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At least 19 recordsLinked to original sources

Testosterone metabolism in benign prostatic hypertrophy: in vivo studies of gestonorone caproate and cyproterone acetate.

18 patients with obstructive benign prostatic hypertrophy were studied. A 5-day treatment with gestonorone caproate (200 mg daily and 200 mg on alternate days) and cyproterone acetate (300 mg daily) suppressed the plasma LH and serum LH levels. Subsequently, H3-testosterone was injected intravenously and its elimination from plasma and uptake and metabolism in the BPH tissue studied. The elimination of total radioactivity and H3-testosterone from plasma was not altered after the 3 treatment regimens as compared to the control group. The uptake of total radioactivity into BPH tissue and its intraprostatic metabolism particularly to dihydrotestosterone was significantly suppressed in the patients with daily injections of gestonorone. Cyproterone acetate and gestonorone caproate on alternate days did not cause this effect.

Aged↗

The influence of the progestogen gestonorone caproate on testosterone turnover in renal cell carcinoma. An in vitro study.

To investigate the effect of gestagens on renal cell carcinoma 300-mg slices of normal, human kidney, renal cell carcinoma (RCC), and preoperatively irradiated RCC were subjected to a short term incubation with 200 pmoles of 3H-testosterone and 1 and 2 mug of gestonorone caproate. In the normal kidney 61.4 per cent of the testosterone added was metabolized, the oxidation products androstenedione and epitestosterone outweighing by 6:1 the reduction products 5alpha-dihydrotestosterone and androstanediol. In RCC only 22 per cent of the testosterone was metabolized, with 8.5 per cent being converted to 5alpha-androstanes. Gestonorone caproate essentially did not influence testosterone turnover. This can be explained by its action as an inhibitor of the reductive pathway of the testosterone metabolism only, which is insignificant in these tissues.

Adenocarcinoma↗

[Antiandrogen therapy of benign prostatic hyperplasia--review of the agents evaluation of the clinical results].

Various non-surgical therapeutic modalities such as balloon dilation of the prostatic urethra, hyperthermia of the prostate and medication with antiandrogens and/or adrenergic blockade have been attempted for the patients with benign prostatic hyperplasia (BPH) especially in an early stage or in a poor operative risk. The observation that androgen deprivation induces shrinkage of the hyperplastic prostate represents the basis for the treatment of BPH with antiandrogen. Although several antiandrogens are now in clinical use in our country, there still remain problems to be solved. We reviewed the mechanism of action and the clinical results of antiandrogens in the treatment of BPH. The improvement following antiandrogen therapy occurred among the patients with symptomatic BPH, in 50-80% subjectively and in 40-50% objectively. The therapy appeared to be more effective in an early stage of the disease. However, the limitation of the duration of the effects and unfavorable side effects should also be noticed. The progestational agents such as gestonorone caproate, chlormadinone acetate and allylestrenol suppress more or less sexual function by interference of the pituitary-gonadal axis. Besides, coincidental prostate cancer must be excluded since antiandrogen therapy might hinder the natural course of the cancer.

Administration, Oral↗

Conservative treatment of benign prostatic hyperplasia.

A study was carried out in 30 male patients with benign prostate hyperplasia to assess the effectiveness of treatment with a progestational agent, gestonorone caproate (200 mg), given intramucularly every 7 days over a period of 2 to 3 months. The results showed definite subjective and objective improvement after treatment. Residual urine determination diminished significantly after therapy in 78% of the cases completing the study; uroflometry also showed improvement. There appeared to be some reduction in the degree of occlusion of the urethral lumen in at least 13(65%) out of 20 patients given follow-up cystopanendoscopy after 6 months. This result was further supported by improvement in urinary flow rates and uroflometrograms in the same patients. The only adverse effect of treatment noted was the development of impotency in 21 patients.

Aged↗

Pilot study with adjuvant hormone therapy in FIGO stage I endometrial carcinoma with myometrial invasion.

