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I J Chopra

Publications and source records attributed to I J Chopra.

At least 19 recordsLinked to original sources

Sulfation pathway of thyroid hormone metabolism in selenium-deficient male rats.

Male Sprague-Dawley rats were fed a selenium-deficient yeast-based laboratory diet or a control diet for 6 wk. The tissue type I 5'-monodeiodinase (5'-MDI) activity and the immunoassayable 5'-MDI were significantly (P < 0.05) reduced in the liver and the kidney but not in the thyroid of selenium-deficient rats. The mean serum concentrations of thyroxine sulfate (T4S), 3,3',5'-triiodothyronine sulfate (T3S), and reverse T3 sulfate (rT3S) (ng/dl) were significantly increased in selenium-deficient rats (15.7, 59.4, and 22.8, respectively, n = 12) compared with control rats (< 1.0, 18.5, and 9.1, respectively, n = 12, P < 0.01). Kinetic studies were carried out during a constant infusion of unlabeled sulfated iodothyronines (T4S, T3S, or rT3S, n = 5-6/group) at a rate of 1 microgram/h by Alzet minipump for 48 h. The data showed that elevated serum concentrations of T4S or T3S in the selenium-deficient rat are due both to reduced metabolic clearance rate (MCR, mean, l.kg-1.day-1, 7.4 for T4S and 4.5 for T3S in selenium deficiency vs. 12 and 9.2, respectively in controls, P < 0.05) and increased production rate (mean, microgram.kg-1.day-1, 1.2 for T4S, and 2.7 for T3S in selenium deficiency vs. 0.12 and 1.7, respectively, in the controls, P < 0.05). However, the increased serum rT3S concentration in selenium-deficient rats is due mainly to reduced MCR (mean, l.kg-1.day-1, 34 vs. 67 in controls, P < 0.05) and its daily production rate remained unchanged in selenium deficiency (mean, microgram.kg-1.day-1, 7.6 vs. 6.1 in the control group, P > 0.05).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Use of sodium ipodate in management of hyperthyroidism in subacute thyroiditis.

Five hyperthyroid patients (two men and three women) with typical features of subacute thyroiditis were treated with sodium ipodate (Oragrafin; 0.5 g, orally daily or every other day) for 15-60 days; the treatment was stopped when both serum T4 and T3 levels were normal. All patients studied demonstrated a prompt normalization of serum T3, improvement in clinical symptoms of hyperthyroidism, and/or weight gain. We observed no side-effects of treatment with sodium ipodate. Our data suggest that sodium ipodate is a safe and effective agent for management of hyperthyroidism in subacute thyroiditis.

Adult

Effect of humic acids on thyroidal function.

Humic substances (HS) have been implicated as environmental goitrogens. Increased prevalence of goiter has been recently noticed in the blackfoot disease endemic area on the southwest coast of Taiwan, where well water is rich in HS. This study investigated the in vivo effects of humic acids (HA) on the thyroid gland of rats and mice. Groups of mice and rats were fed regular or moderately iodine deficient (approximately 167 vs 700 micrograms l- per kg) chow and distilled water or HA water (1mg/ml) for 3 or 4 months. Serum T4, T3, reverse T3, and/or TSH were measured by radioimmunoassay. Thyroidal 125I uptake was measured in mice at 2 h after injection of 1 microCi125I ip. Treatment of the rat with HA was associated with a significantly (p < 0.05) reduced serum T4 without a change in other parameters of study. Treatment with low iodine diet was associated with a clear increase in serum T3 and a decrease in serum rT3. Rats treated with both HA and low iodine diet showed a significantly reduced serum T4, increased serum T3 and decreased serum rT3. In mice, treatment with low iodine diet significantly increased thyroidal 125I uptake and additional treatment with HA significantly enhanced the effect of low iodine diet. Treatment with HA did not influence thyroid weight of rats or mice given normal or iodine deficient diets. We conclude that HA per se do not induce goiter, but they may enhance the goitrogenic effect of low iodine.

Animal Feed

Sex-related differences in iodothyronine metabolism in the rat: evidence for differential regulation among various tissues.

