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Autosomal dominant nonautoimmune hyperthyroidism. Clinical features-diagnosis-therapy.

Autosomal dominant nonautoimmune hyperthyroidism is a hereditary form of hyperthyroidism caused by constitutively activating germline mutations in the TSH-receptor gene. Clinical features comprise familial prevalence of thyroid autonomy in more than 2 generations and conditions of persisting neonatal hyperthyroidism or nonautoimmune hyperthyroidism of childhood onset with frequent relapses of hyperthyroidism under thyrostatic therapy and after thyroid surgery. Once clinically suspected the diagnosis can be confirmed by mutation analysis of genomic DNA extracted from a routinely obtainable EDTA blood sample. In patients with hereditary nonautoimmune hyperthyroidism a near total thyroidectomy is recommended as the first line treatment to avoid relapses from residual thyroid tissue with the activating TSHR mutation. Furthermore, genetic counselling of the affected patients is advised.

Adult↗

Prolonged ventricular repolarization measured by corrected QT interval (QTc) in subclinical hyperthyroidism.

UNLABELLED: Overt hyperthyroidism and hypothyroidism exert a major effect on cardiac function and on ECG. The influence of subclinical hyperthyroidism on the circulatory system is still under debate. Few studies examined the effect of thyroid hormones on ventricular repolarization measured by corrected QT interval (QTc). Longer QTc is associated with increased risk of arrhythmia and cardiac mortality. The aim of this study was to examine the influence of subclinical hyperthyroidism on ventricular repolarization measured by corrected QTc in a standard 12-lead electrocardiogram. The examined group consisted of thirty-two patients with subclinical hyperthyroidism; the controls were thirty-nine healthy individuals. In the group with subclinical hyperthyroidism, we observed a significant increase in heart rate (80.3 +/- 10.59 vs. 73.7 +/- 11.37 bpm, p < 0.05). The mean corrected QTc was 0.434 +/- 0.0207 seconds and 0.414 +/- 0.0208 in the examined groups and in controls, respectively (p < 0.001). QTc did not correlate with free thyroxin concentrations (p = 0.5084). CONCLUSION: Corrected QT intervals were significantly longer in patients with subclinical hyperthyroidism.

Arrhythmias, Cardiac↗

Insulin secretion and sensitivity in hyperthyroidism.

To examine the effect of hyperthyroidism on carbohydrate metabolism, we studied glucose-stimulated insulin secretion and glucose utilization in 8 subjects with Graves' disease before and after treatment for hyperthyroidism and 8 age-, sex- and weight-matched normal subjects. Subjects with Graves' disease had significant elevated serum levels of thyroxine (24.81 +/- 2.44 micrograms/dl, mean +/- SEM) and triiodothyronine (459 +/- 5.5 ng/dl, mean +/- SEM). Simultaneous measurement of plasma glucose, serum insulin and C-peptide levels during fasting and every 30 minutes up to 180 minutes after 75 g oral glucose loading was determined. In addition, plasma glucose, serum insulin and serum C-peptide were measured during euglycemic glucose clamp with insulin infusion of 40 mU/m2 min-1. Mean fasting plasma glucose (P less than 0.05, serum insulin (P less than 0.005) and serum C-peptide (P less than 0.005) levels were significantly higher in the hyperthyroid patients. After glucose loading, the plasma glucose (P less than 0.05), serum insulin (P less than 0.05) and C-peptide (P less than 0.05) responses were significantly higher in hyperthyroid patients at all times up to 180 minutes. During euglycemic clamp studies, the steady-state serum insulin levels were identical in the two groups. The glucose disposal rate was lower in hyperthyroid patients before treatment (P less than 0.01) than in normal subjects. After thyroid function had been normalized for 2 to 4 weeks, the glucose disposal rate increased significantly (P less than 0.05), but was still significantly lower than those of normal subjects (P less than 0.05). Our data show that patients with Graves' hyperthyroidism manifest glucose intolerance, hyperinsulinemia and insulin resistance.

