Whither medicine?
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Biomedical subjects
Publications and source records attributed to V Cameron.
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The role of the brain opioid system in the control of hypothalamic-pituitary-adrenal activity was studied in 10 conscious sheep with an indwelling cannula in a cerebral lateral ventricle. On separate days, sheep received infusions of artificial CSF (control) and the opiate antagonist, naloxone (100 micrograms/hr) before and during acute moderate hemorrhage (15 ml/kg over 10 min). Infusion of naloxone before hemorrhage raised plasma ACTH and resulted in a significant increase in cortisol compared to the control infusion. In contrast, ACTH and cortisol responses to hemorrhage tended to be blunted by central naloxone infusion. The responses of vasopressin, aldosterone and the catecholamines remained unaffected by naloxone. The fall in blood pressure and the rise in heart rate accompanying hemorrhage were likewise unaltered. These results suggest that brain opioid peptides have an inhibitory effect on basal ACTH secretion but do not play a major role in modulating the hemodynamic or pituitary-adrenal responses to acute moderate hemorrhage in conscious sheep.
Metoclopramide, a competitive dopamine antagonist, stimulates aldosterone in man and monkey without affecting cortisol secretion. In sheep, metoclopramide also stimulates aldosterone but ist action on adrenocortical secretion is more controversial. To clarify the action of metoclopramide in conscious sheep, the response of plasma aldosterone, cortisol, angiotensin II and potassium were studied after 0.16 and 0.64 mg/kg metoclopramide, with and without pretreatment with dexamethasone. The effect of sodium status on the response was also studied by repeating the experiments after 7 days of dietary sodium restriction. In the absence of dexamethasone, plasma aldosterone was significantly increased by metoclopramide in both sodium-replete and restricted sheep. In sodium-replete sheep, plasma cortisol was also increased by 0.64 mg/kg, and by both doses when salt-restricted. However all cortisol responses were completely suppressed by dexamethasone pretreatment. Dexamethasone also suppressed the aldosterone response to metoclopramide in sodium-replete but not in sodium-restricted sheep where significant responses of aldosterone to both doses of metoclopramide still occurred without changes in plasma angiotensin II or potassium. While a nonspecific stress effect of metoclopramide can contribute to the aldosterone response, these results show that the sheep's adrenal glomerulosa is capable of responding to metoclopramide without change in ACTH, angiotensin or potassium.
When levels of plasma angiotensin converting activity (ACE) were measured in 11 sheep undergoing a 15 ml/kg hemorrhage, levels before hemorrhage (5.7 +/- 0.5 nmol/min/ml) fell significantly at 120 min (3.7 +/- 0.6 nmol/min/ml) and 150 min (3.4 +/- 0.5 nmol/min/ml) after hemorrhage (P less than 0.01). Plasma ACE activity remained constant in ten control sheep studied under the same conditions but not hemorrhaged. The time course of the fall in plasma ACE activity was then studied in an additional four sheep undergoing 15 ml/kg hemorrhage, which reduced mean arterial pressure by 25% at 10 min after hemorrhage. Plasma ACE activity was variable for 60 min post-hemorrhage, but then fell to levels significantly lower than baseline values at 150 min (P less than 0.05). The decrease in plasma ACE activity associated with hemorrhage was small when compared to the effect of an IV infusion of the ACE inhibitor, Captopril (SQ14225, 28 micrograms/min for 3 hr), which reduced plasma ACE activity in the same sheep to almost undetectable levels. These results show that hemorrhage significantly reduces plasma ACE activity in sheep. However, this effect is small and is unlikely to affect the production of plasma AII following acute hemorrhage.
Acute moderate hemorrhage (15 ml/kg withdrawn over 10 min) was used to study stress hormone changes in blood and cerebrospinal fluid (CSF) of conscious sheep with chronic indwelling intracerebroventricular catheters. Mean plasma arginine vasopressin (AVP) and ACTH rose 150- and 14-fold, respectively, above basal values to peak levels at 20 min after onset of hemorrhage. A smaller (4- to 5-fold) rise occurred in plasma angiotensin II (AII) to peak levels at 10 min. The corticosteroid response (cortisol and aldosterone) occurred later (peak at 45 min) and was consistent with the dependence of these steroids on plasma ACTH and AII changes. Increases in plasma epinephrine and norepinephrine were small and transient. Compared to changes in plasma, changes in CSF hormone levels after hemorrhage were small and independent of plasma concentrations. Mean CSF AVP increased to peak levels at 15 min whereas rises in CSF ACTH, AII-like immunoreactivity, and cortisol were slower and delayed in comparison with the patterns observed in plasma. Despite evidence of increased sympathetic activity, and rise in plasma catecholamines, CSF epinephrine fell after hemorrhage and CSF norepinephrine did not change. These results show that in conscious sheep rapid and major increases in plasma AVP, ACTH, and AII follow acute moderate hemorrhage. Concomitant changes in CSF hormone levels are small and delayed. With the possible exception of AVP it appears unlikely that the acute systemic hormone response to hemorrhage is determined by hormone changes in CSF.
