modulating compounds on female reproductive indices, two studies were conducted to evaluate the effects of lasofoxifene on female rat cyclicity, reproduction, and parturition. METHODS: One study evaluated effects of lasofoxifene on estrous cyclicity, and the second study assessed effects on implantation and parturition. In the cyclicity study, lasofoxifene was administered to female rats at doses of 0.1, 0.3, and 1.0 mg/kg/day for 14 consecutive days. After treatment, there was a 3-week reversibility phase followed by a mating phase. In the implantation study, lasofoxifene was administered to pregnant female rats at doses of 0.01, 0.03, and 0.1 mg/kg/day for 7 consecutive days (gestation day [GD] 0-6). Some animals were euthanized on GD 21, and the remainder of the group was allowed to deliver the F1 generation. Several developmental indices were evaluated in the F1 pups through post-natal day (PND) 21. RESULTS: In the cyclicity study, all lasofoxifene-treated females were anestrous by Study Day 7 (1.0 mg/kg) or 9 (0.3 and 0.1 mg/kg). The reversibility phase resulted in restoration of normal estrous cycles by the end of 1 (0.1 mg/kg) or 2 weeks (0.3 and 1.0 mg/kg). During the mating phase, no adverse effects occurred in pregnancy success or reproductive parameters. In the implantation study, all doses of lasofoxifene increased pre- and post-implantation losses, increased gestation length, and reduced litter size. None of the developmental parameters measured on the F1 generation was adversely affected. CONCLUSION: Lasofoxifene reversibly altered the estrous cycle and inhibited implantation, consistent with what would be expected from a member of the SERM class.

Animals↗

Comparative tolerability of first-generation selective estrogen receptor modulators in breast cancer treatment and prevention.

In general, the selective estrogen receptor modulators (SERMs) currently indicated for the treatment and prevention of breast cancer, i.e. tamoxifen and toremifene, are fairly well tolerated. However, tamoxifen has been shown to induce hepatocellular carcinomas in rats, but not in humans, and can increase the risk of endometrial cancer in humans by two to three times. Other potentially serious adverse effects which have been associated with tamoxifen and toremifene therapy include vasomotor symptoms, an increased risk of venous thromboembolic events, and an increased incidence of cataracts and ocular toxicity, fatty liver, and nonmalignant hepatic and uterine changes. In addition, long term tamoxifen use almost always results in resistance to the drug and, indeed, has actually been shown to promote tumour proliferation in human breast cancer cells. Both tamoxifen and toremifene display drug interactions with a variety of drug classes. The adverse events associated with these compounds have raised significant concerns regarding their widespread use for the treatment and prevention of breast cancer. In addition, because of the weakness and scarcity of the data on toremifene, any conclusions about its tolerability remain tentative until outcomes of ongoing clinical trials in the adjuvant setting are known. A third SERM, raloxifene, is the focus of several large randomised trials examining its efficacy in the prevention of breast cancer. At present, each potential adverse event needs to be weighed against potential benefits in the decision to undergo SERM treatment. An array of therapies is currently available for patients with breast cancer and women at increased risk of disease; the risk-to-benefit ratio for each agent should be carefully examined in determining the most advantageous regimen.

Animals↗

Selective estrogen receptor modulation and reduction in risk of breast cancer, osteoporosis, and coronary heart disease.

The recognition of selective estrogen receptor modulation in the laboratory has resulted in the development of two selective estrogen receptor modulators (SERMs), tamoxifen and raloxifene, for clinical application in healthy women. SERMs are antiestrogenic in the breast but estrogen-like in the bones and reduce circulating cholesterol levels. SERMs also have different degrees of estrogenicity in the uterus. Tamoxifen is used specifically to reduce the incidence of breast cancer in premenopausal and postmenopausal women at risk for the disease. In contrast, raloxifene is used specifically to reduce the risk of osteoporosis in postmenopausal women at high risk for osteoporosis. The study of tamoxifen and raloxifene (STAR) trial is currently comparing the ability of these SERMs to reduce breast cancer incidence in high-risk postmenopausal women. There is intense interest in understanding the molecular mechanism(s) of action of SERMs at target sites in a woman's body. An understanding of the targeted actions of this novel drug group will potentially result in the introduction of new multifunctional medicines with applications as preventive agents or treatments of breast cancer and endometrial cancer, coronary heart disease, and osteoporosis.

Adult↗

Selective estrogen receptor modulation: concept and consequences in cancer.

