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Biomedical subjects

D H Polk

Publications and source records attributed to D H Polk.

At least 19 recordsLinked to original sources

Antenatal glucocorticoids alter postnatal preterm lamb renal and cardiovascular responses to intravascular volume expansion.

We assessed renal and cardiovascular function in preterm newborn lambs after antenatal glucocorticoid exposure. Pregnant ewes were randomly assigned to receive betamethasone or saline via either direct fetal or maternal injection at 122 d gestation. Lambs were delivered 15 h later, and cardiovascular and renal function was assessed. Two hours after delivery, baseline urine flow, urinary sodium excretion, and urinary osmolar clearance were similar in all groups. Volume expansion (saline, 2.5% of body weight, for 10 min) increased values for urine flow (0.23 +/- 0.04 to 0.58 +/- 0.09 mL x min(-1) x kg(-1)), urinary sodium excretion (29.7 +/- 5.8 to 76.2 +/- 12.3 microEq x min(-1) x kg(-1)), and osmolar clearance (12.2 +/- 1.2 to 24.3 +/- 1.6 mL/100 mL GFR) in the fetal group. Increases in urine values were also observed in the maternal group, but control values did not change significantly. Mean arterial pressure was increased in both betamethasone-treated groups relative to controls. Short-term antenatal betamethasone exposure 1) augments preterm newborn kidney adaptive responses to acute volume expansion, and 2) increases postnatal blood pressure in preterm newborn lambs.

Aldosterone↗

Fetal-to-maternal transfer of 3,3',5-triiodothyronine sulfate and its metabolite in sheep.

Earlier studies have shown that sulfoconjugation is a major pathway of thyroid hormone metabolism in fetal mammals. To assess the placental transfer of sulfoconjugates in the pregnant sheep model, we measured 3,3',5-triiodothyronine (T(3)) sulfate (T(3)S), 3, 3'-diiodothyronine sulfate (T(2)S), and T(3) concentrations in fetal serum and in maternal serum and urine after T(3)S infusion to the fetus (n = 5) or the ewe (n = 6). Maternal infusion of T(3)S did not increase fetal serum T(2)S, T(3)S, or T(3) concentrations. In contrast, fetal infusion of T(3)S produced significant increases in maternal serum T(2)S and T(3)S but not T(3) concentrations. Fetal T(3)S infusion also increased maternal urine excretion of T(3)S. However, the 4-h cumulative maternal urinary excretion of T(2)S and T(3)S after fetal T(3)S infusion was less than the excretion observed after fetal infusion of equimolar amounts of T(3) in our previous study. It is concluded that fetal serum T(2)S and T(3)S can be transferred to maternal compartments. However, compared with T(3), these sulfoconjugates may be less readily transferred.

Animals↗

Preterm lung function after retreatment with antenatal betamethasone in preterm lambs.

OBJECTIVE: We hypothesized that two doses of betamethasone administered 1 week apart would further enhance postnatal pulmonary function in preterm lambs (compared with a single dose). STUDY DESIGN: Fetal sheep (121 days' gestation) randomly received saline solution or betamethasone (0.5 mg/kg) as a single injection. Six days later fetal sheep were retreated with either saline solution or corticosteroid, and postnatal lung function was evaluated 1 day later. RESULTS: Betamethasone improved compliance and ventilation efficiency index nearly 50%, and total lung volume increased twofold. No effects of treatment-to-delivery interval (1 vs 7 days) or corticosteroid retreatment on pulmonary function were apparent. Although surfactant pool sizes increased as a function of duration of exposure, no additional effect of corticosteroid retreatment was noted. Antenatal betamethasone increased messenger ribonucleic acid levels for the surfactant proteins A and C, and retreatment augmented surfactant protein B messenger ribonucleic acid levels but suppressed surfactant protein A and C messenger ribonucleic acid. CONCLUSION: Improved postnatal lung function resulting from antenatal betamethasone was not augmented by retreatment.

Animals↗

Preterm newborn lamb renal and cardiovascular responses after fetal or maternal antenatal betamethasone.

