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Biomedical subjects

F Labrie

Publications and source records attributed to F Labrie.

712 records · Page 40Linked to original sources

EM-652 (SCH 57068), a third generation SERM acting as pure antiestrogen in the mammary gland and endometrium.

Breast cancer is the most frequent cancer in women while it is the second cause of cancer death. Estrogens are well recognized to play the predominant role in breast cancer development and growth and much efforts have been devoted to the blockade of estrogen formation and action. The most widely used therapy of breast cancer which has shown benefits at all stages of the disease is the use of the antiestrogen Tamoxifen. This compound, however, possesses mixed agonist and antagonist activity and major efforts have been devoted to the development of compounds having pure antiestrogenic activity in the mammary gland and endometrium. Such a compound would avoid the problem of stimulation of the endometrium and the risk of endometrial carcinoma. We have thus synthesized an orally active non-steroidal antiestrogen, EM-652 (SCH 57068) and the prodrug EM-800 (SCH57050) which are the most potent of the known antiestrogens. EM-652 is the compound having the highest affinity for the estrogen receptor, including estradiol. It has higher affinity for the ER than ICI 182780, hydroxytamoxifen, raloxifene, droloxifene and hydroxytoremifene. EM-652 has the most potent inhibitory activity on both ER alpha and ER beta compared to any of the other antiestrogens tested. An important aspect of EM-652 is that it inhibits both the AF1 and AF2 functions of both ER alpha and ER beta while the inhibitory action of hydroxytamoxifen is limited to AF2, the ligand-dependent function of the estrogen receptors. AF1 activity is constitutive, ligand-independent and is responsible for mediation of the activity of growth factors and of the ras oncogene and MAP-kinase pathway. EM-652 inhibits Ras-induced transcriptional activity of ER alpha and ER beta and blocks SRC-1-stimulated activity of the two receptors. EM-652 was also found to block the recruitment of SRC-1 at AF1 of ER beta, this ligand-independent activation of AF1 being closely related to phosphorylation of the steroid receptors by protein kinase. Most importantly, the antiestrogen hydroxytamoxifen has no inhibitory effect on the SRC-1-induced ER beta activity while the pure antiestrogen EM-652 completely abolishes this effect, thus strengthening the need to use pure antiestrogens in breast cancer therapy in order to control all known aspects of ER-regulated gene expression. In fact, the absence of blockade of AF2 by hydroxytamoxifen could explain why the benefits of tamoxifen observed up to 5 years become negative at longer time intervals and why resistance develops to tamoxifen. EM-800, the prodrug of EM-652, has been shown to prevent the development of dimethylbenz(a)anthracene (DMBA)-induced mammary carcinoma in the rat, a well-recognized model of human breast cancer. It is of interest that the addition of dehydroepiandrosterone, a precursor of androgens, to EM-800, led to complete inhibition of tumor development in this model. Not only the development, but also the growth of established DMBA-induced mammary carcinoma was inhibited by treatment with EM-800. An inhibitory effect was also observed when medroxyprogesterone was added to treatment with EM-800. Uterine size was reduced to castration levels in the groups of animals treated with EM-800. An almost complete disappearance of estrogen receptors was observed in the uterus, vaginum and tumors in nude mice treated with EM-800. EM-652 was the most potent antiestrogen to inhibit the growth of human breast cancer ZR-75-1, MCF-7 and T-47D cells in vitro when compared with ICI 182780, ICI 164384, hydroxytamoxifen, and droloxifene. Moreover, EM-652 and EM-800 have no stimulatory effect on the basal levels of cell proliferation in the absence of E2 while hydroxytamoxifen and droloxifene had a stimulatory effect on the basal growth of T-47D and ZR-75-1 cells. EM-652 was also the most potent inhibitor of the percentage of cycling cancer cells. (ABSTRACT TRUNCATED)

Animals↗

Crystallization and preliminary crystal structure of the complex of 17beta-hydroxysteroid dehydrogenase with a dual-site inhibitor.

