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Seasonal effects of tropical climate on shaded and nonshaded cows as measured by rectal temperature, adrenal cortex hormones, thyroid hormone, and milk production.

Rectal temperatures and hormone concentrations were monitored at intervals of 2 to 3 weeks, and milk, milk fat, and California mastitis test scores at intervals of 1 week in five shaded and in four nonshaded early lactation cows. Measurements were taken from September to December in the mildly heat stressing climate of Oahu, Hawaii. The daily ambient temperature flux ranged from 22 C to 29 C in September to 20 C to 25 C in December. Average daily temperature-humidity index (THI) values were 75 to 70 for September and December, respectively. Average daily THI values were correlated with rectal temperatures in nonshaded cows and were negatively correlated with plasma adrenal cortex hormones (corticoids) in shaded cows, plasma thyroid hormone in shaded and nonshaded cows, and with milk production in nonshaded cows. Estimated milk production decline per unit increase in THI was 0.32 kg. Nonshaded cows had higher rectal temperatures, a trend for lower plasma corticoids, produced less milk and milk fat, and had higher California mastitis test scores. Shaded cows maintained a higher fat percentage at THI above 74. Average plasma thyroid hormone values were not different between treatment groups. Both groups failed to attain normal rectal temperatures at night. Afternoon rectal temperatures were more highly correlated with the rectal temperature with which the cow started the day than they were with the THI of the day itself.

Adrenal Cortex Hormones

The action of thyroid hormone.

Thyroid hormone affects both developmental and metabolic processes. It has a relatively specific effect on the synthesis of a number of enzymes and other proteins. The fundamental cellular mechanism of action seems to be at the level of genetic regulation. It involves interaction with nuclear receptors, leading to an activation of the protein synthesizing machinery. How binding to receptors is coupled to genetic activation is completely unknown. At least part of the metabolic effects of thyroid hormone could be mediated through an interaction with mitochondria and cell membrane, and with some enzymatic systems such as adenylcyclase.

Animals

Corticosteroids and thyroid function. Different effects on plasma volume, thyroid hormones and thyroid hormone-binding proteins after oral and intravenous administration.

The influence of glucocorticosteroids on plasma volume, thyroid hormones and thyroid hormone-binding proteins was studied in 17 patients. Plasma volume was not affected either by i.v. beta-methasone (6 mg daily) or by oral prednisolone (45--180 mg daily) given for 5 days. The serum T3 concentration decreased while rT3 increased independently of the route of administration of corticosteroids. Serum T4 concentration decreased after i.v. but not after oral administration of corticosteroids. Oral steroids as compared to i.v. increased the 125I-triiodothyronine uptake test value. The serum TBG concentration decreased independently of the route of administration, while the serum TBPA concentration increased after oral corticosteroids but was unchanged after i.v. treatment. The serum TSH concentration was slightly reduced. About half of the patients were given both corticosteroids and nutrition i.v. and the other half were given all treatment by mouth. The part played by the route of administration of corticosteroids and calories, respectively, cannot be evaluated at present but these factors seem to be of importance.

Administration, Oral

Abnormal gamma globulin binding of thyroid hormones.

Thyroid hormone levels were studied in a thyrotoxic patient, who was treated with propylthiouracil. He had heavily increased triiodothyronine concentrations, measured by radioimmunoassay, in spite of only mild clinical symptoms of thyrotoxicosis. A moderately increased serum triiodothyronine concentration was observed in another patient, who was euthyroid and who had recently recovered from subacute thyroiditis. By gel electrophoresis and precipitation tests with human anti-IgG and anti-IgA, a binding to the gamma globulins of both triiodothyronine and thyroxine was detected in patient 1, and of triiodothyronine in patient 2. Such abnormal binding may result in serious errors in the determination of thyroid hormone concentration by radioimmunoassay.

Adult

Effect of adrenal hormones on thyroid secretion and thyroid hormones on adrenal secretion in the sheep.