The optimal dose, route of administration, and treatment-to-delivery interval necessary to induce beneficial extrapulmonary effects of glucocorticoids are not known. Pregnant ewes (127 days gestation) were randomized to receive maternal or fetal intramuscular injections of betamethasone (0.2 or 0.5 mg/kg body wt) or saline 24 h before cesarean delivery of their lambs. Three hours after delivery, low-dose maternal vs. control lamb mean arterial pressure [64 +/- 4 vs. 47 +/- 2 (SE) mmHg], glomerular filtration rate (1.7 +/- 0.2 vs. 0.7 +/- 0.1 ml.min-1.kg-1), and total renal sodium reabsorption (219 +/- 31 vs. 85 +/- 12 mueq.min-1.kg-1) were increased. Comparable increases were observed in the high-dose maternal and fetal groups without effects in the low-dose fetal group. This study provides the first quantitative data demonstrating that even short-term (24-h) antenatal betamethasone exposure alters preterm newborn cardiovascular and renal functions. These responses are route and dose dependent and are comparable to glucocorticoid-induced maturational effects after longer-term antenatal exposure.

Administration, Topical↗

Postnatal lung function and protein permeability after fetal or maternal corticosteroids in preterm lambs.

We evaluated postnatal lung function and intravascular albumin loss to tissues of 123-days-gestation preterm surfactant-treated and ventilated lambs 15 h after direct fetal (n = 8) or maternal (n = 9) betamethasone treatment or saline placebo (n = 9). The betamethasone-treated groups had similar increases in dynamic compliances, ventilatory efficiency indexes, and lung volumes relative to controls (P < 0.05). The losses of 125I-labeled albumin from blood, a marker of intravascular integrity, and the recoveries of 125I-albumin in muscle and brain were similar for control and betamethasone-exposed lambs. Betamethasone-treated lambs had lower recoveries of 125I-albumin in lung tissues and in alveolar washes than did controls (P < 0.01). Although blood pressures were higher for the treated groups (P < 0.05), all groups had similar blood volumes, cardiac outputs, and organ blood flows. Maternal or fetal treatment with betamethasone 15 h before preterm delivery equivalently improved postnatal lung function, reduced albumin recoveries in lungs, and increased blood pressures. However, prenatal betamethasone had no effects on the systemic intravascular losses of albumin or did not change blood volumes.

Adrenal Cortex Hormones↗

Combined effects of fetal beta agonist stimulation and glucocorticoids on lung function of preterm lambs.

We asked whether a single-dose fetal treatment strategy using betamethasone plus either a long-acting beta 2 agonist (formoterol) or betamethasone plus agents that elevate intracellular cyclic adenosine monophosphate (isobutyl methylxanthine and dibutyryl-cyclic adenosine monophosphate) would augment the effects of prenatal betamethasone on postnatal lung function. Preterm lambs were treated with 0.5 mg/kg beta-methasone or betamethasone plus the other agents and delivered 48 h after treatment. The postnatal lung function as assessed by compliance, ventilatory efficiency, and lung volumes at 40 min of age was improved by prenatal betamethasone and improved further by combination treatment, although the augmented responses were not significantly greater than with betamethasone alone. Fatty acid synthase protein and enzymatic activity were not increased by betamethasone or combined treatments, in contrast to responses reported for other animal models. There were no effects of glucocorticoids or the combined treatments on surfactant. Stimulation of the beta 2 agonist system did not augment postnatal lung function significantly above that noted for betamethasone alone with the agents, doses, and duration of exposures tested.

1-Methyl-3-isobutylxanthine↗

Repetitive prenatal glucocorticoids improve lung function and decrease growth in preterm lambs.

We evaluated the effects of multiple fetal exposures to glucocorticoids on postnatal lung function and growth. Ewes were randomized to receive 1 to 4 doses of 0.5 mg/kg betamethasone or saline placebo at 7 d intervals from 104 d to 118 d and at 124 d gestation. All lambs were delivered preterm at 125 d gestation, and postnatal lung function was evaluated. There were sequential improvements in compliance, ventilation efficiency, and lung volumes for two, three, and four doses of betamethasone. The maximal effect was a 150% increase in compliance and a 4-fold increase in lung volume after fetal exposure to four doses of betamethasone. However, birth weights decreased (15% after one dose, 19% after two doses, and 27% after three and four doses). There were no changes in lung to body weight ratios, lung dry to wet weight ratios, lung protein to body weight ratios, or lung hyaluronan content. Prenatal glucocorticoid exposure also altered postnatal cortisol, thyroid, and catecholamine plasma levels. Repetitive 7-d interval exposures of fetal lambs to glucocorticoids progressively enhanced postnatal lung function and resulted in growth and endocrine abnormalities.

Animals↗

Thyrotropin-releasing hormone accelerates fetal mouse lung ultrastructural maturation via stimulation of extra thyroidal pathway.

