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Biomedical subjects

C R DeBold

Publications and source records attributed to C R DeBold.

27 records · Page 2Linked to original sources

Clinical studies with synthetic ovine corticotropin-releasing factor.

Ovine corticotropin-releasing factor (oCRF) stimulates increased plasma immunoreactive adrenocorticotropin (IR-ACTH) and IR-cortisol at threshold, half-maximal, and maximal doses of 0.01-0.03, 0.3-1, and 3-10 micrograms/kg, respectively. Side effects occur with increasing frequency, severity, and duration at doses above 1 microgram/kg. oCRF has a prolonged duration of action, at least in part because of the long circulating half-life of intact oCRF in plasma. Increasing doses of oCRF given in late afternoon progressively diminish the next morning's circadian rise in plasma IR-ACTH in normal subjects, but not in Addisonian patients or subjects receiving metyrapone, indicating that prolonged oCRF-induced hypercortisolemia is the cause. Plasma IR-lipotropins and IR-beta-endorphin rise and fall concomitantly with IR-ACTH after oCRF injection. Arginine vasopressin increases the IR-ACTH response to oCRF fourfold when given simultaneously with oCRF. Cushing's disease patients respond variably, suggesting that oCRF may not be a very useful diagnostic agent in Cushing's syndrome. However, the combination of oCRF with growth hormone-releasing factor, gonadotropin-releasing hormone, and thyrotropin-releasing hormone appears to provide a rapid and useful test of combined anterior pituitary function.

Adrenocorticotropic Hormone↗

Arginine vasopressin potentiates adrenocorticotropin release induced by ovine corticotropin-releasing factor.

Arginine vasopressin (AVP) stimulates ACTH release in man and acts synergistically with synthetic ovine corticotropin-releasing factor (oCRF) in vitro. This study was designed to examine in man the combined effects of synthetic AVP (10 U intramuscularly) and oCRF (1 micrograms/kg intravenously) on ACTH release. Five normal male volunteers participated in five separate experiments: (a) AVP alone; (b) oCRF alone; (c) AVP followed by oCRF 15 min later; (d) simultaneous AVP and oCRF; and (e) insulin-induced hypoglycemia. Plasma immunoreactive ACTH (IR-ACTH) and IR-cortisol were measured for 4 h after injection of each hormone; basal levels for all subjects were less than or equal to 9 +/- 1.2 pg/ml and 4.9 +/- 0.4 micrograms/dl (mean +/- SE), respectively. AVP and oCRF, when given individually, caused rapid rises in IR-ACTH to similar peak levels of 25 +/- 6.6 and 33 +/- 4.6 pg/ml, respectively. AVP given 15 min before oCRF caused a 2.6-fold potentiation of the oCRF response, with a peak IR-ACTH of 85 +/- 4.6 pg/ml. AVP given at the same time as oCRF produced a fourfold potentiation of the peak IR-ACTH response to 132 +/- 11 pg/ml. These ACTH responses were far greater than those previously observed after 30-fold greater doses of oCRF alone. By way of comparison, insulin-induced hypoglycemia caused a peak IR-ACTH of 169 +/- 20 pg/ml. IR-ACTH returned to base line at 60-90 min after AVP alone, whereas the prolonged effect of oCRF was apparent whether it was given alone or in combination with AVP. The mean peak IR-cortisol responses to AVP, oCRF, and AVP given 15 min before oCRF were similar (16.5 +/- 0.9, 16.4 +/- 2.3, and 18.5 +/- 0.8 micrograms/dl, respectively), but the peak IR-cortisol responses to AVP and oCRF given simultaneously and to insulin-induced hypoglycemia were 1.5 and 1.7 times greater, respectively. IR-cortisol returned to base line within 2-3 h after AVP alone, but remained elevated for at least 4 h after oCRF alone or in combination with AVP. These results indicate that AVP acts synergistically with oCRF to release ACTH in man and suggest that AVP may play a physiologic role in modulating the ACTH response mediated by corticotropin-releasing factor.

Adrenocorticotropic Hormone↗

Synthetic ovine corticotropin-releasing hormone: simultaneous release of proopiolipomelanocortin peptides in man.