Various aspects of thyroid hormone metabolism were examined in vitro in age-matched (experiment I) and weight-matched (experiment II) male and female Sprague-Dawley rats; unless specified otherwise, results were similar in both experiments. The activity and content of iodothyronine 5'-monodeiodinase (type I-MD) in the liver of the female rat were markedly reduced, but there was no sex-related difference in these parameters in the kidney. The activity of the brain type III-MD was also not significantly influenced by the sex of the rat. Hepatic triiodothyronine (T3) sulfation activity in the females was only about 20% of that of the males. However, kidney and brain did not show this decrease in T3 sulfation. Similarly, hepatic T3 sulfate (T3S) desulfation activity was significantly reduced in the liver of the female rat (P < .001), whereas the activity in the kidney was either similar to (experiment I) or higher than (experiment II) that in the male, and the activity in the brain was similar in the two sexes. The mean serum T3S concentration in the female rat was no greater than 25% of the corresponding value measured in the male rat. The mean serum thyroxine (T4) concentration in female rats was similar to that in age-matched males (experiment I), whereas it was somewhat lower than that in weight-matched males (P < .05, experiment II). No significant difference in the mean serum T3 concentration was observed in rats of female and male sex. However, the mean serum thyrotropin (TSH) concentration in the female rat was significantly lower than that in the male.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Thyromimetic effects of 3,5,3'-triiodothyronine sulfate in hypothyroid rats.

Several parameters of the effects of thyroid hormone were examined in hypothyroid thyroidectomized (Tx) rats treated with T3 sulfate (T3S) or T3 [0.46 (low dose) or 2.3 (high dose) nmol/day for 10 days, ip]. Tx rats showed a marked degree of growth retardation, which improved significantly after treatment with both doses of T3S and T3. The mean serum GH level was markedly reduced in Tx rats, and it improved significantly to similar levels after treatment with the high dose of T3S and the low dose of T3. Type I monodeiodinase (MD) activity was markedly reduced in liver and kidney tissues of Tx rats. It increased significantly in Tx rats treated with the high dose of T3S; the latter values were similar to those observed in Tx rats treated with the low dose of T3. Hepatic and renal type I MD activities increased to supranormal levels in Tx rats treated with the high dose of T3. Cardiac outer ring (5') monodeiodination of 3',5'-diiodothyronine to 3'-monoiodothyronine was also significantly reduced in Tx rats, but it improved significantly only after treatment with the high dose of T3. Type III 5-MD activity was significantly reduced in the cerebral cortex of Tx rats. It was restored to normal in Tx rats treated with the high dose of T3S and both doses of T3. Serum TSH, markedly elevated in Tx rats, was appreciably reduced only in rats treated with the high dose of T3. In another study, significant suppression of serum TSH was observed when Tx rats were treated with T3S (11.5 nmol/day) or T3 (2.3 nmol/day) for 3 days. We conclude that administration of T3S to hypothyroid rats produces thyromimetic effects, with a potency approximately one fifth that of T3.

Animals

A study of the 3,5,3'-triiodothyronine sulfation activity in the adult and the fetal rat.

We have employed a new in vitro assay for study of the T3 sulfation activity in rat tissues. The assay measures by RIA the generation of T3 sulfate (T3S) during incubation of T3 with cytosol of rat tissues as the source of phenol sulfotransferase(s) and 3-phosphoadenosine-5'-phosphosulfate as the sulfate donor. The conversion of T3 to T3S proceeded rapidly for 30 min at 37 C, and the optimal pH of the reaction was 8.0. Heating the cytosol at 44 C for 15 min decreased T3S production to 63% of its value at 37 C. T3 sulfation activity was plentiful in rat liver, brain, and kidney, but little activity was demonstrable in other tissues. The Km and maximum velocity of the hepatic conversion of T3 to T3S were 114 microM and 159 pmol/mg protein.h, respectively. There was a marked inhibition of the conversion of T3 to T3S with salicylamide, 3'-monoiodothyronine, thyronine, and rT3; the IC50 of these inhibitors approximated 15, less than 0.1, 9.5, and 43 microM, respectively. On day 17 of gestation, the T3 to T3S conversion activity was more abundant in fetal skin than in other fetal tissues. However, the activity decreased in fetal skin while it increased in fetal liver, kidney, and brain nearer to term on day 20. Placenta demonstrated lower T3 to T3S conversion activity than several fetal or maternal tissues. There was no effect of hypothyroidism or hyperthyroidism on T3 sulfation activity. We conclude that T3 sulfation activity in the rat is 1) most abundant in liver, kidney, and brain tissues of the adult; 2) inhibited more avidly by 3'-monoiodothyronine than other thyronines; 3) very abundant in fetal skin early in gestation; and 4) little affected by the thyroidal status of the animal.

