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R R Cavalieri

Publications and source records attributed to R R Cavalieri.

At least 37 records · Page 2Linked to original sources

Carbohydrate reactivation of thyroxine 5'-deiodinase (type II) in cultured mouse neuroblastoma cells is dependent upon new protein synthesis.

The T3 concentration in brain predominantly reflects local production from T4 rather than T3 uptake from the circulating pool. We recently demonstrated that rat brain T3 content is increased by glucose feeding compared to chow feeding. One possible mechanism for this effect is an increase in brain T4 5'-deiodinase (5'-D) activity. Our recent preliminary studies of neuroblastoma (NB) cells demonstrate that renewal of RPMI-1640 medium stimulates T4 5'-D type II (NB T4 5'-D II) activity in these cells. The present studies were performed to determine the mechanism of this response. Studies were performed on NB cells supported in thyroid hormone-depleted (deficient) medium. This approach increased NB T4 5'-DII activity 4-fold compared to that in thyroid hormone-replete medium. Medium renewal further stimulated enzyme activity (7- to 9-fold; maximum at 6 h) in each group. The difference between the hypothyroid group and control was sustained over a 24-h period. Subsequent studies demonstrated that glucose (11 mM) was the specific medium ingredient mediating the medium renewal response. A progressive increase in NB T4 5'-DII activity was noted over 8 h during RPMI-1640 salt plus glucose (11 mM) incubation. This was equivalent to the effect of complete medium containing glucose (11 mM). Coincubation with insulin (10(-7)-10(-9) M) did not modify the enzyme response to glucose. In addition, fructose (10 mM) had a similar effect on enzyme activity. Glycerol and essential and nonessential amino acids also modestly increased NB T4 5'-DII activity compared to that in the control group (P less than 0.01). Actinomycin-D (1 microM), cycloheximide (100 microM), and puromycin (100 microM) significantly (P less than 0.001) decreased the glucose effect on T4 5'-DII by 5-, 9-, and 17-fold, respectively, after 6 h of incubation. In addition, puromycin (10-200 microM) inhibited both NB T4 5'-DII activity and [3H]amino acid incorporation during incubation in glucose. There was a significant correlation between these parameters (r = 0.8; P less than 0.001). The enzyme activity decay curves in the glucose-activated and control groups subsequent to puromycin (100 microM) addition at 8 h were parallel. The fractional turnover rate was 13%/h in the controls and 11%/h in the glucose groups. The calculated enzyme production rate was significantly higher (P less than 0.005) in the glucose group compared to that in the control group (17.4 vs. 6.8 fmol/mg protein.h).(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acids↗

Uptake of thyroxine by the perfused rat liver: implications for the free hormone hypothesis.

To investigate the mechanism by which thyroxine (T4) in plasma enters hepatic cells, we measured the rate constants for uptake of free T4 by the perfused rat liver and for dissociation of T4 from its plasma binding proteins. Quantitative autoradiography of liver lobules after perfusion with [125I]T4 indicated an apparent rat constant for removal of free T4 from the sinusoids of at least 1.1 +/- 0.2 s-1. Single-pass extraction of T4 from human serum was 10.6 +/- 1.7% at physiological flow rates (1 ml.min-1.g liver-1). Rate constants for dissociation of T4 from plasma binding proteins at 37 degrees C (determined by rapid filtration) were 0.017 +/- 0.002 s-1 for human thyroid hormone-binding globulin, 0.080 +/- 0.015 s-1 for human thyroid hormone-binding prealbumin, and greater than 0.5 s-1 for human albumin. To investigate the factors that determine the concentration of T4 within hepatic cells, we analyzed the above data together with data reported in the literature on the equilibrium-binding constants and the rate constant for cellular metabolism of T4. Analysis of all of these data using a previously published mathematical model leads to the following conclusions for the physiological state: 1) metabolism, not uptake, is rate limiting to removal of T4 from plasma by the liver; 2) binding equilibrium is present in the intrahepatic plasma; 3) intracellular T4 is in equilibrium with the free T4 pool in plasma (and maintenance of this equilibrium may be an important function of plasma thyroid hormone-binding proteins); and 4) the concentration of T4 within the liver is proportional to the concentration of free T4 in the plasma. Our data do not allow us to determine definitively whether hepatic uptake of T4 occurs only from the free T4 pool in plasma or also from the protein-bound pool by interaction of one or more of the binding proteins with the liver cell. However, mathematical analysis indicates that this distinction is irrelevant to steady-state intracellular hormone concentrations when equilibrium exists between the plasma and cytosolic pools of hormone.

