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Biomedical subjects

C Kirkegaard

Publications and source records attributed to C Kirkegaard.

At least 73 records · Page 4Linked to original sources

Serum 3'-monoiodothyronine levels in normal subjects and in patients with thyroid and non-thyroid disease.

Serum 3'monoiodothyronine (3'-T1) levels were estimated by means of a specific radioimmunoassay (RIA) preceded by an ethanol extraction. The recovery of 3'T1 was in mean (+/-SEM) 110 +/- 9%, and the lower detection limit was 23 pmol/l. Serum levels of 3'T1 in 34 euthyroid healthy subjects were (median (range)) 55 pmol/l (less than 23 - 168 pmol/l), in 13 hyperthyroid patients 133 pmol/l (70 - 265 pmol/l) (P less than 0.01) and in 13 hypothyroid patients less than 23 pmol/l (less than 23 - 68 pmol/l) (P less than 0.01). In 11 patients with chronic renal failure serum 3'-T1 levels were highly increased 285 pmol/l (115 - 1538 pmol/l) (P less than 0.01) and correlated inversely to creatinine clearance (R = -0.68, P less than 0.05). In patients with liver cirrhosis serum 3'-T1 levels were unaffected, whereas in 19 patients with endogenous depression studied before and after recovery from the depression serum levels decreased from 70 pmol/l (less than 23 - 248 pmol/l) to 30 pmol/l (less than 23 - 95 pmol/l) (P less than 0.01). Administration of propranolol 40 mg b.i.d. for 2 weeks did not affect serum 3'-T1 levels. The study shows that 3'-T1 is present in serum from euthyroid man and varies with thyroid function. Further, it is suggested that 3'-T1 in contrast to other iodothyronines primarily is eliminated by the kidneys.

Adult↗

Prognostic value of thyrotrophin binding inhibiting immunoglobulins (TBII) in longterm antithyroid treatment, 131I therapy given in combination with carbimazole and in euthyroid ophthalmopathy.

Thyrotrophin binding inhibiting immunoglobulins (TBII) were measured in 27 patients with Graves' disease during and after longterm antithyroid treatment. The median observation period after treatment was 24 months. During the first 6 months of treatment the TBII index increased significantly in both the relapse and the remission group, but during the rest of the treatment and the observation no further change was observed. Patients with a TBII index below 0.35 at drug withdrawal (n = 8) all relapsed and patients with values above 1.00 (n = 5) all stayed in remission. There was a significant correlation between the TBII index at drug withdrawal and the time elapsed before a relapse. Graves' disease was treated with 131I in combination with carbimazole in 22 patients. The TBII index of these patients decreased after 131I and increased towards normal values during longterm observation of median 33 months. Of 4 patients with euthyroid ophthalmopathy one was TBII positive. This patient became overt hyperthyroid after an observation period of two years of prednisone treatment. It is concluded, that the TBII index is of some prognostic value after longterm antithyroid treatment, but is of no clinical importance following 131I treatment.

Adult↗

Dissociation of TSH adrenocortical disturbances in endogenous depression.

To evaluate a possible interaction between the pituitary-thyroid axis and the pituitary-adrenal axis, we measured serum levels of thyrotropin (thyroid stimulating hormone; TSH), the maximal TSH response (delta max TSH) to thyrotropin releasing hormone (TRH), serum and cerebrospinal fluid (CSF) levels of cortisol, urinary excretion of cortisol, and the plasma levels of adrenocorticotropic hormone (ACTH) in 20 patients with endogenous depression before and after electroconvulsive therapy. No significant correlations were found between serum TSH or delta max TSH on the one hand, and serum and CSF cortisol or urinary excretion of cortisol on the other hand. A direct correlation was found between serum cortisol and plasma ACTH.

Adrenocorticotropic Hormone↗

Effect of repeated sleep deprivation on clinical symptoms and the TRH test in endogenous depression.

Twenty-eight patients with endogenous depression were treated with repeated total sleep deprivation (TSD) as the only treatment. In eight patients complete remission was obtained, but an early relapse occurred in five, and after 6 months only three patients (11%) remained in remission. The remaining group of 20 patients with no or only a partial response to TSD also had a significant reduction of the score on the Hamilton Rating Scale (median 23 versus 17, P less than 0.01). A thyrotropin-releasing hormone (TRH) stimulating test was performed before and after TSD. According to previous studies an increase of the maximal response in serum thyrotropin (TSH) to TRH (delta delta max TSH greater than 2.0 microU/ml), after TSD was taken as a predictor of a favourable long-term outcome. Under blind conditions a correct prognosis was made in all patients (n = 8) from the group of responders. By comparison, only two of the 20 patients from the nonresponding group had a delta delta max TSH greater than 2.0 microU/ml after TSD.

Adult↗

Hepatic extraction and renal production of 3,3'-diiodothyronine and 3',5'-diiodothyronine in man.