Animals

A radioimmunoassay for measurement of thyroxine sulfate.

A highly sensitive, specific, and reproducible RIA has been developed to measure T4 sulfate (T4S) in ethanol extracts of serum. rT3 sulfate (rT3S) cross-reacted 7.1%, and T3S cross-reacted 0.59% in the RIA; T4, T3, rT3, and 3,3'-diiodothyronine cross-reacted 0.004% or less. The recovery of nonradioactive T4S added to serum averaged 95%. The detection threshold of the RIA was 18 pmol/L. The coefficient of variation averaged 6.9% within an assay and 12% between assays. T4S was bound by T4-binding globulin and albumin in serum. The free fraction of T4S in four normal sera averaged 0.06% compared to a value of 0.03% for T4 (P < 0.001). The serum concentration of T4S was (mean +/- SE) 19 +/- 1.2 pmol/L in normal subjects, 33 +/- 10 in hyperthyroid patients with Graves' disease, 42 +/- 15 in hypothyroid patients, 34 +/- 6.9 in patients with systemic nonthyroidal illnesses, 21 +/- 4.3 in pregnant women at 15-40 weeks gestation, and 245 +/- 26 in cord blood sera of newborns; the value in the newborn was significantly different from normal (P < 0.001). The mean concentration of T4S in amniotic fluid samples at 15-38 weeks gestation was 106 +/- 22 pmol/L (cf. normal adults; P < 0.001). Administration of sodium ipodate (Oragrafin; 3 g, orally) to hyperthyroid patients was associated with a transient increase in serum T4S. The T4S content of the thyroid gland was less than 1/4000th that of T4. We conclude that 1) T4S is a normal component of human serum, and its levels are markedly increased in newborn serum and amniotic fluid; and 2) the sulfation pathway plays an important role in the metabolism of T4 in man.

Blood Proteins

A study of the serum 3,5,3'-triiodothyronine sulfate concentration in normal and hypothyroid fetuses at various gestational stages.

We have studied T3 sulfate (T3S) levels, blindly, in coded plasma samples from 21 normal and 3 hypothyroid fetuses at different stages of gestation (19-42 weeks). Fetal plasma samples were obtained by cordocentesis. T3S was detectable in all samples studied, with values ranging from 50-294 (mean +/- SD, 130 +/- 62 pmol/L). Plasma T3S was low (< 45 pmol/L) in all 4 normal adult control subjects studied simultaneously; serum T3S ranged from less than 20 to 130 in another set of 18 control subjects (mean +/- SD, 63 +/- 32 pmol/L). Fetal T3S values were positively correlated with gestational age (r = 0.43; P < 0.05), but not with free T4 (FT4), FT3, or TSH values. In the 3 hypothyroid fetuses at 31, 38, and 40 weeks gestation, respectively, plasma TSH was elevated (26, 98, and 24 mU/L, respectively), FT4 was low (10, 6.7, and 7.5 pmol/L, respectively), and FT3 was normal or high (3.2, 8.2, and 2.2 pmol/L, respectively). However, T3S values in hypothyroid fetuses (88, 133, and 252 pmol/L, respectively) were similar to those in normal fetuses at corresponding gestational ages. We conclude that 1) T3S is detectable in fetal circulation from at least 19 weeks gestation, and its concentration increases with fetal-age; 2) plasma T3S concentrations in the fetus at 19-40 weeks gestation are at least comparable to but generally higher than those in the adult; and 3) plasma T3S levels in hypothyroid fetuses are similar to those in normal fetuses. Recent studies demonstrating the ability of some fetal rat tissues (e.g. cerebral cortex) to desulfate T3S to T3 have suggested a possible role of T3S as a source of T3. Normal T3S in fetal hypothyroidism suggests that T3S may contribute to attenuation of the effects of hypothyroidism during intrauterine life.

Embryonic and Fetal Development

The development of a radioimmunoassay for reverse triiodothyronine sulfate in human serum and amniotic fluid.

