ANABOLIC EFFECTS OF METHENOLONE ENANTHATE AND METHENOLONE ACETATE IN UNDERWEIGHT PREMATURE INFANTS AND CHILDREN.
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The use of anabolic steroids has been banned in the European Union since 1981. In this study, the metabolism of the anabolic steroid methenolone acetate, was investigated in a male veal calf. After daily oral administration of methenolone acetate, three main metabolites were detected in both urine and faeces samples. Among these metabolites, alpha-methenolone was apparently the main one, but 1-methyl-5alpha-androstan-3,17-diol and 3alpha-hydroxy-1-methyl-5alpha-androstan-17-one were also observed. The parent compound was still detectable in faeces. As a consequence, abuse of methenolone acetate as growth promoter can be monitored by analysing urine and faeces samples. A few days after the last treatment, however, no metabolites were observed. Alpha-methenolone was detectable in urine until 5 days after the last treatment, but in faeces no metabolites were detectable after 3 days.
The metabolism of methenolone acetate (17 beta-acetoxy-1-methyl-5 alpha-androst-1-en-3-one), a synthetic anabolic steroid, has been investigated in man. After oral administration of a 50 mg dose of the steroid to two male volunteers, twelve metabolites were detected in urine either in the glucuronide, sulfate or free steroid fractions. Methenolone, the parent steroid was detected in urine until 90 h after administration. Its cumulative urinary excretion accounted for 1.63% of the ingested dose. With the exception of 3 alpha-hydroxy-1-methylen-5 alpha-androstan-17-one, the major biotransformation product of methonolone acetate, metabolites were excreted in urine at lower levels, through minor metabolic routes. Most of methenolone acetate metabolites were isolated from the glucuronic acid fraction, namely methenolone, 3 alpha-hydroxy-1-methylen-5 alpha-androstan-17-one, 3 alpha-hydroxy-1 alpha-methyl-5 alpha-androstan-17-one, 17-epimethenolone, 3 alpha,6 beta-dihydroxy-1-methylen-5 alpha-androstan-17-one, 2 xi-hydroxy-1-methylen-5 alpha-androstan-3,17-dione, 6 beta-hydroxy-1-methyl-5 alpha-androst-1-en-3,17-dione, 16 alpha-hydroxy-1-methyl-5 alpha-androst-1-en-3,17-dione and 3 alpha,16 alpha-dihydroxy-1-methyl-5 alpha-androst-1-en-17-one. Interestingly, the metabolites detected in the sulfate fraction were isomeric steroids bearing a 16 alpha- or a 16 beta-hydroxyl group, whereas 1-methyl-5 alpha-androst-1-en-3,17-dione was the sole metabolite isolated from the free steroid fraction. Steroids identity was assigned on the basis of the mass spectral features of their TMS ether, TMS enol-TMS ether, MO-TMS, and d9-TMS ether derivatives and by comparison with reference and structurally related steroids. The data indicated that methenolone acetate was metabolized into several compounds resulting from oxidation of the 17-hydroxyl group and reduction of A-ring substituents, with or without concomitant hydroxylation at the C6 and C16 positions.
A sensitive, specific and reproducible method for the quantitative determination of methenolone in human hair has been developed. The sample preparation involved a decontamination step of the hair with methylene chloride. The hair sample (about 100 mg) was solubilized in 1 ml 1 M NaOH, 15 min at 95 degrees C, in presence of 1 ng testosterone-d3 used as internal standard. The homogenate was neutralized and extracted using consecutively a solid-phase (Isolute C18 eluted with methanol) and a liquid-liquid (pentane) extraction. The residue was derivatized by adding 50 microl MSTFA-NH4I-2-mercaptoethanol (1000:2:5, v/v/v), then incubated for 20 ml at 60 degrees C. A 1.5-microl aliquot of the derivatized extract was injected into the column (HP5-MS capillary column, 5% phenyl-95% methylsiloxane, 30 m x 0.25 mm I.D., 0.25 microm film thickness) of a Hewlett-Packard (Palo Alto, CA, USA) gas chromatograph (6890 Series). Methenolone was detected by its parent ion at m/z 446 and daughter ions at m/z 208 and 195 through a Finnigan TSQ 700 MS-MS system. The assay was capable of detecting 1 pg/mg of methenolone when approximately 100 mg hair material was processed. Linearity was observed for methenolone concentrations ranging from 2 to 100 pg/mg with a correlation coefficients of 0.965-0.981. Intra-day and between-day precisions at 2, 10 and 25 pg/mg were 10.9-14.1% and 13.7-16.8%, respectively, with an extraction recovery of 97.6%. The analysis of a strand of hair obtained from two bodybuilders, revealed the presence of methenolone at the concentrations of 7.3 and 8.8 pg/mg.