Maternal administration of TSH-releasing hormone (TRH) in the euthyroid mouse accelerates fetal lung ultrastructural maturation. However, the mechanism(s) of TRH in fetal lung development remains unclear; it could be due to its neuroendocrine and/or neurotransmitter effects. Although the neuroendocrine effect of TRH is mediated via stimulation of the fetal pituitary-thyroid axis, the neurotransmitter effect is mediated via stimulation of fetal autonomic nervous system activity. In the hyt/hyt mouse there is a point mutation in the beta subunit of the TSH receptor in the thyroid gland of the Balb-c mouse. In these mice TSH does not bind to its receptors, leading ultimately to the development of primary hypothyroidism, which is transmitted as an autosomal recessive trait. A maturational delay in the lung ultrastructure of the hyt/hyt mouse fetus has been observed. This investigation was undertaken to study the effect of maternal TRH treatment on lung ultrastructural maturation in the hyt/hyt mouse fetus. If the effect of TRH is mediated via stimulation of fetal pituitary-thyroid axis, TRH treatment should not enhance lung maturity in the hyt/hyt fetus and vice versa. Adult hyt/hyt mice made euthyroid by triiodothyronine supplementation were mated to carry hyt/hyt pups. Saline or TRH (0.4 or 0.6 mg/kg/dose) was administered to the mother (i.p.) on d 16 and 17 (b.i.d.) and on d 18 of pregnancy 1 h before killing (term, approximately 20 d). The fetal lung electron micrographs were subjected to ultrastructural morphometric analysis of the number of lamellar bodies and glycogen/nuclear ratio in type II cells, and the alveolar/parenchymal ratio by Chalkley point counting with an interactive computerized image analyzer (Optimas, Bioscan). Fetal lungs exposed to the lower dose of TRH (n = 7) showed no significant difference in their ultrastructural maturation when compared with saline-treated controls (n = 5). However, fetal lungs exposed to a higher dose of TRH (n = 6) showed increased numbers of lamellar bodies per type II cell, an increase in the alveolar/parenchymal ratio, larger air spaces, thinner alveolar septa, presence of tubular myelin, and increased numbers of air-blood barriers. We conclude that the effect of TRH in accelerating fetal mouse lung maturation is at least in part mediated via stimulation of extra thyroidal pathways.

Animals↗

Higher lung antioxidant enzyme activity persists after single dose of corticosteroids in preterm lambs.

Although administration of exogenous corticosteroids accelerates the late gestational rise in fetal rat and lamb lung antioxidant enzyme activity, the effect of dosing intervals on these responses remains uncertain. We studied the persistence and efficacy of the antioxidant response in fetal lamb lung to a single fetal dose of corticosteroids injected between 121 and 127 days gestational age. Fetal lambs received 0.5 mg/kg of betamethasone (n = 35) or saline (n = 26) by fetal intramuscular injection 24 h, 48 h, 4 days, or 7 days before preterm delivery at 128 days gestation (term = 150 days). After delivery, the lambs were ventilated for 40 min and killed. Total superoxide dismutase, catalase, glutathione peroxidase activities, and lipid hydroperoxide levels were measured, using homogenized lung. The saline-injected controls were similar at all time points. Lung antioxidant enzyme activity was consistently higher and lipid hydroperoxide presence was lower in the betamethasone-treated groups. We conclude that the positive effect of a single fetal dose of betamethasone on lung antioxidant enzyme activity occurs within 24 h after exposure, persists over a period of 7 days without a major change in the magnitude of the response, and leads to a reduction in lipid hydroperoxide formation during immediate postdelivery oxygen exposure.

Animals↗

Effect of interval from fetal corticosteriod treatment to delivery on postnatal lung function of preterm lambs.

The effect of altering the interval from treatment to delivery on postnatal lung function of the preterm lamb is unknown. We treated groups of 8-10 singleton fetal sheep with 0.5 mg/kg betamethasone by fetal injection and evaluated postnatal lung function 40 min after preterm delivery at 123 days gestation 2 days after treatment or at 128 days gestation 2, 4, and 7 days after treatment relative to groups of 4-8 saline-injected control animals. At 123 days, betamethasone significantly improved arterial PCO2, dynamic thoracic compliance, and ventilatory efficiency index and doubled lung gas volume relative to a control group. Fetal treatment with betamethasone 2, 4, or 7 days before delivery at 128 days also improved these same indicators of lung function relative to controls, and the magnitude of the improvements was the same for all indicators and independent of treatment-to-delivery interval. Betamethasone suppressed the normal postnatal increase in plasma cortisol after 2 and 4 days of exposure but not after 7 days of exposure. Betamethasone also increased fetal and postnatal triiodothyronine concentrations after 2 days of exposure but not at 4 or 7 days of exposure. Although the hormone effects were transient, postnatal lung functional responses to betamethasone persisted over the 2- to 7-day interval from treatment to delivery.