Sulfated iodothyronines including T4-sulfate (T4S) and T3-sulfate (T3S) have been identified in human serum and amniotic fluid. Little is known, however, about the existence of sulfate conjugation of reverse T3 (rT3S) in man. In this report, we employed a novel, sensitive, and specific rT3S RIA to address this question. The rabbit antiserum to rT3S was highly specific; T4, T3, rT3, and 3,3'-T2 showed less than 0.002% cross-reaction with the antiserum. Only T4S and T3S cross-reacted significantly (0.3% and 0.01%, respectively); other analogs cross-reacted less than 0.0001%. The detection threshold of the RIA was 14 pmol/L (1.0 ng/dL). The mean serum rT3S concentration (pmol/L) was 40 in euthyroid subjects. Values were similar in hypothyroid patients (38) and pregnant women (52) but significantly (P < 0.01) elevated to 176 in hyperthyroid patient, 74 in patients with nonthyroid illnesses, and 684 in cord sera of newborns. Serum rT3S increased significantly in hyperthyroid patients 1 day after administration of 1 g sodium ipodate orally. Reverse T3S was detected consistently in amniotic fluid at 14 to 22 weeks of gestation and showed a marked rise 1-3 weeks after intraamniotic administration of 500-1000 micrograms T4. The various data suggest that: (1) rT3S is a normal component of human serum and amniotic fluid; (2) it is derived from metabolism of T4 or rT3; (3) circulating rT3S increases in hyperthyroidism and in circumstances where type I 5'-monodeiodinating activity is low, e.g. nonthyroid illnesses, fetal life, and after administration of ipodate.

Amniotic Fluid

An update on management of differentiated thyroid carcinoma.

While some may still favor lobectomy, most experts recommend total thyroidectomy for DTC followed by radioablation of thyroid remnant with 131I. After such a treatment, serum Tg level serves as a useful marker of metastases of DTC. Radioiodine (131I) is a reasonable good treatment for small (mg in weight) deposits of metastases. However, large lesions, and those in the lungs and bones, do not respond well to clinically "safe" doses of 131I. Some experts suggest that employment of radiation dose based approach to 131I may improve the outcome of treatment of DTC. Agents that enhance the sensitivity of the tissues to radiation effects of 131I should be helpful and research needs to be encouraged in that area.

Combined Modality Therapy

Analysis of nuclear 3,3',5-triiodothyronine receptor in the brown adipose tissue (BAT) of the postnatal lamb.

Postnatal thermogenesis in sheep is associated with increased sympathoadrenal activities, a T3 surge and an enhanced brown adipose tissue (BAT) type II 5'-monodeiodinating (5'-MDI) activity. The latter peaks 3-4 days after birth and is known to be important in generating intracellular T3 for nuclear receptor binding. In order to further investigate the mechanism(s) responsible for neonatal thermogenesis, thyroid hormone nuclear receptor (T3NR) binding characteristics were quantified in lamb BAT from newborn (NB) to 30d of postnatal age. Maximal binding capacities (MBC, mean +/- SEM fmoles T3/mg DNA) in BAT showed a decrease as studied by ANOVA during the first 11 days (NB to 1d, 148 +/- 24 [N = 5, p < 0.01, cf. 3-5d group]; 3-5 d, 61 +/- 5.5 [N = 5]; 10-11d, 72 +/- 9.1 [N = 4]). Afterwards, MBC increased at 30d (196 +/- 32, N = 4, p less than 0.01, cf. 3-5d group). BAT T3NR binding affinities (10(9) M-1) were comparable in all age groups studied (NB-1d, 2.8 +/- 0.3; 3-5d, 3.4 +/- 0.3; 10-11d, 4.0 +/- 1.1; 30d, 2.4 +/- 0.4). The data suggest that the postnatal surge in T3 and type II 5'-MDI is accompanied with a concurrent decrease in MBC of BAT T3NR. The latter may represent a down-regulation of T3NR presumably in an attempt to regulate the overall effect of thyroid hormone in neonatal thermogenesis.

Adipose Tissue, Brown

Metabolism of 3,5,3'-triiodothyronine sulfate by tissues of the fetal rat: a consideration of the role of desulfation of 3,5,3'-triiodothyronine sulfate as a source of T3.