The effect of additive administration of methenolone oenanthate (Primobolan) on lipid metabolism was studied in 28 menopausal women with metastasizing carcinoma of the breast. In ten women hyperlipoproteinaemia type IIa was demonstrated in the course of treatment, while in two there was hyperlipoproteinaemia type IIb. One of the latter patients had a myocardial infarction in the course of treatment. There was no relationship between the level of hypercholesterolaemia and the methenolone dosage. Nor was it possible to classify the type of cholesterolaemia as a bile stasis syndrome. The hyperlipoproteinaemia regressed in every case once methenolone treatment was discontinued.
Anabolic-androgenic steroids are widely misused in human sports and are also used as growth promoters in livestock. Athletes who consume meat containing such hormone residues may risk failing a sports drug test. Prompted by an athlete's defense case, we questioned whether the consumption of small livestock given doses of anabolic steroid, orally or intramuscularly, could generate positive results in samples tested by our analytical procedures. We analyzed urine from eight men who consumed chickens that had been either fed with methenolone acetate (1 mg/day) from day 0 to 21 or injected with methenolone heptanoate depot (1 mg/intramuscular injection) on days 0, 7, and 14 and slaughtered on day 22. No methenolone or characteristic major metabolite was detected in samples from subjects who ate meat from the orally dosed chickens. However, 50% of the samples collected 24 h after consumption of the intramuscularly dosed chickens were confirmed positive. Hence, eating meat containing small amounts of injected hormone may constitute a serious liability to the athlete.
New metabolites of mesterolone, methenolone and stenbolone bearing a C18 hydroxyl group were isolated from the steroid glucuronide fraction of urine specimens collected after administration of single 50 mg doses of these steroids to human subjects. Mesterolone gave rise to four metabolites which were identified by gas chromatography/mass spectrometry as 18-hydroxy-1 alpha-methyl-5 alpha-androstan-3,17-dione 1, 3 alpha,18-dihydroxy-1 alpha-methyl-5 alpha-androstan-17-one 2, 3 beta,18-dihydroxy-1-alpha-methyl-5 alpha-androstan-17-one 3 and 3 alpha,6 xi,18-trihydroxy-1 alpha-methyl-5 alpha-androstan-17-one 4. These data suggest that mesterolone itself was not hydroxylated at C18, but rather 1 alpha-methyl-5 alpha-androstan-3,17-dione, an intermediate metabolite which results from oxidation of mesterolone 17-hydroxyl group. In addition to hydroxylation at C18, reduction of the 3-keto group and further hydroxylation at C6 were other reactions that led to the formation of these metabolites. It is of interest to note that in the case of both methenolone and stenbolone, only one 18-hydroxylated urinary metabolite namely 18-hydroxy-1-methyl-5 alpha-androst-1-ene-3,17-dione 5 and 18-hydroxy-1-methyl-5 alpha-androst-1-ene-3,17-dione 6 were both detected in post-administration urine specimens. These data indicate that the presence of a methyl group at the C1 or C2 positions in the steroids studied is a structural feature that seems to favor interaction of hepatic 18-hydroxylases with these steroids. These data provide further evidence that 18-hydroxylation of endogenous steroids can also occur in extra-adrenal sites in man.