A pilot study with adjuvant hormone therapy in FIGO stage I endometrial carcinoma with myometrial invasion was carried out. All patients received total abdominal hysterectomy and bilateral salpingo-oophorectomy plus complementary radium therapy on the vaginal stump. After the conventional treatment, patients were randomly allocated to adjuvant hormone therapy or no further treatment. Hormone therapy consisted of gestonorone caproate (17 alpha-hydroxy-19-norpregn-4-en 3, 20 dione caproate) administered i.m. at the dose of 200 mg/week for 1 year. Of the 62 patients who entered the study, 51 were considered evaluable (24 with adjuvant hormone therapy and 27 with no further treatment). Five patients had a relapse: four of these were in the group with no further treatment. Actuarial relapse-free survival analysis at 5 years was 95.7% in the group of adjuvant-treated patients and 82.8% in the control group. Although there is no statistical significance, adjuvant therapy appears to result in an increase in relapse-free survival in the group of patients with deep myometrial invasion and undifferentiated carcinoma. Further studies are necessary to assess the effectiveness of hormone adjuvant treatment in FIGO stage I endometrial carcinoma with myometrial invasion.

Adenocarcinoma↗

Studies for a genotoxic potential of some endogenous and exogenous sex steroids. I. Communication: examination for the induction of gene mutations using the Ames Salmonella/microsome test and the HGPRT test in V79 cells.

The mutagenicity results and data of nine progestins (cyproterone acetate, dehydrospirorenone, gestodene, gestonorone caproate, levonorgestrel, norethisterone, norethisterone acetate, norethisterone enanthate, norethynodrel), one hypothetical metabolite (6,7-epoxy-cyproterone acetate), four estrogens (estradiol, ethinylestradiol, cyclodiol, cyclotriol), and four other sex steroids (atamestane, lilopristone, onapristone, propylmesterolone) are reported. All 17 sex steroids were investigated using the Ames salmonella/microsome direct plate incorporation protocol, and seven were additionally tested using the preincubation modification. Seven sex steroids were also studied in the HG-PRT test with V79 cells for the induction of gene mutations in mammalian cells. The metabolite was examined in the Ames salmonella/microsome assay using the standard protocol and the preincubation modification. In all assays the test compounds were investigated up to concentration levels where cytotoxicity and/or visible precipitation occurred or at least the solubility limit of the test compound was reached. For all assays, evaluation of the data indicates that neither any of the sex steroids nor the hypothetical metabolite was able to induce gene mutations whether in the absence or the presence of an extrinsic metabolizing system (S9 mix).

Animals↗

Treatment with progesterone analogues decreases macrophage Fcgamma receptors expression.

Macrophage Fcgamma receptors (FcgammaRs) are critical for host defense against infection and have an important role in immune cytopenias. Modulation of macrophage FcgammaRs expression is a potential therapeutic approach to immune disorders. Glucocorticoids and synthetic progesterone analogues decrease macrophage FcgammaRs expression. We assessed the effect of treatment with commonly employed progestins on the expression of macrophage FcgammaRs using an experimental model in the guinea pig. Eight clinically available progesterones, medroxyprogesterone acetate (P3), megestrol acetate (P4), medrogestone (P5), alylestrenol (P6), linestrenol (P7), didrogesterone (P8), norethisterone (P9), and gestonorone caproate (P10) and two endogenous progesterones, progesterone (P1) and 17 alpha-hydroxyprogesterone (P2), were studied. Following in vivo treatment of guinea pigs, we determined the clearance of IgG-sensitized erythrocytes in vivo, the binding of IgG-sensitized erythrocytes by isolated splenic macrophages, and splenic macrophage Fcgamma receptor cell surface expression. All progesterones impaired the clearance of IgG-sensitized erythrocytes by decreasing splenic macrophage Fcgamma receptor expression. P5, P6, P7, and P8 were less effective. Flow cytometry and fluorescence microscopy with monoclonal antibodies demonstrated that progesterones decreased the cell surface expression of FcgammaR2 more than that of FcgammaR1,2. Clinically employed progestins impair the clearance of IgG-coated cells by decreasing splenic macrophage FcgammaRs expression. Thus, progesterones are candidate drugs for the treatment of immune disorders.

Animals↗