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Modification of radiation damage in rat spinal cord by mitotane.

Modification of the paralytic response in rats after 6-MV photon irradiation of the spinal cord with either single or split exposures (two equal fractions given in a 24-hour period) by mitotane was investigated. Mitotane was administered as a suspension in physiologic saline (300 mg/kg/day) for either 5 days prior to or 5 days after irradiation. For rats receiving split doses of 6-MV photons, either the last two doses of mitotane were given 2 hours prior to each radiation fraction or mitotane was begun 2 hours after the second fraction and continued for 5 days. The data to 6 months after irradiation indicate that, in rats given mitotane for 5 days prior to single-dose photon irradiation, the paralytic response (as defined by the dose needed to produce paralysis in 50% of the irradiated groups of rats) was enhanced by a dose-enhancement factor (DEF) of 1.40. The DEF in the group of rats given mitotane after single doses of 6-MV photons was 1.15. In the split-dose irradiation experiments, the DEF for the groups of rats given mitotane prior to each radiation fraction was 1.36; while the DEF for the group of rats receiving mitotane beginning after the second fraction was 1.18. These data indicate that mitotane can potentiate the effects of 6-MV photon irradiation to the central nervous system, with mitotane administered prior to irradiation being the most effective sequence.

Animals

Eastern Cooperative Oncology Group study 1879: mitotane and adriamycin in patients with advanced adrenocortical carcinoma.

From November 1979 to July 1986, 52 patients (27 women and 25 men; median age 52 years) with advanced adrenocortical carcinoma entered a prospective, nonrandomized study evaluating moderate-dose mitotane and doxorubicin hydrochloride (Adriamycin). Thirty-two tumors (62%) were well differentiated and evidence of hormone production was present in 24 patients (46%). Patients with well-differentiated or functional tumors received mitotane, 6 gm daily; patients for whom mitotane failed or those with poorly differentiated, non-hormone-producing tumors received Adriamycin, 60 mg/m2 every 3 weeks. Initially, 36 patients were treated with mitotane and 16 patients with Adriamycin. Eight patients (22%) responded to mitotane and three (19%) responded to Adriamycin. No response was noted in the 15 patients for whom mitotane failed and who then received Adriamycin. Severe toxicity occurred in 36% of patients who received mitotane and in 26% who received Adriamycin. Overall median survival after onset of treatment was 14 months. We conclude that mitotane or Adriamycin used initially can induce tumor regression in about 22% and 19% of selected patients, respectively. However, Adriamycin is ineffective as second-line chemotherapy for patients with well-differentiated or functioning tumors for whom mitotane is ineffective.

Adrenal Cortex Neoplasms

Successful treatment of a metastatic hormone-producing adrenal cancer by a combination of mitotane, tegafur and surgical resection.

A 34-year-old man had a huge hormone-producing adrenal cancer with multiple lung metastases, direct liver invasion and a tumor thrombus in the inferior vena cava. Initial treatment was mitotane alone. The dose of mitotane was 2 g/day initially and gradually increased to 15 g/day in combination with 600 mg of tegafur per day. During the initial phase of chemotherapy, the serum mitotane level was relatively low (2.9-4.6 micrograms/ml) and the pulmonary metastases tended to grow in size in spite of a gradual decline in urinary 17-KS and 17-OHCS and a regression of the primary tumor. A seemingly marked increase in serum mitotane (20.5-34.5 micrograms/ml) was coincident with the addition of tegafur. Rapid and consistent regression of the primary tumor occurred. This excellent response to the chemotherapy made the primary tumor with liver invasion and the metastases resectable. The adverse effect of mitotane, central nervous toxicity, appeared to be serum mitotane level dependent. The present results, together with previous reports in the literature, seem to recommend the following therapeutic approaches to advanced adrenal cancer: monitoring of the serum level may be useful in predicting the efficacy as well as the occurrence of side effects of mitotane, surgical treatment of the lesions should be performed whenever possible, even though it may be only palliative, and the combination of mitotane and tegafur is a choice of chemotherapy which should be evaluated in future studies.