Extended exposure to the selective estrogen receptor modulators (SERMs) such as raloxifene to prevent osteoporosis and tamoxifen or the aromatase inhibitors to treat or prevent breast cancer are established therapeutic strategies. However, there are now clearly defined consequences of exhaustive antihormonal therapy in breast cancer. Ultimately, drug resistance to SERMs and aromatase inhibitors enhances cancer cell survival but a paradoxical supersensitivity to estrogen action develops that causes cancer cell apoptosis. The future exploitation of these novel data will allow selective killing of cancer with fewer side effects for patients.

Apoptosis↗

Acute vascular effects of the selective estrogen receptor modulator EM-652 (SCH 57068) in the rat mesenteric vascular bed.

OBJECTIVE: Selective estrogen receptor modulators (SERMs) represent a class of compounds that act as either estrogen receptor agonist or antagonist in a tissue-selective manner. SERMs exert beneficial effects on bone and lipids but are not associated with an increased risk of breast or uterine carcinoma. 17beta-estradiol (E2) and SERMs such as raloxifene and tamoxifen acutely relax coronary arteries. EM-652 (SCH 57068) is a 4th generation SERM acting as pure antiestrogen in the mammary gland and endometrium. The effects of SERMs on the mesenteric vasculature are unknown. In the present study, the vascular effects of EM-652 and E2 on the rat mesentery were investigated. METHODS: Isolated perfused (5 ml/min) mesenteric vascular bed (MVB) was preconstricted with methoxamine. Increasing doses (0.1-10 microM) of EM-652 or E2 were infused into the perfusate. RESULTS: EM-652 and E2 relaxed MVBs removed from intact and gonadectomized female and male rats. The amplitude of EM-652 responses was consistently greater than those of E2 and its potency was similar or greater than that of other SERMs. EM-652 and E2 relaxed MVB by an endothelium-independent mechanism. The estrogen receptor (ER) antagonist ICI 182,780 attenuated E2-induced relaxations but only partially block the effects of EM-652. Inhibition of the nitric oxide synthase/cGMP pathway with N(G)-nitro-arginine-methyl-ester (L-NAME) and 1H-(1,2,4)oxadiazolo(4,3-a)quinoxaline-1-one (ODQ) or of prostanoid synthesis with indomethacin failed to reduce EM-652 responses. The vascular effects of EM-652 were also unaffected by potassium channels blockers or inhibitors/scavengers of reactive oxygen species. EM-652 attenuated the vasoconstrictor responses induced by adrenergic agonists and endothelin-1. CONCLUSIONS: EM-652 acutely relaxes the mesenteric vasculature by an endothelium-independent pathway which is partly mediated by ER, providing a novel mechanism by which this SERM may exert beneficial actions on the vascular system.

Animals↗

Effects of SERM (selective estrogen receptor modulator) treatment on growth and proliferation in the rat uterus.

BACKGROUND: Selective estrogen receptor modulators (SERMs) have been developed in order to create means to control estrogenic effects on different tissues. A major drawback in treatment of estrogen receptor (ER) positive breast cancer with the antagonist tamoxifen (TAM) is its agonistic effect in the endometrium. Raloxifene (RAL) is the next generation of SERMs where the agonistic effect on the endometrium has been reduced. METHODS: The aim of the present study was to determine the effect of SERM treatment on the uterus, as assessed by proliferation markers and several factors involved in uterine growth. Ovariectomized (ovx) rats were treated with estradiol (E2), tamoxifen (TAM), RAL, ICI182780 (ICI) or vehicle (OVX-controls). We studied the effects on mRNA levels of the growth hormone (GH) receptor, insulin-like growth factor-I (IGF-I), ERalpha and ERbeta. In addition, by immunohistochemistry the proliferation markers PCNA and Ki-67, as well as ERalpha and ERbeta, were detected. RESULTS: The uterine weight of the rats treated with E2 or TAM was increased as compared to OVX-controls. The uterine GH-receptor mRNA level was highest in the E2 treated animals. In ICI treated rats no GH-receptor mRNA could be detected. The IGF-I mRNA level increased 16-fold in uteri of the TAM treated group and 9-fold in the E2 treated rats as compared to OVX-controls. The ERalpha mRNA level was increased in the E2 treated rats, while the ERbeta mRNA level was increased after TAM treatment. The proliferation, as assessed by PCNA, was lowest in ICI treated animals. CONCLUSIONS: The uterine wet weight, the LE height and the GH-receptor mRNA levels showed similar patterns, indicating that GH is involved in the regulation of uterine weight. Tamoxifen, which has been related to increased incidence of endometrial carcinoma in women, dramatically increased IGF-I mRNA levels in rat uterus. Since proliferation was not higher in TAM and E2 treated rats than in OVX controls, this assay of simple, early proliferation does not give the full explanation of why TAM should enhance the risk of developing endometrial cancer.