Animals↗

Carbohydrate feeding increases total body and specific tissue 3,5,3'-triiodothyronine neogenesis in the rat.

The glucose-fed rat, in contrast to the chow-fed animal, has a higher serum total T3 concentration and an increase in the hepatic content of T4 5'-deiodinase (type I) activity. The mechanism and significance of these glucose-induced changes in T3 metabolism are elucidated in this study. To focus on extrathyroidal thyroid hormone metabolism the kinetic parameters were determined in thyroidectomized T4-replaced rats (1.25 micrograms T4/100 g BW.day). Kinetics of T4 and T3 were studied separately by infusing labeled hormone to equilibrium. Glucose feeding for 72 h (G) significantly increased both the total and free serum T3 concentrations compared to the respective means in the chow-fed control group (P). The glucose-induced changes in serum T3 reflect the approximate doubling of T3 production to 14.7 +/- 0.6 ng/h.100 g in G rats compared to 7.6 +/- 0.7 ng/h.100 g in P rats. The higher T3 production rate in the G group is due to a significant increase in the fractional total body T4 to T3 conversion (0.33 +/- 0.02) compared to that in the P group (0.19 +/- 0.02). The tissue (liver, kidney, brain, and brown adipose tissue) concentration of T4 (nanograms per g wet wt) was significantly increased in the G group. The increase ranged from 54% in liver to 80% in kidney, brain, and brown adipose tissue. The tissue concentration of T3 (nanograms per g wet wt) was even more dramatically increased by glucose feeding than was T4. The glucose-induced increment in organ T3 ranged from 2.5-fold (kidney, muscle, and brain) to 5-fold (liver and white adipose tissue) to 12-fold (brown adipose tissue). These data indicate that the increase in serum total and free T3 concentrations associated with glucose feeding reflects augmented total body T3 production from T4. The effect of the enhanced T3 neogenesis was generalized, as the T3 content was increased in each organ studied. Thus, glucose feeding has unique effects on T3 metabolism.

Adipose Tissue↗

Uptake of 3,5,3'-triiodothyronine by the perfused rat liver: return to the free hormone hypothesis.

To investigate the mechanism by which T3 in plasma enters hepatic cells, we measured rate constants for the uptake of unbound (free) T3 by the perfused rat liver, for the hepatic uptake of T3 from serum, and for the spontaneous dissociation of T3 from its plasma binding proteins. Quantitative autoradiography of liver lobules after perfusion with [125I]T3 in protein-free buffer indicated a high apparent rate constant for removal of T3 from the sinusoids; its minimum estimate was 2.4 +/- 0.2 sec-1. The single pass extraction of T3 in human serum by the perfused rat liver was 31.6 +/- 4.5% at the supraphysiological flow rate of 3 ml/min/g liver (sinusoidal transit time, approximately 3 sec). Sixty percent of the T3 in this serum dissociated spontaneously from its binding proteins in 3 sec, as determined by a rapid filtration assay. Based on these data, we conclude that the pool of free T3 in plasma turns over very rapidly in vivo and probably accounts for the entire hepatic uptake of T3 from plasma. Using additional data on the rate constant for cellular metabolism of T3 obtained from values reported in the literature, a previously published general mathematical model of ligand transport was applied to all of these data, yielding the following conclusions for the physiological state. 1) Metabolism, not uptake, is rate limiting to removal of T3 from plasma by the liver. 2) Intracellular T3 is in virtual equilibrium with the free T3 pool in plasma. 3) Intracellular T3 concentrations reflect the concentration of free T3 in plasma, as predicted by the free hormone hypothesis. It is shown mathematically that these conclusions are independent of whether a gradient exists between extra- and intracellular T3 concentrations, and that they would still hold even if the tissue uptake of T3 occurred by a mechanism that acted directly on the plasma protein-bound pool of T3.