The response of plasma proopiolipomelanocortin-derived peptide levels to synthetic ovine corticotropin-releasing hormone (CRH) was studied in six normal men. CRH was given as a 30-sec iv injection of 30 micrograms/kg body weight in the late afternoon, and blood samples were drawn for up to 16 h thereafter. Low levels of immunoreactive (IR)-ACTH, IR-beta-endorphin and IR-lipotropins (LPH) were measured before CRH administration. All subjects had prompt, concomitant, biphasic, and prolonged release of all of these proopiolipomelanocortin-derived peptides. The plasma levels of these IR-peptides rose in all subjects by 5 min after CRH, reached a first peak at 10-15 min, fell until 90 min, rose to a second peak at 2-4 h, and then gradually declined over several hours. The molar concentrations of the IR-peptides closely paralleled one another at all times, especially during the first 90 min after CRH administration. Later, IR-LPH increased slightly more and remained slightly higher than did the other IR-peptides, although the difference was not significant. This observation probably reflects the longer plasma disappearance half-life of IR-LPH. The maximum change (mean +/- SEM) in the concentration of these IR-peptides was similar: IR-ACTH, 18.0 +/- 4.0; IR-LPH, 20.5 +/- 4.0; and IR-beta-endorphin, 16.9 +/- 3.2 fmol/ml. The next morning's circadian rise in IR-peptides was blocked, presumably due to negative feedback inhibition of the hypothalamic-pituitary-adrenal axis by the prolonged high plasma cortisol levels stimulated by CRH the previous evening.

Adrenocorticotropic Hormone↗

Ectopic pro-opiolipomelanocortin: sequence of cDNA coding for beta-melanocyte-stimulating hormone and beta-endorphin.

A recombinant bacterial plasmid, pMS1, was constructed that contains 318 nucleotides complementary to a portion of pro-opiolipomelanocortin (proOLMC) messenger RNA from an ectopic adrenocorticotropin-producing tumor. The cloned complementary DNA insert, which contains the sequence that codes for all of the beta-melanocyte-stimulating hormone and beta-endorphin portions of proOLMC, as well as the 3' nontranslated section, is identical to the genomic sequence. Hybridization of tumor proOLMC complementary DNA to RNA subjected to electrophoresis and transferred to a nitrocellulose filter revealed two proOLMC messenger RNA species in the tumor polyadenylated RNA, but only one in pituitary polyadenylated RNA. At least one of the tumor proOLMC messenger RNA's is similar, if not identical, to human pituitary proOLMC messenger RNA.

Amino Acid Sequence↗

Effect of synthetic ovine corticotropin-releasing factor. Dose response of plasma adrenocorticotropin and cortisol.

Synthetic ovine corticotropin-releasing factor (CRF) was administered to normal male volunteer subjects as an intravenous bolus or 30-s infusion. Doses of CRF ranging from 0.001 to 30 micrograms/kg body wt were administered, and plasma immunoreactive (IR)-ACTH and IR-cortisol concentrations were measured. The threshold dose appeared to be 0.01-0.03 micrograms/kg, the half-maximal dose 0.3-1 micrograms/kg, and the maximally effective dose 3-10 micrograms/kg. Basal concentrations of IR-ACTH and IR-cortisol were 14 +/- 7.6 pg/ml (mean +/- SD) and 5.6 +/- 2.2 micrograms/dl, respectively. IR-ACTH rose as early as 2 min after CRF injection, reached peak levels in 10-15 min, and declined slowly thereafter. IR-cortisol rose at 10 min or later and reached peak levels in 30-60 min. At a dose of 30 micrograms/kg, neither IR-ACTH nor IR-cortisol fell from peak levels of 82 +/- 21 pg/ml (mean +/- SE) and 23 +/- 1.4 micrograms/dl, respectively, during the 2-h course of the experiment, indicating that CRF has a sustained effect on ACTH release and/or a prolonged circulating plasma half-life. There was little or no increase in the levels of other anterior pituitary hormones. At doses of 1 microgram/kg and higher, facial flushing, tachycardia, and, in some subjects, a 15-29-mmHg decline in systemic arterial blood pressure were observed, even though blood volume was replaced and the subjects remained supine. These data indicate that synthetic ovine CRF is a very potent and specific ACTH secretagogue in man. Administered with caution until its vasomotor effects are more fully defined, CRF promises to be a safe and very useful investigative, diagnostic, and, possibly, therapeutic agent in man.

Adrenocorticotropic Hormone↗

Effect of synthetic ovine corticotropin-releasing factor: prolonged duration of action and biphasic response of plasma adrenocorticotropin and cortisol.

The duration of the response to synthetic ovine corticotropin-releasing factor (CRF) was studied in 13 healthy male volunteer subjects. Placebo or CRF (0.3, 3, or 30 micrograms/kg BW) was administered as an iv bolus or, in the case of the largest dose, a 30-sec infusion in single blind fashion in the late afternoon. Basal plasma immunoreactive ACTH (IR-ACTH) and IR-cortisol were 10.8 +/- 7.7 pg/ml and 5.0 +/- 1.8 micrograms/dl (mean +/- SD), respectively. IR-ACTH rose rapidly after CRF, reached an initial peak at 15 min, fell rapidly until 1.5 h after CRF, and then either fell more slowly (after the lowest dose) or rose to a second major peak at 2-3 h before falling back to baseline. After 0.3, 3, and 30 micrograms/kg CRF, IR-ACTH remained elevated for 4, 7, and 8 h, respectively. The effect on plasma IR-cortisol was similar, but more prolonged. The magnitude of both peaks of IR-ACTH, the duration of the response, and the area under the curve all appeared dose dependent. The same was true for IR-cortisol, except that the first peak height was similar after all three doses. The duration of CRF's action is probably due to its long circulating half-life. The biphasic response curve may reflect initial secretion of a readily releasable pool of ACTH, followed by later secretion of a second pool of newly synthesized and/or matured peptide. The next morning's normal circadian rise in both IR-ACTH and IR-cortisol was delayed and diminished after 3 micrograms/kg CRF; there was no increase in IR-ACTH after 30 micrograms/kg CRF, and the IR-cortisol level was diminished. Inhibition of the normal circadian rise may reflect inhibition of ACTH secretion by the sustained high plasma cortisol levels.