Administration, Oral↗

Effect of GIP on insulin release to intravenous glucose infusion in hyperthyroid rats.

Triiodothyronine induced hyperthyroidism caused significantly elevated basal and stimulated glucose and insulin levels in rats. The release of Gastric Inhibitory Polypeptide (GIP) following an oral glucose load was not significantly different between euthyroid and hyperthyroid rats. The insulin response, however, was significantly higher in hyperthyroid rats. Following intravenous glucose hyperthyroid rats showed a diminished insulin response when compared with euthyroid rats but intravenous infusion of glucose together with GIP caused a significantly higher insulin response in hyperthyroid rats. It is hypothesized that in hyperthyroidism there is an increased sensitivity to the insulinotropic action of GIP and that this mechanism could emphasize the importance of the enteroinsular axis in pathophysiological states.

Administration, Oral↗

Force development and metabolism in perfused skeletal muscle of euthyroid and hyperthyroid rats.

The effect of experimental hyperthyroidism on skeletal muscle metabolism during force development and subsequent recovery was studied in a perfused preparation of the gastrocnemius and plantaris muscle of rats. After equilibration, the muscles were stimulated for 15 minutes at 1 Hz, and were allowed to recover during the following 15 minutes. The basal oxygen consumption of the skeletal muscle preparation was increased by 40% in the hyperthyroid rats as compared with euthyroid rats. The results show that: 1. Active force at 1 Hz was significantly reduced in the hyperthyroid rats compared with euthyroid rats, but the decay of force was similar in the two groups. 2. The increase in oxygen and glucose consumption and in lactate production during stimulation of the muscles was equal in hyperthyroid and euthyroid rats, but during recovery, oxygen consumption was significantly higher in the hyperthyroid than in euthyroid rats. 3. The increase in ATP turnover during force development and recovery (calculated from changes in O2 uptake, lactate production, and the breakdown of creatine-phosphate) in relation to the sum of force was significantly increased in the hyperthyroid state.

Adenosine Triphosphate↗

Cation transport in intact erythrocytes of hyperthyroid patients: role of the NaK-ATPase pump.

Studies of erythrocyte (RBC) cation fluxes and concentrations in hyperthyroid subjects have recently been reported with the suggestion that Na-K ATPase activity was decreased. We have studied tha kinetics of total and ouabain-sensitive K+ uptake utilizing 86Rb as a tracer in the intact erythrocytes of 7 hyperthyroid subjects and compared the results of those of a healthy control population. We find total K+ transport is depressed in the RBC of hyperthyroid subjects. The Vmax for K+ transport for hyperthyroid subjects is 1.8 +/- 0.17 x 10(-4) mM K+/10(9) RBC/hour versus a control of 2.3 +/- 0.14 x 10(-4) mM K+/10(9) RBC/hour. This depression in Vmax is evident in spite of no significant differences in the Km for the system when hyperthyroid subjects (2.7 +/- 0.19 mM) are compared to controls (2.38 +/- 0.21 mM). Further, the depressed K+ transport appears to be the result of depressed ouabain--insensitive K+ transport. Although the percent of the ouabain-sensitive K+ transport is greater in the hyperthyroid subject (82.5%) versus controls (72.5%), this simply reflects a relative change in a system where total transport is dropping but the ouabain-sensitive component is remaining unchanged. None of these findings can be directly or indirectly related to thyroid hormone and it is suggested that the ion transport changes reflect factors independent of thyroid hormone.

Adolescent↗

Role of neuromedin B in control of the release of thyrotropin in hypothyroid and hyperthyroid rats.