Animals↗

The acute effects of human growth hormone administration on thyroid function in normal men.

GH replacement therapy may lead to alterations in serum TSH and/or thyroid hormone values in GH-deficient patients, but there is no consensus on the explanation for these changes. We examined the effect of GH administration (0.125 mg, sc, daily for 4 days) on thyroid function in 20 normal men. Serum T4 levels decreased by 8%, and serum free T4 index values decreased by 5%. In contrast, serum T3 levels increased by 21%; serum rT3 did not change. These changes were accompanied by a 54% decrease in the mean serum TSH level. While it is not possible to draw conclusions about hormone production and disposal rates from changes in serum levels, these data are most consistent with enhanced extrathyroidal (including intrapituitary) conversion of T4 to T3 and a compensatory decrease in TSH secretion.

Adult↗

Reverse T3 and modulators of the calcium messenger system rapidly decrease T4-5'-deiodinase II activity in cultured mouse neuroblastoma cells.

Neural T3 neogenesis is modulated by the enzyme T4-5'-deiodinase type II (T4-5'-DII). Hypothyroidism increases the activity of rat pituitary and cerebral cortex enzyme activity. Mouse neuroblastoma cells (NB41A3) incubated in thyroid hormone deficient medium also show a significant increase in T4-5'-DII activity. This response is rapidly (less than 30 minutes) reversed by reverse T3 (rT3) suggesting a mechanism independent of nuclear T3 receptor binding or new protein synthesis. This report details a series of studies performed to elucidate the nature of this rT3 effect. Confluent neuroblastoma cell culture preparations maintained in hypothyroid medium showed a 2-3 fold increase in T4-5'-DII activity compared to preparations in standard medium (p less than 0.001). RT3 (1-50 nM), the calcium ionophore A23187 (0.3-1.5 microM) and the phorbol ester TPA (0.1-1.0 microM) reversed the effect of thyroid hormone deficient medium on enzyme activity (p less than 0.001). Each agent showed a similar time course with maximal effect occurring between 15-30 minutes post medium supplementation. The suppressive effect of A23187 (1.5 microM) and TPA (0.5 microM) on enzyme activity was not additive. In addition, the combination o of rT3 (50 nM) and A23187 (1.5 nM) did not decrease enzyme activity compared to each agent alone. In contrast, the combined addition of rT3 (50 nM) and TPA (0.5 microM) did have an additive effect on neuroblastoma T4-5'-DII activity. A similar pattern of response was found, when the effects of these agents were analyzed on T4-5'-DII activity in neuroblastoma cells incubated in N-FSC.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Brain lipoprotein lipase is responsive to nutritional and hormonal modulation.

Functional lipoprotein lipase activity was recently described in rat brain. The present study was performed to further characterize the biologic significance of brain lipoprotein lipase (heparin releasable component) and elucidate regulatory factors. Comparative studies were performed on tissue (brain, adipose, and heart) heparin releasable lipoprotein lipase in the fasted and diabetic (streptozotocin 100 mg/kg BW IP) rat. Both fasting (96 hours) and diabetes (ten days) significantly decreased brain (cortical) (P less than .05) and adipose (epididymal fat pad) (P less than .001) lipoprotein lipase activity. In contrast, heart muscle enzyme activity was significantly increased (P less than .001) in response to fasting and diabetes. Refeeding (Purina chow 96 hours) and insulin replacement (96 hours) reversed these changes in tissue lipoprotein lipase consequent to fasting and diabetes, respectively. There was a positive correlation between the changes in serum insulin concentration and adipose lipoprotein lipase, but there was no correlation between this parameter and brain or heart lipoprotein lipase. In addition, although T3 therapy normalized the low T3 state associated with both fasting and diabetes, it had no effect on the enzyme activity in the studied tissues. However, subsequent studies demonstrated that hypothyroidism (2 weeks post thyroidectomy) significantly decreased brain lipoprotein lipase activity (P less than .001) and increased both the adipose (P less than .025) and heart (P less than .025) enzyme activity. T3 replacement (0.8 micrograms/100 BW/d for 1 week) reversed the effects of hypothyroidism. However, the relationship between brain enzyme activity and serum T3 was nonlinear as hyperthyroidism tended to reduce brain LPL activity.(ABSTRACT TRUNCATED AT 250 WORDS)

Adipose Tissue↗

Thyroid hormone-binding proteins in plasma facilitate uniform distribution of thyroxine within tissues: a perfused rat liver study.