We have recently demonstrated that serum concentration of 3,5,3'-triiodothyronine sulfate (T3S) is markedly elevated in the human newborn at a time when serum 3,5,3'-triiodothyronine (T3) is very low. The present study explores the ability of maternal (19-21 d pregnant) and near-term fetal Sprague-Dawley rat tissues to 1) monodeiodinate T3S and T3 in both the outer and the inner ring and 2) desulfate T3S to T3. Maternal liver microsomes metabolized T3S exceedingly efficiently (compare fetus p less than 0.05). Eighty percent or more of T3S was consumed during its incubation with 360 micrograms/mL microsomes for 2 h. The majority of the consumption of T3S by adult liver microsomes occurred by its 5'-monodeiodination to I-; little inner-ring monodeiodination to 3,3'-diiodothyronine was demonstrable. In fetal liver microsomes, however, over 75% of the substrate T3S remained unchanged after a 2-h incubation. T3 was metabolized similarly moderately by fetal and maternal liver microsomes. Brain microsomes metabolized T3S poorly in both the mother and the fetus. Over 90% of substrate T3S remained unchanged after a 2-h incubation in each case. Interestingly, brain microsomes metabolized T3 more rapidly than T3S (p less than 0.05). In the fetus, desulfation of T3S to T3 was clearly evident only in microsomes from the liver and the brain; in the adult, it was plentiful in many tissues. Fetal liver and brain tissues metabolize T3S poorly, and both actively desulfate T3S to T3. These data and those indicating high serum T3S in the fetus suggest that T3S is a local source of T3 in critical tissues in the fetus and possibly in adults with the low T3 syndrome.

Animals

A study of the characteristics of the rat placental iodothyronine 5-monodeiodinase: evidence that it is distinct from the rat hepatic iodothyronine 5'-monodeiodinase.

Recent studies have demonstrated that rat liver type I iodothyronine 5'-monodeiodinase (5'-MD) characteristically contains selenocysteine. The present study was undertaken to characterize rat placental type III iodothyronine 5-MD and to compare it with 5'-MD. Solubilized rat placental microsomes were delipidated by carboxymethyl cellulose-Sephadex chromatography. Phospholipids and proteins were recovered in two distinct peaks, which did not show 5-MD activity. 5-MD activity was recovered fully, however, by combining the two components (phospholipids and protein) and partially after the addition of exogenous phospholipids to protein. Tissue selenoproteins were labeled by injection of radioactive selenium (75Se; 50 microCi, iv; on days 5, 10, and 15 of gestation) to pregnant rats. Subcellular fractions of maternal and fetal tissues were resolved by sodium dodecyl sulfate-polyacrylamide gel electrophoresis, followed by autoradiography. No specific seleno-labeled proteins were evident in the microsomes of placenta or maternal or fetal brain. A 27- to 29-kilodalton (kDa) band previously suggested to be 5'-MD was observed, however, in maternal liver and kidney microsomes. Aurothioglucose inhibited rat placental 5-MD, but the dose required for 50% inhibition was over 50-fold greater than that for Se-containing hepatic 5'-MD (430 vs. 8 nM). The mechanism of the inhibition was noncompetitive for 5-MD, whereas it was competitive for 5'-MD. A synthetic peptide of 16 amino acids corresponding to the carboxy-terminal portion of 5'-MD was synthesized, and rabbits were immunized with the peptide-BSA conjugate. Western blots studies using the rabbit antiserum showed one specific 29-kDa band in rat liver microsomes. However, no specific bands were observed in 5-MD-rich placental or fetal brain microsomes. Bromoacetyl T3 (BrAcT3) was a potent inhibitor of rat placental 5-MD. Affinity labeling of solubilized rat placental microsomes with [125I]BrAcT3 showed a predominant band of 31 kDa, distinct from the 27- to 29-kDa band found in liver and kidney. The labeling of the 31-kDa band was enhanced by 10 mM dithiothreitol, inhibited 60% by 150 microM T3, and prevented by 40 microM aurothioglucose. A dominant affinity-labeled 31-kDa band was also observed in fetal brain microsomes. Some tissues without 5-MD activity (testes and spleen) also showed weak binding.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

A study of the characteristics of hepatic iodothyronine 5'-monodeiodinase in various vertebrate species.