Human estrogenic 17beta-hydroxysteroid dehydrogenase (17beta-HSD1) catalyzes the synthesis of 17beta-estradiol (E2) from estrone, in the ovary and peripheral tissues. While the structures of 17beta-HSD1 alone and in complex with E2 have been determined (D. Ghosh, V. Pletnev, D.-W. Zhu, Z. Wawrzak, W.-L. Duax, W. Pangborn, F. Labrie, S.-X. Lin, Structure of human 17beta-hydroxysteroid dehydrogenase at 2.20 A resolution, Structure 3 (1995) 503-513), no structures of inhibitor/enzyme complex, either modeled or from crystallography, have been reported before the submission of the present paper. The best available inhibitors are among the 'dual-site inhibitors', blocking estrogenic 17beta-HSD and the estrogen receptor. These compounds belong to a family of estradiol analogues having an halogen atom at the 16alpha position and an extended alkyl-amide chain at the 7alpha position (C. Labrie, G. Martel, J.M. Dufour, G. Levesque, Y. Merand, F. Labrie, Novel compounds inhibit estrogen formation and action, Cancer Res. 52 (1992) 610-615). We now report the crystallization of this enzyme/inhibitor complex. The complex of the best available dual-site inhibitor, EM-139, with 17beta-HSD1 has been crystallized using both cocrystallization and soaking methods. Crystals are isomorphous to the native crystals grown in the presence of 0.06% beta-octyl-glucoside and polyethyleneglycol 4000, with a monoclinic space group C2. Data at 1.8 A have been collected from a synchrotron source. Even though the size of the inhibitor is greater than that of the substrate, our preliminary X-ray-diffraction study shows that EM-139 fits into the active site in a position similar to that of estrogen. The availability of such structural data will help design more potent inhibitors of estrogenic 17beta-HSD.

Apoenzymes↗

Temporal expression of prostaglandin H synthase type 2 (PGHS-2) and P450(C17)in ovine placentomes with the natural onset of labour.

Labour in the sheep is preceded by increased tissue and plasma prostaglandin (PG) concentrations, and PGs could potentially contribute to the regulation of P450(C17)in placental tissue. Therefore, we determined the cellular localization and temporal pattern of expression of P450(C17)and prostaglandin H synthase type 2 (PGHS-2), the primary PG synthetic enzyme, in intrauterine tissues from three groups of pregnant ewes at term; animals not in labour (NIL;n=5; 140-145 days of gestation), animals in early labour (EL;n=6; 143-149 days) and animals in active labour (L;n=6; 145-149 days). Allocation of animals into the three groups was based on continuous monitoring and assessment of myometrial contractile activity (EMG) and changes in the intrauterine pressure (IUP). Levels of mRNA encoding PGHS-2 and P450C17 were determined by in situ hybridization. Localization and levels of immunoreactive (ir-) P450(C17)and ir-PGHS-2 protein were determined by immunohistochemistry and Western blotting. PGHS-2 mRNA and ir-PGHS-2 were already elevated in placentomes of NIL animals and did not increase further with the progression of labour, whereas P450C17 mRNA increased progressively with labour, and ir-P450C17 rose significantly only in animals in active labour. The rise in P450C17 expression corresponded temporally to a progressive increase in maternal plasma concentration of oestradiol. We suggest that the temporal relationship and subsequent co-localization of PGHS-2 and P450(C17)proteins in the uninucleate trophoblast cells of the placentomes are consistent with the possibility that placental PGs could act to enhance placental output of oestrogen leading to labour and delivery.

Animals↗

Ontogeny of 3 beta-hydroxysteroid dehydrogenase/delta 5-delta 4 isomerase (3 beta-HSD) in human testis as studied by immunocytochemistry.