We used autoradiography to test the hypothesis that a major function of thyroid hormone-binding proteins in plasma is to ensure uniform distribution of thyroid hormones among cells of a given tissue. The distribution of [125I]T4 within rat hepatic lobules was determined after its single pass perfusion through the portal vein in solutions containing or lacking thyroid hormone-binding proteins. These proteins included thyroid hormone-binding globulin, thyroid hormone-binding prealbumin, and albumin. In the absence of these proteins, virtually all of the perfused T4 was taken up by the periportal cells, and subsequent perfusion with protein-free solution did not cause redistribution of this T4. In the presence of these proteins, in contrast, the perfused T4 was taken up uniformly by all cells within the lobule. Albumin alone was sufficient to ensure uniform cellular uptake of T4. However, variation of oleic acid concentrations within the physiological range markedly influenced the concentration of free T4 in a solution of 4% human serum albumin, but not in human serum. These results indicate that uniform distribution of T4 within tissues requires circulating thyroid hormone-binding proteins, and that the specific binding proteins, thyroid hormone-binding globulin and thyroid hormone-binding prealbumin, are required to ensure nonfluctuating circulating concentrations of free T4 in vivo. Other hormone-binding proteins in plasma and some transport proteins may function similarly.

Animals↗

Glucose and insulin reverse the effects of fasting on 3,5,3'-triiodothyronine neogenesis in primary cultures of rat hepatocytes.

The cellular mechanisms by which carbohydrate refeeding reverses the effect of fasting on T3 metabolism were studied in primary cultures of hepatocytes (24 h) harvested from 48-h fasted rats. Net T3 neogenesis (T3 generated from T4) in the fasted hepatocyte preparations (9.2 +/- 0.9 pmol/min X 100 mg protein) was significantly less (P less than 0.001) than that in hepatocyte cultures derived from 72-h glucose-fed rats (41 +/- 0.8 pmol/min X 100 mg protein). Preincubation (18 h) with either glucose (2.5-10 mM) or insulin (10-500 nM) significantly increased the fasted hepatocyte T3 levels to 28 +/- 0.6 and 22 +/- 1.3 pmol/min X 100 mg protein, respectively. Furthermore, incubation with both of these agents demonstrated a greater effect on hepatic T3 neogenesis than with either alone. Fasted hepatocyte T3 neogenesis was enhanced by enrichment with dithiothreitol (5 mM), but the T3 generation remained significantly less than that in cells exposed to glucose or insulin. Studies with glucose analogs demonstrated that preincubation with 2-deoxyglucose (5 mM) significantly increased (P less than 0.001) hepatocyte T3 neogenesis, but 3-O-methylglucose (5 mM) had no effect. In contrast, the insulin-mimetic compounds Concanavalin-A or spermine did not stimulate T3 neogenesis in the fasted hepatocyte cultures. Thus, rat hepatocytes sustained in primary culture for 24 h retain the T3 metabolic characteristics of the intact animal. Glucose and insulin reverse the effect of fasting on hepatocyte T3 neogenesis. The additive response to glucose and insulin suggests that T3 neogenesis is modulated through different mechanisms. The replication of the glucose effect by 2-deoxyglucose and the inability of dithiothreitol to reverse the effect of fasting on hepatocyte T4 5'-deiodinase activity suggest that neither intermediates in the glycolytic pathway nor thiol cofactors mediate the glucose effect. Thus, the restoration of liver T3 metabolism consequent to carbohydrate refeeding of the fasted rat may be mediated by the glucose and insulin responses.

3-O-Methylglucose↗

Mechanism of the heparin-induced increase in the concentration of free thyroxine in plasma.