Neuromedin B (NB) is a recently discovered neuropeptide related to bombesin. It is localized to thyrotropes and we have previously shown that it directly inhibits thyrotropin (TSH) release from the anterior pituitary gland of euthyroid rats. In the current studies, we further evaluated the action of NB and antiserum directed against it in euthyroid rats and compared the actions with those in hypo- and hyperthyroid rats. Rats were rendered hypothyroid by treatment with propylthiouracil and hyperthyroid by treatment with thyroxine. In euthyroid rats, NB suppressed TSH release from hemipituitaries in vitro. Incubation of these pituitaries with highly specific antiserum against NB produced a stimulation of TSH release, whereas normal rabbit serum had no effect on the output of TSH. Thus, in euthyroid animals NB is a physiologically significant inhibitor of TSH release from the pituitary. In hypothyroid as in euthyroid animals, NB inhibited TSH release when microinjected into the third ventricle (3V) in the same dose (0.5 micrograms; 0.44 nmol) as in euthyroid rats. TSH release from hemipituitaries of hypothyroid animals was also suppressed by NB as in euthyroid animals. In hypothyroid animals, anti-NB antiserum was ineffective both in vivo after its microinjection into the 3V and in vitro on hemipituitaries, which suggests that the peptide has little physiologic significance in this condition, presumably because of its reduced release from the thyrotropes associated with diminished NB content in the pituitary of the hypothyroid rat. Intraventricular injection of NB failed to lower plasma TSH in hyperthyroid rats, which suggests that the action of the peptide is already maximal in hyperthyroidism. When antiserum to NB was microinjected twice into the 3V, there was a delayed increase in plasma TSH manifest 24 hr after the initial injection. TSH release from pituitaries of these animals was markedly increased in the presence of NB antiserum. Thus, NB has a physiologically significant TSH release-inhibiting action at the pituitary in the hyperthyroid as well as in the euthyroid rat. We conclude that in the euthyroid animal NB acts in an autocrine fashion to suppress TSH release from the thyrotropes directly. In hypothyroidism, NB synthesis and presumably release from the pituitary is decreased, such that there is no physiologic significance to the residual NB release, although the responsiveness to the inhibitory action of the peptide is increased, possibly via upregulation of its postulated receptors on the thyrotrope. In hyperthyroidism, the concentration of NB in thyrotropes and presumably its release is increased so that it has a physiologically significant TSH release-inhibiting action.

Animals↗

Role of nitric oxide in the reperfusion induced injury in hyperthyroid rat hearts.

We recently reported that hyperthyroidism affects the heart response to ischemia/reperfusion. A significant tachycardia during reperfusion was associated with an increase in the oxidative stress of hearts from T3-treated animals. In the present study we checked the possible role of nitric oxide (NO) in this major stress induced by the hyperthyroid state. We compared the functional recovery from ischemia/reperfusion of Langendorff preparations from euthyroid (E) and hyperthyroid (H, ten daily intraperitoneal injections of T3, 10 microg/100 g body weight) rats, in the presence and in the absence of 0.2 mM Nomega-nitro-L-arginine (L-NNA). At the end of the ischemia/reperfusion protocol (10 min preischemic perfusion, 20 min global ischemia, 30 min reperfusion) lipid peroxidation, antioxidant capacity (CA) and susceptibility to in vitro oxidative stress were determined on heart homogenates. The main effect of hyperthyroidism on the reperfusion functional response was confirmed to be a strong tachycardic response (154% recovery at 25 min reperfusion) accompanied by a low recovery in both left ventricular diastolic pressure (LVDP) and left ventricular dP/dtmax. This functional response was associated with a reduction in CA and an increase in both lipid peroxidation and susceptibility to oxidative stress. Perfusion of hearts with L-NNA per se had small but significant negative chronotropic and positive inotropic effects on preischemic performance of euthyroid rat hearts only. More importantly, L-NNA perfusion completely blocked the reperfusion tachycardic response in the hyperthyroid rats. Concomitantly, myocardium oxidative state (lipid peroxidation, CA and in vitro susceptibility to oxidative stress) of L-NNA perfused hearts was similar to that of E animals. These results suggest that the higher reperfusion-induced injury occurring in hyperthyroid animals is associated with overproduction of nitric oxide.

Animals↗

Increased susceptibility of hyperthyroid rats to ozone: early events and mechanisms.