Animals↗

A new selective estrogen receptor modulator with potent uterine antagonist activity, agonist activity in bone, and minimal ovarian stimulation.

The use of selective estrogen receptor modulators for the treatment of estrogen-dependent diseases in premenopausal women has been hindered by undesirable ovarian stimulation and associated risks of ovarian cysts. We have identified a selective estrogen receptor modulator compound (LY2066948) that is a strong estrogen antagonist in the uterus yet has minimal effects on the ovaries of rats. LY2066948 binds with high affinity to both estrogen receptors and has potent estrogen antagonist activity in human uterine and breast cancer cells. Oral administration of LY2066948 to immature rats blocked uterine weight gain induced by ethynyl estradiol with an ED50 of 0.07 mg/kg. Studies in mature rats demonstrated that LY2066948 decreases uterine weight by 51% after 35 d treatment, confirming potent uterine antagonist activity over several estrous cycles. This strong uterine response contrasted with the minimal effects on the ovaries: serum estradiol levels remained within the normal range, whereas histologic evaluation showed granulosa cell hyperplasia in few of the rats. Bone studies demonstrated that LY2066948 prevented ovariectomy-induced bone loss and treatment of ovary-intact rats caused no bone loss, confirming estrogen receptor agonist skeletal effects. Collectively, these data show that LY2066948 exhibits a tissue-specific profile consistent with strong antagonist activity in the uterus, agonist activity in bone, and minimal effects in the ovaries.

Animals↗

Distinct mechanisms of action of selective estrogen receptor modulators in breast and osteoblastic cells.

Raloxifene and idoxifene are selective estrogen receptor modulators (SERMs) that exhibit tissue-specific agonist or antagonist properties via interactions with the estrogen receptor (ER). Both compounds are similarly osteoprotective in the ovariectomized rat in vivo as assessed by measurement of bone mineral density, urinary pyridinium cross-links, and serum osteocalcin, suggesting a similar mechanism of action. However, we have identified a fundamental difference in this mechanism via the estrogen response element (ERE) in osteoblast-like cells. With the use of ERE-luciferase reporter constructs, raloxifene, like the complete ER-antagonist ICI-182780, acts as an antagonist via the ERE in osteoblastic cells. In contrast, idoxifene, like 17beta-estrogen itself and 4-OH-tamoxifen, acts as an agonist in osteoblastic cells via an ER/ERE-mediated mechanism. Both ICI-182780 and raloxifene inhibited the ERE-dependent agonist activity of 17beta-estradiol and idoxifene in osteoblastic cells. In contrast, in breast cells, raloxifene, idoxifene, 4-OH-tamoxifen, and ICI-182780 had no agonist activity and, indeed, raloxifene and idoxifene were potent antagonists of ERE-mediated 17beta-estradiol action, indicating an ERE-dependent mode of action in these cells. Although these SERMs exhibit a similar antagonist activity profile in breast cells, they can be distinguished mechanistically in osteoblastic cells.

Animals↗

Effects of raloxifene, a selective estrogen receptor modulator, on thymus, T cell reactivity, and inflammation in mice.

Raloxifene is a selective estrogen receptor modulator approved for prevention of osteoporosis in postmenopausal women. It is selective by virtue of having estrogen agonistic effects in bone, vessels, and blood lipids, while it is antagonistic with mammary and uterine tissue. The aim of the study was to examine whether the raloxifene analogue LY117018 (LY) has estrogenic effects on the thymus, T cell responsiveness, and inflammation. Oophorectomized normal mice were treated with subcutaneous injections of equipotent antiosteoporotic doses of LY (3 mg/kg) and 17beta-estradiol (E2) (0.1 mg/kg) or vehicle as controls. Effects on thymus were studied by analyses of thymus weight, cellularity, and CD4 and CD8 phenotype expression and histology, while inflammation was determined as T-cell-mediated delayed-type hypersensitivity (DTH) and granulocyte-mediated footpad swelling. LY lacked the suppressive properties of E2 on DTH and granulocyte-mediated inflammation. Furthermore, LY induced only minor thymus atrophy compared with E2 and did not, in contrast to E2, alter the thymic CD4/CD8 phenotypes. These results clearly demonstrate that raloxifene principally lacks the modulatory effects of estrogen on T cell responsiveness and inflammation. Our data are discussed in the context of recent findings in estrogen receptor biology and also with respect to estrogen-mediated alteration of autoimmune rheumatic diseases.