Rat type I iodothyronine 5'-monodeiodinase (5'-MD) has recently been shown to be a selenium-containing enzyme. In the present study we compared the characteristics of the 5'-MD from liver microsomes of rat, mouse, guinea pig, man, beef, pig, sheep, and chicken. Aurothioglucose (ATG), a known potent inhibitor of selenium-containing enzymes, was a consistent, very potent inhibitor of 5'-MD activity in all species studied, with a 50% inhibitory dose in the narrow range of 5.8-12 nM. ATG was also a potent and selective inhibitor of [125I]bromoacetyl T3 affinity labeling of 5'-MD. Thus, in the species studied, only one affinity-labeled band, which was selectively displaced by gold, was identified. The mol wt of the affinity-labeled proteins in various liver microsomal preparations ranged between 28-36 kilodaltons (kDa), and the ATG concentrations necessary for the inhibition of affinity labeling of microsomes with [125I]bromoacetyl T3 were comparable to those required for inhibition of the enzyme activity in all species except the pig. The pig liver microsomes demonstrated a dominant affinity-labeled 36-kDa band, but much higher ATG concentrations (micromolar) were required for inhibition of affinity labeling. In view of the potent inhibition of pig liver 5'-MD activity by ATG, it appears unlikely that this band in the pig corresponds only to the substrate-binding site of 5'-MD, but this issue requires further study. A synthetic peptide of 16 amino acids corresponding to the carboxy-terminal portion of rat 5'-MD was synthesized, and rabbits were immunized with the peptide-BSA conjugate. Western blot studies using the rabbit antiserum showed one specific 29-kDa band in rat liver and kidney microsomes and thyroid homogenate. No specific bands were observed in other adult rat tissues studied or in fetal rat liver. No specific bands were observed when Western blot studies with antibody against the carboxy-terminal portion of rat 5'-MD were performed in liver microsomes from species other than the rat. In conclusion, our studies indicate that selenium is a likely component of type I 5'-MD in all species studied. However, substantial structural differences exist between the rat type I 5'-MD and that in various other species.

Affinity Labels

A study of metabolism of deaminated and sulfoconjugated iodothyronines by rat placental iodothyronine 5-monodeiodinase.

The interaction of the rat placental type III iodothyronine 5-monodeiodinase (5-MD) with acetic acid (AA), propionic acid (PA), and sulfoconjugate (SA) derivatives of thyroid hormones has been investigated in comparison with hepatic iodothyronine type I MD. PA and AA derivatives of both T3 and T4 were potent inhibitors of 5-monodeiodination of [125I]T3 by rat placental microsomes. 3,5,3'-Triiodothyroacetic acid (T3AA) and 3,5,3'-triiodothyropropionic acid (T3PA) were comparable to T3 in their ability to inhibit 5-monodeiodination of [125I]T3, whereas T4AA and T4PA were more potent than T4. 3,5,3'-triiodothyrosulfonic acid (T3SA), T4SA, and rT3SA caused little or no inhibition of placental 5-MD activity. Among various analogs of T3 or T4, the order of relative potency of inhibition of hepatic 5'-MD was PA > AA > SA > parent iodothyronine. The metabolism of T3 and its derivatives by rat placental microsomes was studied by determining the rates of disappearance of the various substrates and the production of the metabolites generated by inner ring monodeiodination of the substrate. T3AA and T3PA were metabolized at a rate comparable to that of T3. Under the same conditions, essentially 100% of T3SA remained intact. Kinetic studies of placental inner ring monodeiodination of T3, T3AA, and T3PA demonstrated comparable values for Km (1.3, 1.8, and 2.3 nM, respectively) and maximum velocity (44, 57, and 74 fmol/micrograms.h, respectively). All derivatives of T3 studied were deiodinated by hepatic type I MD more avidly than the parent iodothyronine. Our data suggest that 1) deamination does not appreciably influence, while sulfoconjugation markedly inhibits type III 5-monodeiodination of T3; and 2) deamination may be even more conducive to degradation of thyroid hormone than sulfoconjugation.

Animals

A radioimmunoassay of rat type I iodothyronine 5'-monodeiodinase.