The enzyme complex 3 beta-hydroxy-5-ene-steroid dehydrogenase/delta 5-delta 4 isomerase (3 beta-HSD) is involved in the biosynthesis of all classes of active steroids, including androgens. To correlate possible changes in 3 beta-HSD with the well-known variations in testosterone secretion during development, the authors localized this enzyme by immunocytochemistry during fetal and postnatal periods of development in the human testis. In the fetal testis, 3 beta-HSD was detected in Leydig cells during the second and third trimester of gestation. In 8-month-old and 11-year-old boys, however, no immunoreaction could be detected in the testis. In pubertal boys, Leydig cells appeared well developed and immunopositive. Since the fluctuations in 3 beta-HSD immunoreactivity are similar to those already observed for androgen secretion, activation of 3 beta-HSD by trophic hormones may play an important role in androgen production during fetal and postnatal development.

Adolescent↗

Influence of estrogens on tuberoinfundibular and striatal dopaminergic systems in the rat.

As assessed by changes of prolactin secretion in rat anterior pituitary cells in culture, estrogens can exert a potent antidopaminergic activity at the pituitary level. Androgens and progestins can reverse the effect of estrogens. An interaction of sex steroids at the hypothalamic level on dopamine release and at the pituitary level on dopamine action could also be demonstrated in vivo. Moreover, estrogens exert a similar antidopaminergic activity at the striatal level on dopaminergic agent-induced acetylcholine accumulation. The observation of a modulation by estrogens of the symptoms of Parkinson's disease and tardive dyskinesias suggests the implication of sex steroids in neurology, psychiatry and behavior.

Animals↗

Influence of estrogens on tuberoinfundibular and striatal dopaminergic systems in the rat.

As assessed by changes of prolactin secretion in rat anterior pituitary cells in culture, estrogens can exert a potent antidopaminergic activity at the pituitary level. Androgens and progestins can reverse the effect of estrogens. An interaction of sex steroids at the hypothalamic level on dopamine release and at the pituitary level on dopamine action could also be demonstrated in vivo. Moreover, estrogens exert a similar antidopaminergic activity at the striatal level on dopaminergic-agent-induced acetylcholine accumulation. The observation of a modulation by estrogens of the symptoms of Parkinson's disease and tardive dyskinesias suggests the implication of sex steroids in neurology, psychiatry and behavior.

Androgens↗

Stratification of stage D2 prostate cancer patients by a disease aggressiveness score and its use in evaluating disease response and outcome to combination hormonal treatment (GnRH-A plus flutamide).

Suppression of androgen levels of stage D2 prostate cancer patients has been the prominent treatment for advanced prostate cancer. An arithmetic formula expressing disease aggressivity computed by the pre-treatment levels of alkaline phosphatase (AP), degree of tumor differentiation and number of bone metastases correlated well with disease response and outcome in stage D2 patients treated by chronic administration of the gonadotropin-releasing hormone agonistic analogues (GnRH-As; buserelin) or orchiectomy. In the present study we analyzed retrospectively disease response and outcome in 262 previously untreated stage D2 prostate cancer patients who received combination hormonal treatment (GnRH-A plus flutamide) using this aggressiveness score. Mean value of this aggressiveness score between patients who were grouped with reference to type of disease response according to the criteria established by the National Prostatic Cancer Project (NPCP) was statistically different (Kruskal-Wallis, p > 0.001). Pairwise comparison documented that this was true between all but the stable and progression groups. Linear regression analysis documented significant correlation of this aggressiveness score with length of response and survival (r = 0.59, and 0.45, respectively: p > 0.0001). Analysis of slopes obtained by linear regressions between aggressiveness score and survival in patients treated with GnRH-A plus flutamide and with GnRH-A monotherapy documented that disease response and outcome was superior among patients who received combination hormonal treatment. These data indicate that this aggressiveness score correlated well type of disease response, length of response, and survival with patients given combination hormonal treatment, and as such it can be used as an objective tool for analyzing clinical data.

Analysis of Variance↗