Animals↗

ACOG practice bulletin. Selective estrogen receptor modulators. Number 39, October 2002 (replaces Committee Opinion Number 224, October 1999).

Selective estrogen receptor modulators (SERMs) are synthetic compounds that bind estrogen receptors and produce agonistic activity in some tissues while acting as estrogen antagonists in other tissues. Although referred to collectively, their effects in different organs (eg, endometrium, urinary tract) are far from uniform. Much confusion exists about the indications for their use and the effects of these compounds. The purpose of this document is to review the use of SERMs for breast cancer risk reduction and skeletal protection as approved by the U.S. Food and Drug Administration (FDA).

Adult↗

Novel chromene-derived selective estrogen receptor modulators useful for alleviating hot flushes and vaginal dryness.

A novel SERM (selective estrogen receptor modulators), 1-(R), a chromene-derived bisbenzopyran, was discovered to alleviate hot flushes and effectively increase vaginal fluidity in rats. Moreover, 1-(R) was found to have beneficial effects on plasma cholesterol and bone metabolism while maintaining antiestrogenic activity in the uterus. The biological profile of its enantiomer 1-(S) was also evaluated.

Animals↗

Selective estrogen receptor modulators: a new category of compounds to extend postmenopausal women's health.

Selective estrogen receptor modulators (SERMs) are a new category of therapeutic agents, which bind with high affinity to estrogen receptors and mimic the effect of estrogens in some tissues but act as estrogen antagonists in others. Tamoxifen, a triphenylethylene derivative, was the first clinically available SERM. It is a potent anti-estrogen in the breast, and its use in breast cancer patients has made it the most widely prescribed antineoplastic drug worldwide. It has estrogen-like activity on bone metabolism, as well as cholesterol reduction. However, its ability to produce proliferation, and polyp formation, and even carcinomas, in the endometrium is well known. A new SERM, raloxifene, a benzothiopene derivative, has a clinical profile similar to tamoxifen's. However, preclinical as well as clinical studies reveal that unlike tamoxifen it is a pure anti-estrogen in the uterus. It has recently been FDA approved for prevention of osteoporosis in postmenopausal women. This report reviews pertinent preclinical and currently available clinical studies about this new SERM and discusses clinical applicability.

Bone Density↗

A review of selective estrogen receptor modulators and national surgical adjuvant breast and bowel project clinical trials.

Over the last 20 years tamoxifen, a selective estrogen receptor modulator, has been shown to be of clinical benefit to patients with advanced and resected hormone receptor-positive breast cancer. Tamoxifen has also been evaluated as a risk-reducing agent among patients at a high risk for the development of breast cancer and found to be effective, although it is associated with untoward adverse events (ie, stroke, venous thrombosis, and endometrial cancer). Recent analysis of National Surgical Adjuvant Breast and Bowel Project tamoxifen trials confirms that an increased risk for developing various endometrial malignancies exists across these protocols. Raloxifene, a selective estrogen receptor modulator available to treat osteoporosis, may also reduce the risk for developing breast cancer. The National Surgical Adjuvant Breast and Bowel Project is now comparing the risk-reducing activities of tamoxifen and raloxifene in women considered to be at a high risk for developing breast cancer. As newer potential risk-reducing agents are identified and placed into clinical prevention trials, patient selection, trial implementation methods, and accrual strategies must be developed to insure both that appropriate accrual targets are achieved and that women at clinically significant risk levels are accrued.

Antineoplastic Agents, Hormonal↗

Bioactivation of the selective estrogen receptor modulator desmethylated arzoxifene to quinoids: 4'-fluoro substitution prevents quinoid formation.