17-alpha-Hydroxypregnenolone

Cytotoxic activity of 1-(o-chlorophenyl)-1-(p-chlorophenyl)-2,2-dichloroethane (mitotane) and its analogs on feminizing adrenal neoplastic cells in culture.

Mitotane [1-(o-chlorophenyl)-1-(p-chlorophenyl)-2,2-dichloroethane], an antineoplastic agent for inoperable adrenal carcinoma, was studied for its cytotoxic activity on a clonal line of feminizing human adrenal neoplastic cells (Fang-8 cells) in culture. At concentrations higher than 1.68 X 10(-4) M, mitotane produced a dose-related toxic effect on the cells. The effect of the drug was specific to Fang-8 cells because the same treatment produced little or no toxicity on lines of rat pituitary GH3 cells and human skin fibrocytes. The effect of mitotane to Fang-8 cells was a reversible one. Electron microscopic pictures revealed that the drug was causing mitochondrial degeneration. In this testing system, several isomers and analogs of mitotane were found equally or more toxic than was mitotane itself. The dichloro- or trichloroethylene structure was essential for the cytotoxic activity while the chloro substituents on phenyl rings appeared to be unimportant. This system appears to be useful in elucidating the biochemical mechanism of mitotane action on adrenal cancer.

Adrenal Gland Neoplasms

Influence of mitotane on the hypoprothrombinemic effect of warfarin.

Mitotane (o,p'-DDD) is closely related to the organochlorine insecticides and shares their effects on drug metabolism. We have reported the first documented interaction of mitotane and warfarin in a human being. Because the potential for significant toxicity is great when mitotane and warfarin are used concomitantly, caution is recommended when titrating warfarin therapy in patients receiving mitotane. Other drugs susceptible to the influence of enzyme inducers should also be given with caution to patients receiving mitotane.

Adrenal Gland Neoplasms

Primary hypogonadism associated with o,p' DDD (mitotane) therapy.

Mitotane is a drug which is concentrated largely in adipose tissue and the adrenal glands. It has a remarkable specificity for the adrenal cortex and can produce necrosis of that organ; consequently, it has been used as a therapeutic agent for adrenocortical carcinoma. Because of the similarity between adrenocortical and testicular tissue, mitotane could be expected to cause testicular damage; however, there is sparse support for this in the literature. We recently studied a patient who developed impotency due to primary testicular failure at the time that he was treated with mitotane. A testicular biopsy, performed about four months after the drug was discontinued, showed normal appearing Leydig cells and atrophy of the seminiferous tubules with the picture of a maturation arrest. In the four and one half years since he last received mitotane, the patient's libido has slowly improved and his plasma testosterone, gonadotropins and LH response to gonadotropin-releasing hormone have become essentially normal. We propose that mitotane can be cytotoxic to the testis as it is to the adrenal cortex.

ACTH Syndrome, Ectopic

Sustained remission of Cushing's disease with mitotane and pituitary irradiation.

Low doses of mitotane were given orally to 36 patients with Cushing's disease, concurrently with or after pituitary cobalt irradiation. Clinical and biochemical remission occurred in 29. The response to treatment occurred early in 17 patients and late in 12. The different pattern of response to mitotane was not related to the dose given or to its serum level. Early biochemical indicators of adrenal suppression with mitotane were a sharp decrease in adrenal response to the infusion of ACTH and in plasma levels of dehydroepiandrosterone sulfate. Although mitotane was given together with pituitary irradiation, initial remission was due mainly to the adrenal effect of mitotane. Plasma ACTH levels were still elevated when cortisol had returned to normal. In seventeen of the 29 patients who responded to treatment drug therapy has been discontinued, and they remain in remission of Cushing's syndrome. Side-effects have been dose dependent, with anorexia, nausea, decreased memory, and gynecomastia in men being the commonest.

Adrenal Glands

Prolonged bleeding time due to mitotane therapy.