The iv administration of heparin causes an increase in the plasma free T4 concentration, as determined by equilibrium dialysis. The mechanism and physiological consequences of this action of heparin are unknown. To explore the possibility that the heparin-induced increase in plasma free T4 is an in vitro artifact due to generation of FFA during equilibrium dialysis, we studied plasma samples from 10 subjects treated with iv heparin. In plasma from 4 of these subjects, free T4 concentrations measured by equilibrium dialysis did not increase above baseline values after heparin administration. In incubations performed in parallel with the equilibrium dialysis measurements, FFA concentrations in these plasma samples were found to increase, but in no subject did they exceed 2.5 meq/L after incubation. In contrast, in plasma from the other 6 subjects treated with heparin, free T4 concentrations rose markedly (by 130-520%) above baseline values after heparin administration. In all of these postheparin plasma samples, FFA concentrations were less than 2.8 meq/L before incubation, but rose during incubation by 80-270% to more than 3.8 meq/L. Treatment of these plasma samples with protamine to inhibit lipoprotein lipase and with specific antiserum to inhibit hepatic triglyceride lipase before equilibrium dialysis or incubation prevented, in parallel, the heparin-induced increases in FFA and free T4 concentrations. From these findings we conclude that the heparin-induced increase in free T4 is usually an in vitro artifact, and that most subjects receiving heparin have a normal plasma free T4 concentration in vivo. We also conclude that this in vitro artifact may account for many of the findings that led to the postulate of an inhibitor of T4 binding to plasma and intracellular proteins in heparin-treated patients and perhaps in patients with nonthyroid illness as well.

Fatty Acids, Nonesterified↗

Thyroid hormone deiodinases in purified primary glial cell cultures.

Iodothyronine metabolism was studied in neuroglial cells prepared from neonatal rat cerebri. Astrocytes account for nearly all of the deiodinase activity in mixed glial cell cultures. The predominant pathway is 5-deiodination, which closely resembles the enzyme activity in homogenates of cerebral cortex. Astrocytes cultured in serum-free chemically defined medium show a gradual decrease in 5-deiodination and an increase in 5'-deiodination. Exposure of cells to triiodothyronine partially reverses these changes. Thus, astrocytes contain enzymes for both major deiodinative pathways and may play a role in the regulation of thyroid hormone levels in the brain.

Animals↗

The hepatic sinusoid is not well-stirred: estimation of the degree of axial mixing by analysis of lobular concentration gradients formed during uptake of thyroxine by the perfused rat liver.

Two general models have been proposed for predicting the effects of metabolism, protein binding, and plasma flow on the removal of drugs by the liver. These models differ in the degree of plasma mixing assumed to exist within each hepatic sinusoid. The venous equilibrium model treats the sinusoid as a single well-stirred compartment, whereas the sinusoidal model effectively breaks up the sinusoid into a large number of sequentially perfused compartments which do not exchange their contents except through plasma flow. As a consequence, the sinusoidal model, but not the venous equilibrium model, predicts that the concentration of highly extracted drugs will decline as the plasma flows through the hepatic lobule. To determine which of these alternative models best describes the hepatic uptake process, we looked for evidence that concentration gradients are formed during the uptake of [125I]thyroxine by the perfused rat liver. Autoradiography of tissue slices after perfusion of the portal vein at physiologic flow rates with protein-free buffer containing [125I]thyroxine demonstrated a rapid exponential fall in grain density with distance from the portal venule, declining by half for each 8% of the mean length of the sinusoid. Reversing the direction of perfusate flow reversed the direction of the autoradiographic gradients, indicating that they primarily reflect differences in the concentration of thyroxine within the hepatic sinusoids rather than differences in the uptake capacity of portal and central hepatocytes. Analysis of the data using models in which each sinusoid was represented by different numbers of sequentially perfused compartments (1-20) indicated that at least eight compartments were necessary to account for the magnitude of the gradients seen.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Iodothyronine deiodination in the brain of diabetic rats: influence of thyroid status.