Although selective estrogen receptor modulators (SERMs) are useful in the treatment and prevention of breast cancer, the SERM tamoxifen has been associated with an increased risk of endometrial cancer possibly due to metabolism to electrophilic quinoids. Another SERM, arzoxifene is currently in clinical trials for the treatment of breast cancer, and since it has similar structural characteristics to tamoxifen, it also has the potential to form quinoids. In the current study, the active form of arzoxifene in vivo, desmethylated arzoxifene (DMA), was synthesized and chemically or enzymatically oxidized to DMA diquinone methide. The half-life of DMA diquinone methide at physiological pH and temperature was approximately 15 s. Reaction of DMA diquinone methide with glutathione (GSH) gave four mono-GSH conjugates, two di-GSH conjugates, and one tri-GSH conjugate. In incubations of DMA with GSH and either rat or human liver microsomes, DMA o-quinone-GSH conjugates were detected in addition to DMA diquinone methide-GSH conjugates. A DMA diquinone methide-deoxyguanosine adduct was detected following the incubation of DMA diquinone methide with deoxynucleosides. In preliminary studies with a human breast cancer cell line, DMA induced dose-dependent DNA damage and was more effective at causing DNA damage than raloxifene. These results suggest that DMA can be metabolized to electrophilic/redox-active quinoids, which have the potential to cause toxicity in vivo. A new fluorinated derivative unable to form a diquinone methide, 4'-F-DMA, was synthesized. 4'-F-DMA showed similar estrogen receptor (ER) binding affinity as compared to DMA. The antiestrogenic activity as measured by inhibition of estradiol-mediated induction of alkaline phosphatase activity in Ishikawa cells showed 10-fold lower activity for 4'-F-DMA compared to DMA; however, the antiestrogenic activity was comparable to raloxifene. In microsomal incubations of 4'-F-DMA in the presence of GSH, no GSH adducts were detected. These data suggest that 4'-F-DMA might be a promising SERM with similar activity to DMA and raloxifene and less toxicity.

Alkaline Phosphatase↗

Pre- and postnatal development studies of lasofoxifene, a selective estrogen receptor modulator (SERM), in Sprague-Dawley rats.

BACKGROUND: Lasofoxifene is a nonsteroidal selective estrogen receptor modulator (SERM) developed for the treatment of postmenopausal osteoporosis. The purpose of these studies was to evaluate the effects of lasofoxifene on the postnatal development, behavior, and reproductive performance of offspring of female rats given lasofoxifene during organogenesis and lactation. METHODS: Two range-finding studies were conducted to determine the effects of lasofoxifene at doses from 0.01-10 mg/kg on parturition and lactation in pregnant rats and on the early postnatal development of the offspring, and to optimize the dosing regimen. Maternal milk and plasma were sampled for concentrations of lasofoxifene on Lactation Days 4, 7, and 14. In the pre- and postnatal development study, lasofoxifene was administered to pregnant and lactating rats by oral gavage at dose levels of 0.01, 0.03, and 0.1 mg/kg on Gestation Days 6-17 and Lactation Days 1-20. Maternal body weight and food consumption were measured throughout pregnancy, and body weight was measured throughout lactation. Parturition was monitored closely. The F1 offspring were measured for viability, body weight, anogenital distance, the appearance of postnatal developmental indices and reflex behaviors, sensory function, in an age-appropriate functional observational battery, motor activity, auditory startle, passive avoidance, and the Cincinnati Water Maze. The F1 generation was assessed for reproductive function, and the F2 offspring were measured for body weight and viability throughout the lactation period. RESULTS: In the range-finding studies, indications of maternal toxicity included decreased body weight and food consumption, increased length of gestation, prolonged parturition, dystocia, and increased offspring mortality at birth. Concentrations of lasofoxifene in maternal plasma were similar to those in milk, increased with increasing dose, and remained consistent over a 10-day period. In the pre- and postnatal development study, maternal body weights and food consumption were decreased in all treated groups during gestation. Length of gestation was increased, parturition was prolonged, and dystocia was noted in the dams in the 0.1 mg/kg group. There was increased pup mortality in the F1 litters in the 0.1 mg/kg group and all treated groups had decreased offspring body weights beginning at 1 week of age, continuing into the postweaning period and, for the F1 males, into adulthood. Female F1 offspring in the 0.03 and 0.1 mg/kg groups had increased body weights as adults. There were delays in the age of appearance of preputial separation in the males in the 0.1 mg/kg group and vaginal opening in the females in all treated groups. Body temperature was decreased by <0.5 degrees C after weaning for male and female offspring in the 0.1 mg/kg group. The sensory, behavioral, and functional measures, including the tests of learning and memory, were unaffected by treatment. Mating success was lower for the F1 animals in the 0.1 mg/kg group, but there were no effects on the reproductive parameters. Mating, reproduction, and maternal behavior of the F1 animals in the 0.01 and 0.03 mg/kg groups and the survival and body weights of the F2 offspring in all treated groups through Postnatal Day 21 were unaffected by treatment. CONCLUSION: The maternal findings in this study were related to the pharmacologic activity of lasofoxifene. Inhibition of growth of the F1 offspring after perinatal exposure to lasofoxifene was observed, but there were no significant effects on the sensory, behavioral, or functional measures, including learning and memory. There were no effects on the F2 generation. The findings are consistent with those reported for at least one other SERM. The findings of this study do not suggest increased risk for the primary indication of use in postmenopausal women.

Animals↗