After finding prolonged bleeding times in 2 patients treated with mitotane, we prospectively studied 7 patients with adrenocortical cancer on mitotane therapy. Before and 1 and 2 or more weeks after starting mitotane we determined the platelet counts, bleeding times and global coagulation parameters. All patients had a normal bleeding time before treatment. In 6 cases the bleeding time became prolonged (245-555 s). 4 patients exhibited platelet aggregation responses compatible with an aspirin-like defect. It is concluded that mitotane may cause a clinically relevant defect of platelet function.

Adolescent

Clinical features of adrenocortical carcinoma, prognostic factors, and the effect of mitotane therapy.

Adrenocortical carcinoma is a rare tumor, and only limited information is available about its natural history and the effects of therapy. We studied 105 patients (75 female and 30 male; mean age, 46 years) with adrenocortical carcinoma who were referred to us between 1963 and 1987. The average duration of symptoms before diagnosis was 8.7 months. At the time of diagnosis, 68 percent of the patients had endocrine symptoms, and 30 percent had distant metastases. Hormonal studies showed that 79 percent of the tumors were functional. Eighty patients underwent surgery, and 59 also received the adrenal cytotoxic agent mitotane. The median disease-free interval after surgery was 12.1 months (range, 1 to 175). Tumor dissemination occurred in 82 percent of the patients, most commonly to the lung, liver, and adjacent organs. The median survival time was 14.5 months (range, less than 1 to 175), and the five-year survival was 22 percent. Age over 40 years and the presence of metastases at the time of diagnosis were the only factors recognized as indicating a poor prognosis. Mitotane controlled hormonal secretion in 75 percent of the patients. Eight mitotane-treated patients had partial tumor regression, but the drug did not have a significant effect on survival. We conclude that adrenocortical carcinoma carries a poor prognosis. Mitotane therapy may offer transient benefits, particularly in controlling endocrine symptoms.

Adrenal Cortex Hormones

Mitotane enhances cytotoxicity of chemotherapy in cell lines expressing a multidrug resistance gene (mdr-1/P-glycoprotein) which is also expressed by adrenocortical carcinomas.

P-Glycoprotein (Pgp), product of the mdr-1 gene, is a 130- to 180-kDa plasma membrane phosphoglycoprotein which mediates multidrug resistance in cell culture by increasing efflux of the natural product chemotherapeutic agents. High levels of expression of mdr-1/Pgp are found in both the normal adrenal and adrenocortical cancers. By RNA in situ hybridization the expression in adrenocortical cancer is shown to be widely distributed. The present study demonstrates that decreased drug accumulation mediated by mdr-1/Pgp can be overcome by clinically achievable concentrations of mitotane (o,p'-DDD). The increase in drug accumulation with the addition of mitotane is due at least in part to a decrease in drug efflux and results in an increase in cytotoxicity when agents of the natural product class are used. This effect is observed in cells with a broad range of mdr-1/Pgp expression, including levels comparable to those found in most adrenocortical cancers. Similar increases in drug accumulation can be demonstrated in an unselected adrenocortical cancer cell line that expresses mdr-1/Pgp. The finding that multidrug resistance mediated by mdr-1/Pgp can be reversed by mitotane provides a rational basis for exploring the use of mitotane in combination with natural product chemotherapeutic agents in adrenocortical cancer.

ATP Binding Cassette Transporter, Subfamily B, Mem

Mitotane increases the blood levels of hormone-binding proteins.

In 3 patients with adrenocortical carcinoma the effects of long-term mitotane therapy on the serum levels of three hormone-binding globulins and vitamin D-binding protein were studied. Within the first month of treatment cortisol-binding globulin increased two to three times, in close correlation with sex hormone-binding globulin. The rises in thyroxine-binding globulin and vitamin D-binding protein were considerably less. Elevated cortisol-binding protein appeared to be associated with increased binding of cortisol, whereas the binding of thyroxine and vitamin D remained below normal. Binding proteins returned to normal in 2 patients within a year after mitotane discontinuation. This phenomenon of hormone-binding protein enhancement invalidates the use of total serum hormone levels to monitor the effects of mitotane on endocrine function and could provide an explanation for the increased cortisol substitution requirement during mitotane therapy.