1. Previous work has shown that after stressful stimuli, sheep initially secrete increased amounts of thyroid hormone, at a time when adrenal secretion is also elevated. 2. This study was designed to evaluate (a) any short-term activation or inhibition of thyroid secretion by exogenous cortisol or ACTH administered in quantities comparable to those secreted after stress in sheep and (b) any short-term effect that exogenous thyroxine or triiodothyronine may have on the concentration of plasma cortisol in the sheep. 3. Thyroid activity was measured by determination of plasma protein bound 125I (PB125I) and total 125I in thyroid vein and mixed venous (jugular) blood. Plasma cortisol and thyroxine concentrations were measured by a competitive protein-binding assay at intervals for up to 5 hr after commencement of the experiment. 4. No evidence of an activation of thyroid secretion was found during cortisol or ACTH infusion, as monitored by thyroid vein PB125I. Similarly there was no evidence of any inhibition of thyroid function, as measured by continued secretion of thyroid hormones into thyroid vein blood. 5. No effect on plasma cortisol concentration due to thyroid hormone treatment was observed. 6. It was concluded that (a) elevated circulating corticosteroids in physiological concentrations have no short-term effects on thyroid activity in the sheep and (b) the short-term alterations in thyroid and adrenal cortical secretion observed during stress in the sheep could not be attributed to direct interaction of elevated thyroid hormone concentrations with adrenal cortical secretion.

Adrenal Glands

Serum concentrations of thyrotropin, thyroid hormones and thyroid hormone-binding proteins during acute and recovery stages of idiopathic respiratory distress syndrome.

A total number of 27 premature infants with idiopathic respiratory distress syndrome (IRDS) and 52 healthy controls with comparable gestational age and body weights were studied during the first month of life. In infants with IRDS a reduced thyrotropin (TSH) response to birth was suggested, as serum TSH was lower in IRDS patients than in controls during the first two days of life. Low serum concentrations of thyroid hormones were found in the acute stage of IRDS reaching minimal values by day 3--5. After that period an increase in thyroid hormone levels occurred. The serum T2 increased to the level of healthy prematures by day 6--10, whereas the serum T4 increased to normal levels by day 21--30. Serum concentrations of thyroxine-binding globulin (TBG) were significantly lower in IRDS patients than in healthy controls; a gradual increase to normal levels occurred during recovery. Serum prealbumin (TBPA) levels in IRDS infants increased rapidly after birth and exceeded levels of healthy infants. Serum albumin values were not significantly different in the two groups of infants. The serum T4/TBG ratios were low during recovery from IRDS.

Humans

Changes in serum concentrations of thyroid hormones and thyroid hormone-binding proteins during early infancy. Studies in healthy fullterm, small-for-gestational age and preterm infants aged 7 to 240 days.

Serum concentrations of thyrotropin (TSH), thyroxine (T4), triiodothyronine (T3), thyroxine-binding globulin (TBG), prealbumin (TBPA) and albumin (Alb) were determined in 492 blood samples from 127 fullterm (FT), 91 small-for-gestational age (SGA) and 88 preterm (PT) healthy infants aged 7 to 240 days. Serum T4 decreased about 20% during the first month of life. In infants aged 7--49 days, serum T4 concentrations were significantly lower in SGA than in FT infants, and even lower values were found in PT infants. Serum T3 increased 50--70% reaching maximal values by 50--79 days of life. Serum T3 levels were higher in FT than in SGA infants throughout the observation period. In PT infants serum T3 increased from low values to levels which exceeded those of SGA and FT infants by 120--240 days of life. Serum TSH level did not change with age and was less than or equal to 5 mU/l in all infants. Serum TBG values were high compared to normal adult values and did not change significantly with age. Comparable serum TBG values were found in FT, SGA and PT infants. Serum TBPA increased with age. Serum TBPA increased gradually in FT infants. In SGA infants serum TBPA increased from low values to levels which by 120--240 days of life exceeded those of PT and FT infants. In PT infants a decrease in serum TBPA appeared before the rise commenced. Serum Alb increased gradually in FT, SGA and PT infants during the observation period. Serum Alb in PT infants aged 30--119 days was lower than those in FT infants with similar ages. These physiological changes in serum concentrations of thyroid hormones and hormone-binding proteins during early infancy should be considered when interpreting thyroid function tests in infants with various maturity.