Adrenal Cortex Hormones↗

Postnatal lung responses and surfactant function after fetal or maternal corticosteroid treatment.

To evaluate the effect of dose and route of administration of betamethasone on subsequent postnatal lung function, pregnant ewes were randomized at 127 days gestation to receive maternal or fetal intramuscular doses of 0.2 or 0.5 mg/kg body wt betamethasone or saline. At delivery 24 h later, preterm lambs were treated with surfactant and ventilated for 4 h. The lambs exposed to 0.5 mg/kg betamethasone by either the maternal or fetal route had higher Po2 values, lung volumes, dynamic compliances, and ventilatory efficiency indexes, as well as lower ventilatory pressure requirements, than did control animals (P < 0.05). There were no consistent improvements in postnatal lung function for the 0.2 mg/kg dose given to the fetus or ewe. However, measurements of radiolabeled protein in the total lung were decreased in all treatment groups (P < 0.01). Surfactant that was recovered from all groups of lambs and fractionated to isolate the large-aggregate fraction improved lung volumes in preterm rabbits to a greater degree than the surfactant used to treat the lambs (P < 0.05). Surfactant recovered from both groups treated with 0.5 mg/kg betamethasone was less sensitive to inactivation by plasma than was surfactant from the 0.2 mg/kg groups or the controls (P < 0.01). Fetal or maternal treatment with 0.5 mg/kg betamethasone improved postnatal lung function and increased the resistance of surfactant to inactivation.

Adrenal Cortex Hormones↗

Single dose fetal betamethasone administration stabilizes postnatal glomerular filtration rate and alters endocrine function in premature lambs.

UNLABELLED: These studies determined the effects of fetal treatment with betamethasone alone, or in combination with thyroid hormone (thyroxine; T4), on postnatal renal and endocrine adaptations in preterm newborn lambs. Ovine fetuses (126 d of gestation; term = 150 d) received single, ultrasound-guided intramuscular injections of saline, 0.5 mg/kg betamethasone (Celestone Soluspan, or 0.5 mg/kg betamethasone plus 60 micrograms/kg T4. After 48 h, lambs were delivered, treated with surfactant (Survanta, 100 mg/kg), and ventilated for 3 h. Due to maintained urine flow in the betamethasone-treated animals and a significant decrease in the saline group, betamethasone versus saline urine flow values (0.11 +/- 0.03 versus 0.03 +/- 0.004 mL.min-1.kg-1) were significantly elevated by the end of studies. GFR (1.5 +/- 0.3 versus 0.8 +/- 0.2 mL.min-1.kg-1) and mean blood pressure (61 +/- 4 versus 42 +/- 3 mm Hg) values also were higher in the betamethasone-treated animals. Although renal blood flow, renal plasma flow, and fractional sodium excretion rates did not differ, betamethasone versus saline values for the filtration fraction (11.9 +/- 1.5 versus 7.4 +/- 1.5%) and total sodium reabsorption (196 +/- 38 versus 81 +/- 16 microEq.min-1.kg-1) were increased. Betamethasone versus saline treatment also was associated with significant reductions in plasma angiotensin II (125 +/- 23 versus 550 +/- 140 pg/mL) and AVP (116 +/- 19 versus 230 +/- 77 pg/mL) levels. Overall, the effects of combined betamethasone + T4 treatment were similar to the effects of betamethasone alone. CONCLUSIONS: 1) fetal betamethasone injection 48 h before delivery stabilizes GFR and significantly alters endocrine function in preterm newborn lambs, and 2) the addition of T4 does not augment betamethasone-induced renal and endocrine responses.

Angiotensin II↗

Postnatal lung function in preterm lambs: effects of a single exposure to betamethasone and thyroid hormones.