Previous studies demonstrated that ozone-induced lung damage and inflammation are much greater in hyperthyroid rats, compared to normal rats, at 18 h postexposure. The purpose of the present investigation was to study early events and mechanisms underlying the increased sensitivity to ozone in a hyperthyroid state. Specifically, the degree of lung epithelial cell barrier disruption, the antioxidant status of the extracellular lining fluid, and the release of inflammatory mediators were examined. To induce a hyperthyroid state, mature male Sprague-Dawley rats were implanted with time-release pellets containing thyroxine; control rats received placebo pellets. After 7 d, the animals were exposed to air or ozone (2 ppm, 3 h). Immediately following the end of the exposure, bronchoalveolar lavage (BAL) fluid and cells were harvested. BAL fluid albumin levels and total antioxidant status were examined. In addition, levels of prostaglandin E2 (PGE2), macrophage inflammatory protein (MIP)-2, MCP-1, and tumor necrosis factor (TNF)-alpha were determined in BAL fluid and in media samples following ex vivo culture of BAL cells harvested after in vivo inhalation exposures. The results of this study are consistent with the following hypotheses: (1) A marked increase in the permeability of the alveolar-capillary barrier is an early event following ozone exposure in a hyperthyroid state; however this does not appear to be due to overall changes in BAL fluid antioxidant potential. (2) Early increases in MIP-2, but not PGE2, are involved in the enhanced lung response to ozone in a hyperthyroid state. (3) Inflammatory mediator production (i.e., PGE2, MIP-2, MCP-1, and TNF-alpha) by alveolar macrophages plays a minimal role in the initial responses to ozone in a hyperthyroid state.

Animals↗

Endothelial function in patients with hyperthyroidism before and after treatment with propranolol and thiamazol.

Hyperthyroidism is associated with a higher incidence of arterial thromboembolism; increasing age, atrial fibrillation, and mitral valve abnormalities are risk factors. However, the contribution of endogenous coagulation parameters is unclear. Because thyroid hormone influences receptor and transcription factors, it can be expected that it will influence proteins involved in coagulation processes synthetised in many cells. Fourteen hyperthyroid patients were studied untreated, after 1 week of treatment with propranolol, and after therapeutic treatment with thiamazol. Fourteen matched controls were used for comparison. On each occasion, endothelial marker proteins, coagulation/fibrinolysis factors, and inflammatory (liver) markers were measured. Excess thyroid hormone was associated with elevated levels of most endothelium-associated proteins. In addition, plasma fibronectin and fibrinogen were increased, while plasminogen was decreased. No evidence was found that hyperthyroidism was associated with coagulation/fibrinolysis activation, or with increased levels of the inflammation markers interleukin-6 (IL-6), tumor necrosis factor-alpha (TNF-alpha) or C-reactive protein (CRP). Propranolol treatment only lowered the von Willebrand factor propeptide, and slightly increased plasminogen. Treatment with thiamazol returned all parameters to normal. Hyperthyroidism increased the plasma levels of most endothelial marker proteins, and of some liver-synthetized proteins. No evidence for coagulation/fibrinolysis activation was found. However, it appears that endothelial activation, which is indicative of a procoagulant state, is present in hyperthyroidism. This may explain the association between hyperthyroidism and thromboembolism especially if other risk factors are present. von Willebrand factor II (vWF:Ag-II) levels may be suitable markers to evaluate acute changes in endothelial function because this parameter responds more rapidly to changes in endothelial function than other factors.

Adrenergic beta-Antagonists↗

Iodine excess and hyperthyroidism.