A highly accurate method has been developed for detection and quantitation of 3 alpha-hydroxy-1-methylen-5 alpha-androstan-17-one, the major urinary metabolite of methenolone acetate (Primobolan) in man. Unlabelled as well as 2H-labelled 3 alpha-hydroxy-1-methylen-5 alpha-androstan-17-one were synthesized from 1-methylen-5 alpha-androstane-3,17-dione. A fixed amount of the internal standard was added to a fixed amount of urine and the mixture was treated with Helix pomatia for 24 h. After extraction and purification by t.l.c., the mixture was converted into methoxime--trimethylsilyl derivative and analyzed by combined GC--MS. Unlabelled 3 alpha-hydroxy-1-methylen-5 alpha-androstan-17-one could be quantitated from the ratio between the tracings of the ions at m/z 372 and m/z 375 (corresponding to the M-31 ions). In alternative procedures, the ions at m/z 403 and m/z 406 (molecular ions) as well as m/z 282 and m/z 285 (M-90-31 ions) could be used. Under the conditions employed, the metabolite could be identified and quantitated in concentrations exceeding 10 ng/ml. Significant amounts of the metabolite could be detected in urine during 5 days after a single oral ingestion of 10 mg of Primobolan. The method has been successfully used for analyses of urine samples obtained from athletes involved in competition.
A therapeutic trial with methenolone (Primobolan) in 19 consecutive patients with different types of refractory anemia is reported. The remission frequencies were: pancytopenia 3/6, bicytopenia 2/4, refractory anemia with hyperplastic marrow 1/5, myelofibrosis 1/4. There was no obvious prolongation of survival in the patients responding. Side-effects were negligible.
A randomized blind prospective study was carried out to determine if an anabolic androgenic steroid with a high anabolic/androgenic ratio, Group A, (1/0.05) methenolone enanthate (me), compared to an anabolic/androgenic agent with a low anabolic/androgenic ratio, Group B, (1.0/1.0) testosterone propionate (tp), compared to a control, Group C, cottonseed oil (co), affected midhumeral osteotomy healing in 100 two-month-old female Wistar rats. The rats received 4 mg/kg me, 4 mg/kg te, and equal volumes of co weekly. The rats were sacrificed at 2, 4, and 6 weeks. The entire humerus with the healing osteotomy was carefully dissected until all soft tissue attachments were stripped. The healing callus was then subjected to (1) biochemical analysis (hexosamine, hydroxyproline, and calcium), (2) biomechanical testing (progressive distraction of the callus at 1 mm/min on an electrohydraulic materials test system, model 1331, Instron Corp, Canton, MA, and (3) histology. Results of the biochemical testing demonstrated that the percentage of calcium in the healing callus at 2 weeks in group B (tp) was 7.3 +/- 1.0, and this value was greater than that in group C (co), 4.8 +/- 1.6 (p greater than .01), and greater than that in group A (me), 5.6 +/- 0.6 (p greater than .01). At 4 weeks, the percentage of calcium in the callus in group B (tp) was 6.8 +/- 1.9, in group A (me) 7.3 +/- 3.7, and these values were both greater than that in group C (co), 3.9 +/- 2.2 (p greater than .02 and .01, respectively). At 6 weeks the percentage of calcium in the callus in group B (tp) was 11.7 +/- 3.9 and in group A (me) 12.7 +/- 3.9, and again these values were both greater than that in group C (co), 6.7 +/- 2.6 (p greater than .02 and .01, respectively). The remainder of the biochemical analysis, hexosamine and hydroxyproline content, did not show a statistical difference in groups A, B, and C at 2, 4, and 6 weeks. The biomechanical studies and histology also failed to show statistical differences between the three groups at 2, 4, and 6 weeks. The conclusion of this study is that an agent with a low androgenic activity does not increase calcium callus concentrations early in the course of fracture healing compared to an agent with higher androgenic activity. As healing progresses, both agents increase the concentration of calcium in osteotomy healing. The clinical significance of this study is that agents with low androgenic activities favorably influence osteotomy healing and may be clinically useful because they lack unwanted virilizing activity.
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15 patients with a histologically and/or peritoneoscopically proven cirrhosis of the liver were treated for four weeks with 200 mg metenolonenanthate (Depot-Primobolan) per week. Before and after the treatment the intravascular and extravascular pool and daily turnover of albumin were measured with 125J-albumin. All patients had a well "compensated" cirrhosis. The only significant difference between the values of the cirrhotic patients and those of a control group of patients was a reduction of the albumin turn-over. The anabolic steroid enlarged the turn-over, the effect was the more pronounced the more pronounced the more the turn over was diminished before the treatment.
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