Experimental diabetes causes profound alterations in the metabolism of thyroxine (T4), including a decrease in hepatic triiodothyronine (T3) generation from T4 via 5'-deiodination (5'-D). Because 5'-D in brain differs markedly from that in liver, both in enzymatic mechanism and in the response to hypothyroidism, we studied iodothyronine deiodination, in particular T4 to T3 conversion (T4-T3), by incubating 125I T4 with particulate fractions of cerebral cortex (Cx) and cerebellum (Cm) from rats made diabetic by injection of streptozotocin. In nondiabetic thyroidectomized (Tx) rats Cx and Cm T4-T3 activity was increased approximately ten-fold and two-fold, respectively, compared with intact controls. Diabetic Tx rats did not differ from nondiabetic Tx rats in the rate of net T3 production from T4 but the formation of 3,3'-T2 was slightly reduced. Insulin-treated diabetic-Tx rats showed a pattern of T4 metabolism in Cx and Cm virtually identical to that of nondiabetic Tx rats. The rate of T3 degradation, determined in parallel incubations of Cx and Cm with 125I T3, did not differ significantly among the groups, indicating that the observed differences in net T3 production were due to changes in T4 5'-D activity. Intact diabetic rats compared to nondiabetic controls showed no significant changes in T4-T3 either in Cx or in Cm. Administration of T3, 0.8 microgram per 100 g bw per day for 6 days, by constant infusion to intact rats raised T4-T3 in Cx and Cm to levels found in Tx rats. Treatment of intact diabetics with T3 caused qualitatively similar changes, i.e., a hypothyroid response.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effect of free fatty acids on the concentration of free thyroxine in human serum: the role of albumin.

The concentration of FFA in normal human plasma in vivo generally ranges between 0.2 and 0.7 meq/liter; slightly higher concentrations have occasionally been reported in patients who are seriously ill. To determine whether such FFA concentrations may increase the concentration of free T4 in serum, we added increasing amounts of oleic acid to pooled normal human serum (with known FFA content) and measured free T4 by equilibrium dialysis. Total FFA up to 3 meq/liter in normal serum, representing an FFA to albumin molar ratio of about 5:1, had little or no effect on the free T4 concentration, while higher FFA concentrations progressively increased free T4. This same molar ratio of FFA to albumin had to be exceeded to cause a significant increase in the free T4 concentration in diluted serum and in serum from patients with nonthyroid illness. Serum from which more than 95% of the albumin had been removed by chromatography with Affi-Gel blue was much more sensitive to the effects of FFA on free T4. This enhanced sensitivity was reversed by readdition of albumin to the serum, and the addition of albumin to normal serum resulted in diminished effects of FFA on free T4. These results indicate the following: physiological concentrations of FFA do not significantly increase the free T4 concentration in normal human serum; when FFA reach supraphysiological concentrations in serum (in vitro) and the higher affinity FFA-binding sites on albumin become saturated (apparently at an FFA to albumin molar ratio of approximately 5:1), the excess FFA interact with other serum proteins, including thyroid hormone-binding globulin, and thereby increase the free T4 concentration; the concentration of albumin (or other FFA binders) must be considered when evaluating the observed effects of FFA. To explore the relevance of these findings to the hypothesis that FFA may inhibit the binding of T4 to plasma proteins in patients with nonthyroid illness, we measured plasma FFA concentrations in 11 severely ill patients hospitalized in the intensive care unit. We found a mean plasma FFA concentration of 0.45 +/- 0.11 (+/- SEM) mEq/liter and a mean serum albumin concentration of 2.39 +/- 0.29 g/dl in these patients. Their mean plasma FFA to albumin molar ratio was 1.53 +/- 0.41. Since the FFA to albumin molar ratio must exceed about approximately 5:1 before a significant increase in the serum free T4 concentration occurs, these results suggest that FFA do not commonly influence the circulating free T4 concentration in vivo, even in severely ill patients.

Fatty Acids, Nonesterified↗

Effects of dexamethasone on kinetics and distribution of triiodothyronine in the rat.