150 microg iodine are daily required for thyroid hormone synthesis. The thyroid gland has intrinsic mechanisms that maintain normal thyroid function even in the presence of iodine excess. Large quantities of iodide are present in drugs, antiseptics, contrast media and food preservatives. Iodine induced hyperthyroidism is frequently observed in patients affected by euthyroid iodine deficient goiter when suddenly exposed to excess iodine. Possibly the presence of autonomous thyroid function permits the synthesis and release of excess quantities of thyroid hormones. The presence of thyroid autoimmunity in patients residing in iodine-insufficient areas who develop iodine-induced hyperthyroidism has not been unanimously observed. In iodine-sufficient areas, iodine-induced hyperthyroidism has been reported in euthyroid patients with previous thyroid diseases. Euthyroid patients previously treated with antithyroid drugs for Graves' disease are prone to develop iodine-induced hyperthyroidism. As well, excess iodine in hyperthyroid Graves' disease patients may reduce the effectiveness of the antithyroid drugs. Occasionally iodine-induced hyperthyroidism has been observed in euthyroid patients with a previous episode of post-partum thyroiditis, amiodarone destructive or type II thyrotoxicosis and recombinant interferon-alpha induced destructive thyrotoxicosis. Amiodarone administration may induce thyrotoxicosis. Two mechanisms are responsible for this condition. One is related to excess iodine released from the drug, approximately 9 mg of iodine following a daily dose of 300 mg amiodarone. This condition is an iodine-induced thyrotoxicosis or type I amiodarone-induced thyrotoxicosis. The other mechanism is due to the amiodarone molecule that induces a destruction of the thyroid follicles with a release of preformed hormones. This condition is called amiodarone-induced destructive thyrotoxicosis or type II thyrotoxicosis. Patients developing type I thyrotoxicosis in general have preexisting nodular goiter whereas those developing type II thyrotoxicosis have a normal thyroid gland. The latter group of patients, after recovering from the destructive process, may develop permanent hypothyroidism as the consequence of fibrosis of the gland.

Amiodarone↗

Hyperthyroidism and cardiovascular morbidity and mortality.

Hyperthyroidism is a common disorder affecting multiple systems in the body. The cardiovascular effects are among the most striking. The availability of effective treatments for hyperthyroidism has led to the widespread perception that it is a reversible disorder without any long-term consequences. Recent evidence suggests, however, that there may be adverse outcomes. Long-term follow-up studies have revealed increased mortality from cardiovascular and cerebrovascular disease in those with a past history of overt hyperthyroidism treated with radioiodine, as well as those with subclinical hyperthyroidism. Thyroid hormones are known to exert direct effects on the myocardium, as well as the systemic vasculature and predispose to dysrhythmias, especially supraventricular. Atrial fibrillation (AF) is a recognized complication of overt hyperthyroidism, and subclinical hyperthyroidism is also known to be a risk factor for development of AF. Supraventricular dysrhythmias, particularly atrial fibrillation, in older patients may account for some of the excess cardiovascular and cerebrovascular mortality described, especially because AF is known to predispose to embolic phenomena.

Aged↗

Subclinical hyperthyroidism and atrial fibrillation.

Subclinical hyperthyroidism is characterized by a clearly low serum concentration of thyrotropin (TSH) and the absence of obvious symptoms of hyperthyroidism. Whether or not all persons with a low value for serum TSH can be considered subclinically hyperthyroid is uncertain, but the low serum TSH per se is a risk factor for atrial fibrillation and perhaps other cardiovascular disease. Screening all persons, even in the older age groups, for subclinical hyperthyroidism may not be justified in and of itself but such persons would likely be screened for subclinical hypothyroidism and so those with subclinical hyperthyroidism identified. There are no controlled trials that show the benefit of treatment of subclinical hyperthyroidism, thus therapy at present needs to be determined by clinical judgement, aided by monitoring the patient to see if the low serum TSH level persists and assessing the presence or absence of other determinants of therapy such as an elevated serum triiodothyronine (T3) concentration, a multinodular goiter, or the appearance of overt symptoms.

Aged↗

Thyroid growth immunoglobulins in feline hyperthyroidism.