Age Factors

A comparison of the effects of the calcitonins, steroid hormones and thyroid hormones on the response of bone to parathyroid hormone in tissue culture.

A bone culture system was used to compare the effects of several hormones on the response of 5-day-old mouse calvaria to parathyroid hormone (PTH). The results showed that salmon calcitonin was almost 10-5 times more active than any other hormone in preventing the PTH-induced release of calcium and caused a dose-related inhibition of calcium release over a range of 0-2-200 milli MRC units/culture. A high dose of calcitonin (200 milli MRC units) caused a net accretion of calcium in the absence of PTH. Progesterone and testosterone were more active than the naturally occurring oestrogens although a synthetic oestrogen (stillboestrol diphosphate) had approximately the same potency. High concentrations of these hormones caused a net accretion of calcium whether or not PTH was present. Cortisol was only effective at high doses, as was the steroid precursor cholesterol. In the present culture system the thyroid hormones (triiodothyronine and thyroxine) inhibited the action of PTH. It was concluded that these agents acted in a similar fashion to the oestrogens. That is, they prevented the accumulation of citric acid induced by PTH by reducing the rate of glycolysis. None of the hormones affected the inhibition of citrate oxidation caused by PTH. The results also showed that, whilst these hormones inhibited PTH-mediated bone resorption, they had an action on bone independent of PTH. Experiments with clomiphene citrate failed to demonstrate an oestrogen receptor in bone.

Animals

Thyrotropin-releasing hormone and thyroid hormones in amniotic fluid.

Immunoassayable TRH (iTRH) was measured in 50 amniotic fluid specimens with a mean concentration of 207 +/- 26 (SE) pg/ml. This iTRH demonstrates parallelism with the standard curve for synthetic TRH. With increasing gestational age there is an increase in iTRH levels in amniotic fluid with a decrease in 3,3',5'-triiodothyronine levels (rT3), while thyroxine levels (T4) remain unaltered. Preliminary data suggest that iTRH levels in amniotic fluid that are less than 150 pg/ml after 32 weeks of gestation may correlate well with low Apgar scores at birth. There was no correlation of rT3 or T4 amniotic fluid levels with the Apgar scores.

Amniotic Fluid

Inhibition of thyroidal cyclic AMP-dependent protein kinase by thyroid hormone.

Bovine thyroid cyclic AMP-dependent protein kinase was purified by DEAE-Sephadex and Sephadex G-200 chromatography. This preparation showed a 240-fold increase in specific activity over the initial 20,000 x g supernatant with histone as substrate and 1 micronM cyclic AMP in the assay mixture. In the presence of 2.5 X 10(-5)M L-triiodothyronine (T3), protein kinase activity was significantly reduced; 50% inhibition was achieved at 1 X 10(-4) M. Tests of diverse thyroid hormone analogs showed that T3 and its derivatives were more potent inhibitors than T4 and its derivatives which, in turn, were more potent than thyronine or diiodothyronine. Mono- and diiodotyrosine, tyrosine, and iodide were without effect. Triiodothyronine did not inhibit kidney, spleen, or lung protein kinase activity. The magnitude of the inhibition was the same whether or not cyclic AMP (1 micronM) was present in the incubation mixture, suggesting an effect on the catalytic, rather than the regulatory subunit of the enzyme. The inhibition of protein kinase by thyroid hormone was not influenced by Mg++ concentration but was overcome in a competitive manner by increasing ATP concentration. Increasing the histone concentration did not modify the inhibition. Although these studies suggest a novel cellular control mechanism, the high thyroid hormone concentrations required and the lack of concordance between inhibitory effects and biologic activity of the analogs tested precludes assumption of physiologic relevance.