A secondary phenotype of the op3 mutant of RNA bacteriophage f2 is the absence of translational repression of the phage replicase gene by the phage coat protein. We have synthesized RNA fragments corresponding to the site of translational repression for both the wild type and the op3 mutant. Using a quantitative assay, we show that the affinity of the closely related R17 coat protein for the mutant and wild type RNA fragments is the same. In addition, we find that the op3 and R17 coat proteins bind to the wild type RNA fragment with essentially identical dissociation constants. Thus, the altered regulation of replicase protein synthesis in the op3 mutant does not appear to be due simply to a reduced affinity of the translational repressor for its target site.
The interaction between phage R17 coat protein and its RNA binding site for translational repression was studied as an example of a sequence-specific RNA--protein interaction. Nuclease protection and selection experiments define the binding site to about 20 contiguous nucleotides which form a hairpin. A nitrocellulose filter retention assay is used to show that the binding between the coat protein and a synthetic 21-nucleotide RNA fragment conforms to a simple bimolecular reaction. Unit stoichiometry and a Kd of about 1 nM are obtained at 2 degrees C in buffer containing 0.19 M salt. The interaction is highly sequence specific since a variety of RNAs failed to compete with the 21-nucleotide fragment for coat protein binding.
The 41-residue ovine corticotropin releasing factor (CRF) was administered iv and intracerebroventricularly (icv) to merino sheep. A significant rise in plasma ACTH, beta-lipotropin (beta LPH) and cortisol was demonstrated after the administration of 200 micrograms, iv. A highly significant correlation between the increments in plasma ACTH and beta LPH was observed. The plasma ACTH rise was evident within 5 min and was abolished by the prior administration of 0.4-4.0 mg dexamethasone. No significant rise in plasma GH, LH, PRL, insulin, glucagon, pancreatic polypeptide, met-enkephalin, angiotensin II, aldosterone, or vasopressin could be demonstrated. Although smaller doses of CRF (50 ng to 5 micrograms) were effective when given icv, the ACTH response was more delayed. It is concluded that CRF stimulates a rapid increase in the secretion of ACTH and beta LPH in sheep. Suppression of this response by dexamethasone indicates that glucocorticoids are capable of acting on the pituitary to inhibit the ACTH response to CRF. The delayed response when CRF is given icv may be due to diffusion. The action of CRF appears to be relatively specific, in that the plasma concentrations of the other pancreatic, pituitary, and adrenal hormones measured were not affected.
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Polynucleotide kinase from E. coli infected with the PseT 1 mutant of bacteriophage T4 has been isolated. The PseT 1 enzyme purifies similarly to normal polynucleotide kinase and effectively transfers the gamma phosphate of ATP to the 5' terminal hydroxyl of DNA and RNA. The PseT 1 and normal enzymes require similar magnesium ion concentrations, have the same pH optima and are both inhibited by inorganic phosphate. However, the PseT 1 enzyme is totally lacking the 3' phosphatase activity associated with normal polynucleotide kinase. The PseT 1 enzyme is a useful tool for the preparation of oligonucleotides with 3' and 5' terminal phosphates for use as susbstrates for RNA ligase.
The purification of T4 polynucleotide kinase results in the copurification of an activity which will specifically remove the 3'-terminal phosphate from a variety of deoxyribonucleotides and ribonucleotides in the absence of ATP. This phosphatase activity requires magnesium, has a pH optiumum of 6.0, and is more active with deoxyribonucleotides than ribonucleotides. T4 polynucleotide kinase and the 3'-phosphatase activity copurify by gradient elution column chromatography on DEAE-cellulose, phosphocellulose, and hydroxylapatite. The two activities are included in and comigrate on Sephadex G-200. Polyacrylamide gel electrophoresis at PH 9.2 results in conigration of the two activities together with the major protein band. The two activities respond in parallel to heat inactivation at 35 degrees C and ATP, a substrate for the kinase only, protects both activities from heat inactivation. It is therefore suggested that the two activities are functions of the same protein molecule.
T4 induced RNA ligase will join equimolar concentrations of two oligoribonucleotides, (Ap)3C and p(Up) 5, to form a single product, (Ap)3Cp(Up) 5, in high yield. The presence of the 3' phosphate on p(Up)5 prevents the oligomer from adding to itself. The pH optimum of the reaction is about 7.5, but less of the undesirable adenylated intermediate, App(Up) 5, forms at pH 8.2. The reaction rate is a linear function of oligomer concentration from 3 micronM to 0.6 mM. The data suggest that T4 RNA ligase will be a useful enzyme for the synthesis of oligomers of defined sequence.
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