The sequential deiodination of thyroxine (T4) gives rise to several iodothyronine analogs including 3,3'-diiodothyronine (3,3'-T2) and 3',5'-diiodothyronine (3',5'-T2). In vitro animal studies suggest that the liver and the kidneys are the main sites of both formation and degradation of 3,3'-T2 and 3',5'-T2. To determine the metabolism of 3,3'-T2 and 3',5'-T2 in human liver and kidneys plasma samples were obtained from (a) a brachial artery and a hepatic vein in 20 normal subjects, and from (b) a femoral artery and a renal vein in 11 normal subjects. Further, the hepatic plasma flow (a) and the renal plasma flow (b) were determined. Both plasma 3,3'-T2 and 3',5'-T2 levels were reduced in the hepatic venous blood as compared to arterial values (1.09 +/- 0.40 vs. 1.75 +/- 0.74 ng/dl (P < 0.02)) (mean +/- 1 SD). This resulted in a hepatic extraction of both, 3,3'-T2 and 3',5'-T2, which averaged 8.2 and 5.2 microgram/d, respectively. Plasma 3,3'-T2 as well as 3'5'-T2 levels were higher in the renal vein as compared to arterial values, 1.49 +/- 0.42 vs. 1.39 +/- 0.45 ng/dl (P < 0.05) and 2.35 +/- 0.83 vs. 2.09 +/- 0.81 ng/dl (P < 0.05), respectively. This positive venoarterial difference implies a net production of 3,3'-T2 and 3',5'-T2 in the kidneys of 1.2 and 3.0 microgram/d, respectively. It is concluded that the liver is an important site of 3,3'-T2 and 3',5'-T2 extraction in normal man. In contrast, the renal production of 3,3'-T2 as well as 3'5'-T2 exceeds the degradation and urinary excretion.

Adolescent↗

Serum T4, T3 and reverse T3 during treatment with propranolol in hyperthyroidism, L-T4 treated myxedema and in normal man.

Serum concentrations of T4, T3 and reverse T3 were studied in two hyperthyroid groups (n = 13 and 11), in a group of normals (n = 9) and in a group of L-T4 substituted patients (n = 7) with severe pretreatment hypothyroidism. Serum T4 did not change except in one of the hyperthyroid groups change to in which a slight decrease was found. In all groups a significant fall in serum T3 and a significant rise in serum reverse T3 were found. An expected increase in serum TSH in the normal and in the L-T4 substituted groups could not be demonstrated.

Adult↗

The influence of propranolol on the extrathyroidal metabolism of 3,3',5'-triiodothyronine (reverse T3).

The effect of propranolol 80 mg daily on the metabolism of 3,3',5'-triiodothyronine (reverse T3, rT3), 3,3',5'-triiodothyronine (T3) and thyroxine (T4) was studied by means of a non compartmental kinetic method in seven females with severe pretreatment hypothyroidism. The patients were maintained euthyroid on a constant L-T4 replacement therapy. Serum rT3 levels increased significantly during propranolol (p less than 0.02). This increase was explained by a decrease in metabolic clearance rate (MCR) (p less than 0.02), since the conversion rate from T4 and the distribution volume of rT3 were unchanged. By contrast the decreased serum levels of T3 were due to a significant decreased conversion from T4 (p less than 0.02) in spite of a decreased MCR. The results are compatible with the assumption of two different monodeiodinating enzymes, a 5-deiodinase responsible for the diodination of T4 to rT3 and a 5'-deiodinase responsible for the deiodination of T4 to T3.

Female↗

Subclinical hypothyroidism in Addison's disease.

Fourteen patients with Idiopathic Addison's disease (IAD) were studied in order to detect a possible subclinical hypothyroid state. All were clinically euthyroid with normal serum thyroxine (T4) and serum 3,5',5'-triiodothyronine (T3). Eleven had circulating thyroid microsomal antibodies in blood. The mean basal serum TSH was significantly higher than that of the control group but only three patients had values above the upper normal range. The mean value of serum T4 was decreased as compared to that of the normal persons, while serum 3,3',5'-triiodothyronine was elevated. 7.5 mU bovine thyrotrophin per kilogram body weight injected intravenously caused a rise in serum T3 not different from the response in normals. However, as well increasing serum TSH as increasing microsomal antibody titer correlated significantly to decreasing thyroidal release of T3. Our results suggest that clinically euthyroid patients suffering from IAD might have a beginning thyroidal insufficiency because of a progressive immunological damage of the thyroid.

Addison Disease↗

Thyrotrophin-releasing hormone (TRH) stimulation test in manic-depressive illness.

The thyrotrophin (TSH) response to thyrotrophin-releasing hormone (TRH 200 microgram intravenously was studied in 19 patients with unipolar depression, 12 with bipolar depression, 14 with mania, and 5 with mixed manic-depressive illness. The TSH responses were decreased in all of these affective disorders compared to those found in 10 patients with reactive depression, 5 with reactive paranoid psychosis, 14 with neurotic depression, and 60 controls. The decrease of the TSH response in manics could not be accounted for by the effects of neuroleptic drugs. The TSH response in the groups with reactive depression, reactive paranoid psychosis, and neurotic depression, respectively, did not differ significantly from that found in controls. With the exception of a decrease in serum T3 level and free T3 index in the manics, no significant differences in serum T3 level or in free T3 and T4 indexes were found between the groups. Changes found in serum T4 level were due to changes in the thyroxine-binding proteins.

Adjustment Disorders↗