Animals

Effects of excess iodide and other anions on thyroid hormone secretion in normal or hypophysectomized rats treated with graded doses of thyroid hormone.

In order to obtain further information about the stimulatory action of excess iodide on thyroid hormone secretion in thyroxine (T4)-treated rats, experiments were performed in hypophysectomized rats, or rats treated with graded doses of T4 or triiodothyronine (T3).T3 as well as T4 played a permissive role in the production of the iodide effect in normal animals, but T3 was more effective than T4. Excess iodide stimulated thyroid hormone secretion in hypophysectomized animals, this finding being compatible with the hypothesis that, by inhibiting TSH secretion, T3 and T4 produced a condition in which excess iodide stimulated thyroid hormone secretion in intact rats. However, T4 played an additional role in thyroid hormone secretion by acting directly on the thyroid. In hypophysectomized animals, small doses of T4 stimulated thyroid hormone secretion, and this action was additive to that of excess iodide, whereas large doses of T4 were inhibitory and reduced the effectiveness of excess iodide. The stimulatory action on thyroid hormone secretion was specific for iodide and was not shared by other anions. The action of excess iodide was blocked by methimazole. We suggest that excess iodide stimulates thyroid hormone secretion by increasing intrathyroidal concentrations of cyclic AMP in the absence of TSH, and that this increase in cyclic AMP concentration is blocked by methimazole.

Animals

Immunohistochemical localization of thyroid hormone in rat thyroid gland.

Direct and indirect immunofluorescence techniques were used to localize the thyroid hormones triidothyronine (T3) and thyroxine (T4) in adult rat thyroid gland. Optimum dilutions of the antisera were established and four tissue fixatives were investigated for usefulness in this technique. Use of antibodies specific for either T3 or T4 resulted in brilliant fluorescence in the colloid pools and apical cytoplasm of follicular cells. In all cases, the adjacent parathyroid gland was devoid of fluorescence. This report demonstrates that these dipeptide hormones can be localized by using immunofluorescence techniques.

Animals

[TSH state after thyroid hormone deprivation in athyrotic thyroid cancer patients (author's transl)].

The duration of thyroid hormone deprivation necessary on the one hand to achieve a sufficiently high endogenous TSH level for the identification of 131I-storing metastases or local relapses, and on the other hand to keep the consequences of thyroid hormone deprivation as low as possible, was determined in 111 athyrotic patients with thyroid carcinoma by means of the basal TSH level or a TRH stimulation test. From the first follow-up examination, a T3 deprivation of 8 days is to be recommended. Low basal TSH levels and marked stimulation in the TRH test should be sufficient cause to prolong the T3 deprivation to 10 days with further examinations. After a longterm suppression of athyrotic patients with thyroid hormone, a decrease in the TSH rise was observed in the course of 2 years, after appropriate interruption of the substitution.

Female

Effects of thyrotropin and thyroid hormones in vivo on thyroid responsiveness to thyrotropin in vitro.

The thyroid gland of rats fed propylthiouracil is known to be unresponsive in vitro to thyrotropin; to investigate further the underlying mechanism groups of rats were variously treated with propylthiouracil and thyroid hormone or subjected to hypophysectomy. In vitro responsiveness of the thyroids was tested by measuring an increase in the concentration of c AMP when thyrotropin or prostaglandin E1 was added to the medium. Results showed that responsiveness to thyrotropin partially returned with rats fed prophylthiouracil and hypophysectomized 5, but not 2, days before death; hypophysectomy of normal rats led to increased in vitro responsiveness to thyrotropin and this was partially reversed by injections of thyrotropin for a week before death. Administration of thyroid hormone had little effect in these investigations and in vitro responsiveness to prostaglanding E1 was not consistently influenced by any of the in vivo regimens. From this experience we conclude that, at least as studied in vitro, circulating thyrotropin has a significant role in modulating responsiveness of the thyroid to thyrotropin.

3',5'-Cyclic-AMP Phosphodiesterases