Adrenocorticotropic Hormone↗

Plasma distribution, disappearance half-time, metabolic clearance rate, and degradation of synthetic ovine corticotropin-releasing factor in man.

The plasma distribution, disappearance half-time, MCR, and degradation of corticotropin-releasing factor (CRF) were studied in normal men who received a pulse injection of synthetic ovine CRF (oCRF). Graded iv doses of oCRF produced a linear increase in plasma immunoreactive oCRF (IR-oCRF). The calculated total plasma content of IR-oCRF 2 min after injection represented 41.7 +/- 2.5% (mean +/- SE) of the injected dose. The disappearance of IR-oCRF from plasma was characterized by a biexponential decay curve, with initial distribution and subsequent metabolic t 1/2 values of 6.1 +/- 0.5 and 55 +/- 3.8 min (mean +/- SE), respectively. In two subjects who were studied for 14-16 h after being given the largest dose of oCRF, there was third phase of disappearance, with a t 1/2 of 198 +/- 54 min. The MCR of IR-oCRF was 2.4 +/- 0.2 ml/min . kg (146 +/- 12 l/m2 . day) and was relatively constant over a 3000-fold dose range. The volume of distribution of IR-oCRF was 6.2 +/- 0.6 liters. The plasma IR-oCRF component, examined at increasing intervals after injection, was indistinguishable from the injected oCRF in that its apparent molecular size had not been altered, nor had its biological activity been attenuated. The continued circulation of apparently intact, biologically active oCRF for at least 90 min after injection was associated with sustained release of ACTH into the plasma. Thus, the clearance of oCRF from circulating human plasma is prolonged and appears to be responsible for the sustained release of ACTH that occurs after injection of this hormone-releasing factor.

Adrenocorticotropic Hormone↗

Pituitary microadenomas causing Cushing's disease respond to corticotropin-releasing factor.

Corticotropin-releasing factor (CRF) was administered as an iv bolus to two young women with mild Cushing's disease shortly before and one week after successful transsphenoidal microadenomectomy. The dose of CRF (1 microgram/kg body weight) had previously been shown to stimulate increased plasma ACTH and cortisol in normal subjects. In the first patient, prior to surgery, there were brisk increases in ACTH and cortisol that exceeded those observed in normal subjects. ACTH rose by 2 min and reached a peak between 15-30 min. Cortisol increased by 10 min and peaked between 45-60 min. After surgery, at a time when plasma cortisol was maintained at similar levels with exogenous hydrocortisone, there was no plasma ACTH or LH, TSH and prolactin increased after administration of LRH and TRH, and GH increased in response to insulin-induced hypoglycemia. The second patient had higher basal plasma ACTH and cortisol than the first patient. CRF-induced increments in ACTH and cortisol were much less, but the time course was similar and peak levels attained were still higher than those in normal subjects. After surgery, at a time when plasma cortisol was maintained at a much lower level with exogenous hydrocortisone, there was no plasma ACTH or cortisol response. She had mild, transient diabetes insipidus. Basal levels of all other anterior pituitary hormones were normal. These results demonstrate that two microadenomas causing Cushing's disease were responsive to CRF in situ and suggest that CRF may be involved in the etiology and/or the responses to changes in plasma glucocorticoid concentrations observed in patients with Cushing's disease.

Adenoma↗

Mevalonic acid analogs as inhibitors of cholesterol biosynthesis.

A series of 20 mevalonic acid analogs was synthesized and tested for their ability to inhibit cholesterol biosynthesis from [2-14C]-mevalonate in rat liver homogenates. Removal of the 5-hydroxyl group from mevalonic acid produced an active inhibitor, 3-hydroxy-3-methylpentanoic acid. Removal of the 3-hydroxyl group, addition of an aromatic group in the 3-position, or insertion of a double bond reduced inhibitory activity. Compounds with an aromatic group or halide on the 5-position were active inhibitors. The most active inhibitor was 5-phenylpentanoic acid, with 50% inhibition at 0.064 mM.

Animals↗