Studies were designed to examine the effects of the glucocorticoid dexamethasone (Dex) on the distribution and turnover of T3 separately from its effects on the pituitary and thyroid. Male Sprague-Dawley rats (200-250 g) were surgically thyroidectomized and given a replacement dose of T4 (1.6 micrograms/day X 100 g BW) throughout the experiment via a sc implanted osmotic minipump. Six or 7 days after starting the T4 infusion, each animal was given [125I]T3 by constant infusion (via a second minipump) for 5 or 6 days and, during the final 5 days, either Dex (0.15 mg/day X 100 g) or saline in a third minipump. Methanol extracts of serum and tissues removed at the end of the infusion were analyzed for [125I]T3 concentration by high performance liquid chromatography. The MCR, computed from the infusion rate of tracer and the serum concentration of [125I]T3 at the end of the infusion, averaged 25.7 +/- 1.3 (+/-SE) ml/h X 100 g in the controls and 15.1 +/- 2.6 in the Dex-treated rats. Serum T3 (RIA) concentrations were similar in the two groups. The plasma T3 production rate was decreased from 9.51 +/- 1.14 ng/h X 100 g in controls to 5.13 +/- 1.16 in the Dex-treated animals. The fraction of administered T4 converted to T3 was reduced from 0.21 to 0.11 by Dex treatment. Tissue to serum (T/S) [125I]T3 concentration ratios were significantly decreased by Dex to approximately 50% of the control value in each of the tissues sampled (liver, kidney, and skeletal muscle). The reduction in the T/S ratio could not be attributed to an increase in the net serum binding of T3; in fact, serum hormone binding was diminished by Dex treatment. The distribution data indicate that net tissue binding of T3 in these organs is reduced to an even greater extent than is serum binding of T3. The glucocorticoid-induced fall in T3 MCR could be accounted for by the decrease in T/S ratios, the latter being a measure of T3 distribution volume in the tissues studied. The rate of T4 5'-deiodination in vitro was diminished in homogenates of livers from Dex-treated animals when the incubation was performed with and without added thiol as cofactor, indicating that the hepatic level of active T4 5'-deiodinase is reduced by Dex. Thus, Dex causes multiple alterations in T3 metabolism. Total body T3 production from T4 in extrathyroid sites, and in the liver in particular, is reduced.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Red blood cell thyroxine in nonthyroid illness and in heparin-treated patients.

Red blood cell T4 concentrations (RBC T4) were measured in 15 normal subjects, 13 patients with hypo- or hyperthyroidism, and 10 patients with elevated or decreased serum thyroid hormone binding. In each case, RBC T4 was compared with the serum concentration of free T4 measured by equilibrium dialysis ( FT4D ). RBC T4 correlated significantly with FT4D in these subjects (r = 0.90; P less than 0.001). The normal range for RBC T4 was 0.27-0.83 ng/ml. RBC T4 was below the normal range in all 8 patients with hypothyroidism and above the normal range in all 5 patients with hyperthyroidism. It was within the normal range in all 4 subjects with absent or low T4-binding globulin (TBG) and in 5 of the 6 subjects with elevated TBG or familial dysalbuminemic hyperthyroxinemia. The sixth subject (increased TBG) had elevated RBC T4 and FT4D . RBC T4 was similarly measured in 10 patients with severe nonthyroid illness (NTI), 5 of whom had decreased serum concentrations of total T4. RBC T4 was normal in 8 of these patients, elevated in 1, and decreased in 1; in comparison, FT4D was normal in 4, elevated in 5, and decreased in 1. Eight patients receiving continuous iv infusions of heparin were also studied because of previously described similarities in the in vitro thyroid tests of heparin-treated and euthyroid sick patients. FT4D was elevated in 7 of the heparin-treated patients, whereas RBC T4 was elevated in only 2. Furthermore, for any given value of FT4D , RBC T4 was lower in heparin-treated patients than in normal subjects, indicating the presence of an inhibitor of cellular T4 binding in these patients. This putative inhibitor, demonstrated by an elevated FT4D to RBC T4 ratio, was present in 6 of the 8 heparin-treated patients and in 5 of the 10 patients with NTI. The findings of this study support the hypothesis that an inhibitor of cellular T4 binding is present in the serum of some patients with NTI and in most heparin-treated individuals.

Erythrocytes↗