Adrenal Cortex Neoplasms

Treatment of adrenal cortical carcinoma with mitotane: outcome and complications.

Adrenal cortical carcinoma is a rare tumour with a poor prognosis. We report a patient with metastatic adrenal cortical carcinoma who responded dramatically to Mitotane (o,p'-DDD). Unlike previous reports of metastatic adrenal cortical carcinoma in which complete remission was obtained with high dose Mitotane treatment, the dose of Mitotane used in this patient was low. However, she developed unusual side-effects such as hyperpigmentation, low plasma cortisol and high adrenocorticotropic (ACTH) levels. The side effects closely resemble those in Nelson's syndrome and were reversed by cortisone replacement. The mechanism of actions of Mitotane is discussed with emphasis on its effect on corticosteroid metabolism.

Adrenal Cortex Neoplasms

Mitotane (o,p'-DDD) treatment of 200 dogs with pituitary-dependent hyperadrenocorticism.

Two hundred dogs with pituitary dependent hyperadrenocorticism (PDH) were treated with mitotane at an initial daily dosage of 21 to 69 mg/kg (mean = 45.2 mg/kg) for 5 to 14 days. During the induction period, 194 of the dogs also were given daily maintenance dosages of a glucocorticoid. Fifty of the dogs exhibited one or more adverse effects during initial induction, including weakness, vomiting, anorexia, diarrhea, and ataxia. After completion of the induction period, repeat ACTH stimulation testing revealed significant decreases in mean serum cortisol concentrations when compared with initial values. Twenty-five dogs, however, still responded to exogenous ACTH with serum cortisol concentrations above normal resting range, necessitating daily treatment for an additional 5 to 55 days. In contrast, 70 of the 200 dogs had low post-ACTH serum cortisol concentrations after the induction period. These subnormal serum cortisol concentrations generally increased spontaneously to within normal resting range 2 to 6 weeks after cessation of mitotane. In 184 dogs, mitotane was continued at an initial mean maintenance dosage of 49 mg/kg administered weekly in two to three divided doses. Of these dogs, 107 had one or more relapses of hyperadrenocorticism during treatment. In the 75 dogs that had one relapse, the median maintenance dosage was increased by approximately 35%, whereas the median maintenance dosage in the 32 dogs having two or more relapses was eventually increased by 225% over the initial dosage. After a mean maintenance treatment time of 2.0 years, the final maintenance dosage required in the 184 dogs ranged from 26.8 to 330 mg/kg/week.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenocortical Hyperfunction

Comparison of mitotane treatment for adrenal tumor versus pituitary-dependent hyperadrenocorticism in dogs.

The purpose of this study was to determine the sensitivity of dogs with hyperadrenocorticism to treatment with the adrenocorticolytic agent mitotane. Specifically, we looked for differences in response to treatment using this drug in dogs with adrenocortical tumors (adrenal tumor hyperadrenocorticism, ATH) vs those with pituitary-dependent hyperadrenocorticism (PDH). For inclusion in this study, each dog must have had clinical signs, data base laboratory abnormalities, and endocrine screening test results consistent with the diagnosis of hyperadrenocorticism. Further, each dog had to have been treated for at least 6 months with mitotane and have histologic evidence for adrenocortical or pituitary neoplasia (all dogs were necropsied). Thirteen dogs with ATH (8 carcinomas, 5 adenomas) were identified. The ages and body weights of these 13 dogs were computer-matched to 13 dogs with PDH. All dogs were initially treated with approximately 50 mg of mitotane/kg/d of body weight. Reexaminations were performed after 7, 30, 90, and 180 days of treatment. Individual dosages varied widely after the initial 5 to 12 days of treatment. The mean (+/- SD) dose of mitotane (mg/kg/d) for the first 7 days of treatment was 47.5 +/- 9.4 for dogs with ATH vs 45.7 +/- 11.9 for dogs with PDH. The mean plasma cortisol concentrations 1 hour after ACTH administration at the 7-day recheck were significantly higher in dogs with ATH (502 +/- 386 nmol/L) than in dogs with PDH (88 +/- 94 nmol/L).(ABSTRACT TRUNCATED AT 250 WORDS)

Adenoma

Rapid micromethod for the analysis of mitotane and its metabolite in plasma by gas chromatography with electron-capture detection.