A highly sensitive, specific, and reproducible RIA has been developed to measure rat type I iodothyronine 5'-monodeiodinase (5'-MD). A 16-amino acid peptide (LAP-744) corresponding to a portion of the carboxy-terminal region of the rat liver 5'-MD, as predicted from its cDNA, was synthesized, and rabbits were immunized with the peptide-BSA conjugate. In a final dilution of 1:15,000, our anti-5'-MD antibody bound about 30-35% of a tracer amount of [125I]LAP-744. The detection threshold of the RIA approximated 0.08 pmol LAP-744 or an equivalent amount of 0.08 pmol 5'-MD. Rat liver and kidney microsomes produced dose-response curves that were essentially parallel to that of LAP-744. No inhibition of binding of [125I]LAP-744 to antibody was produced by 0.3 mg or less rat microsomal proteins from testes, heart, brain, muscle, spleen, intestine, lung, placenta, or fetal liver. Recovery of nonradioactive LAP-744 added to spleen microsomes averaged 103%. The coefficient of variation averaged 4% within an assay and 11% between assays. In 16 normal rats studied, the mean (+/- SD) 5'-MD content was 2.4 +/- 0.22 pmol/mg protein in liver microsomes and 2.5 +/- 0.27 pmol/mg protein in kidney microsomes. Fasting of the rat for 2-4 days was associated with a significant reduction in both the activity and the content of the 5'-MD in liver and kidney. Hypothyroidism was also associated with a significant decrease in the activity and content of 5'-MD in both tissues. Significant opposite changes were observed in these parameters in hyperthyroidism. Treatment of the rat with sodium ipodate for 3 days was associated with a significant decrease in both the activity and the content of 5'-MD in liver and kidney. A similar treatment of the rat with propylthiouracil induced a clear reduction in the activity of 5'-MD in liver and kidney, but the content of the enzyme was significantly increased in both tissues. Rats treated with aurothioglucose for 3 days exhibited a significant decrease in 5'-MD activity in liver and kidney microsomes, whereas the tissue content of 5'-MD was not affected. A similar treatment of the rat with methimazole had no significant effect on either the activity or the content of 5'-MD.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence

Evidence that the human placental 5-monodeiodinase is a phospholipid-requiring enzyme.

Gel filtration (GFI) of the solubilized human placental microsomes (SHPMP) performed in an Ultrogel AcA-34 column in the presence of 1 mM 3-(3-cholamidopropyl)dimethylammonio-1-propane sulfonate (CHAPS) plus 10 mM n-octyl-beta-D-glucopyranoside (beta-OG) demonstrated two main protein peaks. The 5-Monodeiodinase (5-MD) activity measured by the conversion of [125I]T3 to [125I]3,3'-diiodothyronine in a 2- to 18-h incubation at 37 C in the presence of 10 mM dithiothreitol was detected only in the first peak, and the specific activity was increased about 9 times over that of the starting SHPM. The fractions containing most of the 5-MD activity were filtered through a second Ultrogel AcA34 column (GFII) in the presence of 2 mM CHAPS plus 20 mM beta-OG. In these conditions, 5-MD activity was detected in low amounts only in the second peak. Cation exchange chromatography on carboxymethylcellulose-Sephadex with a starting buffer of pH 5 containing 2 mM CHAPS plus 20 mM beta-OG, followed by a pH 8 buffer, showed a very small OD peak at the void volume (P) and a second peak with about 95% of the protein (E). However, no 5-MD activity was detectable in either peak, while a nearly complete restoration of the enzyme was achieved when P and E were mixed. 5-MD was also completely restored by combination of P with the first inactive peak of GFII. When P was subjected to sodium dodecyl sulfate-polyacrylamide gel electrophoresis, no distinct protein bands were observed. After ethanol-ether extraction and digestion with H2SO4 and H2O2, inorganic phosphate was detectable only in P, suggesting the presence of phospholipids. We next studied the effect of phosphatidyl serine (PS), phosphatidyl choline (PC), or phosphatidyl ethanolamine (PE) on 5-MD activity of E (5 micrograms protein/mL). The 5-MD activity was recovered in a dose-response manner with all phospholipids studied, but PS was the most effective agent for reconstitution. At 1 microgram/mL, 5-MD activity, expressed as a percentage of the total P plus E activity, was 101% for PS, 35% for PC, and 20% for PE. The addition of rat liver or kidney microsomes (80 micrograms/mL) to E (5 micrograms/mL) provided recoveries of 79% and 48%, respectively, of the total P plus E activity. The following conclusions were reached. 1) Phospholipids are essential for the 5-MD activity of SHPMP. 2) CHAPS and beta-OG may extract phospholipids from the membranes without denaturation of the 5-MD.(ABSTRACT TRUNCATED AT 400 WORDS)

Cholic Acids