Feline hyperthyroidism bears a strong clinical and pathologic resemblance to toxic nodular goiter in humans. To evaluate whether the observed thyroid growth might be due to circulating thyroid antibodies, as has been postulated in humans, we studied the effect of purified immunoglobulin (Ig) G preparations on a rat thyroid follicular (FRTL-5) cell line. When compared with control, hyperthyroid cat IgG caused significantly increased [3H]-thymidine (Tdr) incorporation into DNA (p less than 0.02) and stimulated cellular proliferation 15-fold. Stimulation of 3H-Tdr incorporation tended to be biphasic and could be inhibited completely by a potent, specific TSH receptor blocking antibody. Hyperthyroid cat IgG also significantly inhibited 125I-bTSH binding to porcine thyroid membranes, an effect that could be reproduced using electrophoretically pure IgG and normal cat thyroid membranes. Unlike its effect on growth, hyperthyroid cat IgG did not stimulate intracellular cAMP, and there was no correlation between thyroid function in vivo and IgG growth-promoting activity in vitro. These data suggest that elevated titers of thyroid growth IgGs, probably acting through the TSH receptor, are present in feline hyperthyroidism and may play a role in goiter formation. Unlike growth, the thyroid hyperfunction observed is not IgG dependent. Further study of feline hyperthyroidism may contribute important insights into human nodular goiter and into the mediation of thyroid growth in general.

Adenylyl Cyclases↗

Radioiodine turnover studies as a means to predict stable intrathyroidal iodine stores and comments upon its use in the diagnosis and treatment of hyperthyroidism.

Stable intrathyroidal iodine pool (ITI) is known to affect both diagnosis and treatment of hyperthyroidism. Very few laboratories have facilities to measure ITI. In our department x-ray fluorescence was routinely used for more than 15 years. We report here that it is possible to predict the ITI by means of classic 131I turnover studies and at least distinguish hyperthyroid patients with a small ITI pool ("small pool" patients) from those with a large ITI. It could be shown from a retrospective study (selected hyperthyroid patients, n = 118) that (1) in our area the small pool patients represent the majority as opposed to the situation in the United States, (2) that there was a highly significant negative correlation (p < 0.001) between the PB 131I at 24 h and ITI, and (3) that the non-small pool patients were more resistant to treatment than the others. In a prospective study of 91 consecutive patients with a thyroid problem, it was be shown that in the euthyroid group no correlation could be found between ITI on the one hand and 131I uptake and PB 131I at 24 h or urinary iodine on the other. In the hyperthyroid patients a strong negative correlation was again found between ITI and PB 131I (p < 0.001), stronger than with 131I uptake p = 0.093). No correlation existed with urinary iodine. In a second prospective study of hyperthyroid patients (n = 56), it was confirmed that measuring the PB 131I could classify hyperthyroid patients into non-small pool and small pool subjects.(ABSTRACT TRUNCATED AT 250 WORDS)

Humans↗

The many causes of subclinical hyperthyroidism.

Subclinical hyperthyroidism, defined as serum thyroid hormone levels in the reference range with low serum TSH concentration, is a well recognized clinical entity, but little information is available concerning the prevalence of the disorders that produce it. We conducted a 24-month retrospective survey of subclinical hyperthyroidism patients referred to a university hospital nuclear medicine service for diagnostic studies. Twenty-four consecutive patients were evaluated (22 outpatients and 2 inpatients). All patients had highly sensitive TSH determination, thyroid hormone levels, radioiodine uptake and scan (except for 2 postpartum women), and, selectively, TSH-receptor antibody (TRAb), serum thyroglobulin, antithyroid antibodies, T3-suppression test, and erythrocyte sedimentation rate. A TSH value of about 0.1 microIU/mL was used as the cutoff. Only one patient in the group had a nonthyroidal disorder. In 14 patients (61%) subclinical hyperthyroidism was self-limited, due to silent thyroiditis (5 patients), iodine-induced hyperthyroidism (3 patients), postpartum thyroiditis (2 patients), subacute thyroiditis (2 patients), and probable hemorrhage into a functioning nodule (2 patients). Of the non-self-limited disorders (39%), Graves' disease accounted for 6 patients and solitary or multinodular goiter for 3. Graves' disease proved difficult to diagnose because the thyroid gland was normal in size in two of the six patients, TRAb was positive in only two of six, and the radioiodine uptake and gradient were normal in all six; the T3-suppression test was positive in two of two patients. We conclude that the causes of subclinical hyperthyroidism are the disorders that commonly produce overt thyrotoxicosis in medical practice, Graves' disease being the most frequent. However, the tests used to diagnose overt Graves' disease often fail in the setting of subclinical hyperthyroidism, except possibly the T3-suppression test.