A rapid micromethod for 50-microliter samples is described for the analysis in plasma of mitotane (o,p'-DDD) and its metabolite (o,p'-DDE), using p,p'-DDD as internal standard. The compounds are extracted with heptane without sample pretreatment, and an aliquot is directly analysed by gas chromatography with electron-capture detection. Absolute recoveries for all three compounds were ca. 87% and coefficients of variation were less than 5%. The method is being used successfully for monitoring patients with Cushing's syndrome who receive chronic oral mitotane therapy.

Child

Late recurrence of operated adrenocortical carcinoma: atrial natriuretic factor before and after treatment with mitotane.

A 62-year-old man arrived at our hospital with recurrence of Cushing's syndrome 14 years after successful surgery for adrenocortical carcinoma. Investigations demonstrated recurrence of a large tumor above the right adrenal area; it was found to be inoperable. The patient was treated initially with a new glucocorticoid antagonist, RU 486, and later with the adrenolytic agent mitotane (o,p'DDD). The latter achieved hypoadrenocorticism and a substantial reduction of tumor size. During the initial period, worsening hyperadrenocorticism resulted in a rise of atrial natriuretic factor and an inhibition of renin activity, consistent with an increase of cortisol and plasma volume. Changes in opposite direction were observed after treatment with mitotane.

Adrenal Gland Neoplasms

Plasma level monitoring of mitotane (o,p'-DDD) and its metabolite (o,p'-DDE) during long-term treatment of Cushing's disease with low doses.

Mitotane (o,p'-DDD) can be used for the treatment of various adrenocortical diseases such as Cushing's syndrome, but the usual doses of 6-8 g per day are often associated with severe adverse effects. This paper reports the results of much lower doses of o,p'-DDD (0.5-2 g per day) in two patients with Cushing's disease over periods of 8 and 5 years, respectively, under concomitant monitoring of the plasma levels of the parent drug and its major metabolite, o,p'-DDE. It became apparent that o,p'-DDD and o,p'-DDE have a strong tendency to accumulate in the body due to their high lipophilicity. As a consequence, changes in dose regimens had long lag times before they were reflected in plasma levels and once an increase or decrease had started one had to be careful not to cause overshoot. Steady state plasma levels of o,p'-DDD between 5-10 micrograms/ml appeared sufficient to induce and to maintain remission of the disease, which was accompanied with normal cortisol levels in plasma and urine. DDD-levels below 5 micrograms/ml for several weeks may lead to relapses, whereas DDD-levels over 10 micrograms/ml gave rise to side effects. On the other hand, o,p'-DDE seemed inactive at levels up to 4 micrograms/ml in plasma.

Adolescent

The distribution of o,p'-DDD (mitotane) among serum lipoproteins in normo- and hypertriglyceridemia.

We found that the distribution of the lipophilic chemotherapeutic agent o,p'-DDD (mitotane) among serum (lipo)proteins was altered in hypertriglyceridemia, with relatively more o,p'-DDD accumulating in the chylomicron and very-low-density lipoprotein (VLDL) fraction. Intralipid, an artificial chylomicron emulsion, or isolated VLDL could extract o,p'-DDD from the other serum (lipo)proteins. There was an inverse relationship between the relative amount of o,p'-DDD found in the fraction exhibiting a density of less than 1.006 g/ml (chylomicrons plus VLDL) and the relative amount observed in the LDL or HDL fractions of serum. Our results indicate that hypertriglyceridemia may impede the entry of o,p'-DDD into the brain or the adrenals. For therapeutic monitoring of o,p'-DDD levels in severe hypertriglyceridemia, we recommend that the chylomicron and VLDL fraction first be removed from the serum by ultracentrifugation.

Adrenal Cortex Neoplasms