Adult↗

Fetal and neonatal hyperthyroidism.

Fetal and neonatal hyperthyroidism are usually produced by transplacental passage of thyroid-stimulating immunoglobulins. Most commonly, the thyroid-stimulating immunoglobulins are a component of active maternal Graves' disease. However, such antibodies may continue to be produced after ablation of the thyroid by surgery, radioiodine, or by the immune mechanisms of Hashimoto's thyroiditis. Other mechanisms that have produced fetal and neonatal hyperthyroidism include activating mutations of the stimulatory G protein in McCune-Albright syndrome and activating mutations of the thyrotropin (TSH) receptor. Fetal hyperthyroidism may be associated with intrauterine growth retardation, nonimmune fetal hydrops, craniosynostosis, and intrauterine death. Features of this condition in the neonate include hyperkinesis, diarrhea, poor weight gain, vomiting, ophthalmopathy, cardiac failure and arrhythmias, systemic and pulmonary hypertension, hepatosplenomegaly, jaundice, hyperviscosity syndrome, thrombocytopenia, and craniosynostosis. The time course of thyrotoxicosis depends on etiology. Remission by 20 weeks is most common in neonatal Graves' disease; remission by 48 weeks is nearly always seen. A subset of these patients may have persistent disease when there is a strong family history of Graves' diseases. Disease persistence is characteristic of patients with activating mutations of the TSH receptor. Treatment of fetal hyperthyroidism comprises administration of antithyroid drugs to the mother. Fetal heart rate and fetal growth should be monitored. Ultrasonography may reveal changes in thyroid size. At times, cordocentesis may be useful for monitoring fetal thyroid function. Hyperthyroid neonates may be treated with antithyroid drugs, beta-adrenergic receptor blocking agents, iodine, or iodinated contrast agents, and at times, with glucocorticoids and digoxin. Nonremitting causes of neonatal hyperthyroidism require ablative treatments such as thyroidectomy.

Female↗

Influence of hyperthyroidism on glycerol-extracted cardiac muscle from rabbits.

The mechanism responsible for the enhancement of myocardial contractility in hyperthyroidism is unclear. The possibility that this mechanism may involve a direct effect on the contractile proteins was investigated using the glycerol-extracted muscle strip from right ventricular papillary muscles of euthyroid rabbits and rabbits made hyperthyroid by the intraperitoneal injection of 0.25 mg/kg 1-thyroxine for 10 d. Intact papillary muscles from the hyperthyroid rabbits had an enhanced rate of tension development, a decreased time to peak tension, and a slight though insignificant increase in active tension compared to control animals. Maximal isometric contractions were induced in glycerol-extracted cardiac muscle strips from the two animal groups by the addition of 5 mmol/litre ATP and 5 mmol/litre MgCl in a buffer solution containing 0.15 mol/litre Tris-HCl (pH 7.1) at 26 degrees C. Peak isometric tension was increased in glycerinated muscle strips from hyperthyroid rabbits (1.52+/-0.10 vs 1.26 +/-0.13g/mm2), but the differences did not reach statistical significance. However, there was a marked increase in the rate of tension development in the hyperthyroid group (62.5+/-5.4 vs 41.8+/-4.7 mg/mm-2/s, P less than 0.01). This increase in the rate of isometric tension development in both intact and glycerinated muscles from hyperthyroid rabbits may be related to changes in the intrinsic turnover of actomyosin cross-bridge links in this condition. Thus, these findings suggest that thyroid hormone may influence cardiac muscle function by a direct effect on the contractile proteins.

Adenosine Triphosphate↗