OBJECTIVE: We determined the effect of a single direct fetal injection of corticosteroid and thyroid hormones on postnatal pulmonary function in preterm lambs. STUDY DESIGN: Initially fetal sheep (126 days' gestation) randomly received saline solution, betamethasone (Celestone Soluspan, 0.5 mg/kg), betamethasone plus triiodothyronine (5 micrograms/kg), or betamethasone plus thyroxine (15 micrograms/kg) as a single injection. Forty-eight hours later (128 days' gestation) the fetuses were delivered and ventilated for 50 minutes. In a second protocol fetuses were delivered at 128 days' gestation, after only 24 hours of hormone exposure. RESULTS: Betamethasone treatment improved compliance nearly twofold after 24 or 48 hours of exposure. Efficiency of ventilation also improved after steroid therapy; this effect was augmented 48 hours after thyroxine exposure (but not triiodothyronine). No thyroxine effect was noted after 24 hours of exposure. Maximal lung volume increased by 80% after steroid treatment and doubled in response to combination betamethasone and thyroxine therapy. Alveolar pool sizes of saturated phosphatidylcholine and surfactant protein A were comparable for all groups exposed for 48 hours. CONCLUSIONS: A single fetal exposure to betamethasone improves postnatal pulmonary function after 24 or 48 hours. Addition of thyroxine (but not triiodothyronine) augments this effect at 48 hours.

Animals↗

Exogenous surfactant function in very preterm lambs with and without fetal corticosteroid treatment.

We have asked whether the function of a bovine source surfactant frequently used clinically (Survanta) could be enhanced after exposure to the very preterm lung when the surfactant was subsequently tested in vivo in preterm surfactant-deficient rabbits. We also evaluated whether there would be effects resulting from fetal treatment with 0.5 mg/kg betamethasone given 48 h before delivery of lambs at 121 days gestational age. The fetal corticosteroid treatment significantly improved gas exchange, increased compliance, increased functional residual capacity, decreased vascular-to-alveolar protein leak, and increased static lung volumes. However, surfactant from both groups of lambs, recovered by alveolar wash and subsequently fractionated to recover the large-aggregate functional surfactant, was equivalent in function to the Survants given to the lambs when tested in preterm surfactant-deficient rabbits. Addition of plasma to Survanta resulted in high minimum surface tensions in vitro, and this inhibition could be prevented by supplementation of the Survanta with 5 or 10% sheep surfactant. No activation occurred with treatment of the very preterm lung, a result consistent with the lung being too immature to contribute components to the surfactant used for treatment. Fetal corticosteroid treatment had no effect on surfactant function at this gestational age.

Adrenal Cortex Hormones↗

Fetal corticosteroid and T4 treatment effects on lung function of surfactant-treated preterm lambs.

Three groups of sheep fetuses at 125 or 126 d gestational age randomly received a single ultrasound-guided intramuscular injection of saline, 0.5 mg/kg betamethasone, or 0.5 mg/kg betamethasone plus 50 micrograms/kg thyroxine (T4). Forty-eight hours later the fetuses were delivered, treated with a pulmonary surfactant preparation, and ventilated for 3 h. Corticosteroids alone and in combination with T4 increased FRC, compliance, and lung volumes, and decreased the protein leak into the airspace. Saturated phosphatidylcholine pool sizes recovered by alveolar washing were not changed after hormone treatment. To evaluate the function of surfactant recovered from the lambs in vivo, we treated preterm rabbits at 27 d gestational age with the large-aggregate surfactant from alveolar washes. Large-aggregate surfactants and the pulmonary surfactant preparation increased compliances and maximal lung volumes relative to those in untreated preterm rabbits. Large-aggregate surfactants improved compliance more than did the pulmonary surfactant preparation. We conclude that ultrasound-guided single fetal corticosteroid treatment followed by postnatal surfactant improved postnatal lung function in preterm lambs. Addition of T4 did not augment corticosteroid effects. The function of the exogenous surfactant was improved in premature lamb lungs independently of the fetal treatment modality.

Animals↗

Postnatal lung function in lambs after fetal hormone treatment. Effects of gestational age.

We previously found that a single dose of betamethasone in combination with thyroxine given by intramuscular injection to fetal sheep 48 h before preterm delivery at 128 d gestation improved postnatal lung function. We have now asked how the combination of 0.5 mg/kg betamethasone and 15 micrograms/kg T4 given by a single fetal intramuscular injection changes lung response 48 h after treatment at 121 and 135 d gestation. At 121 d gestation the fetal hormone treatment significantly improved postnatal lung function. Compliance increased by 55%, arterial PO2 increased from 39 to 215 mm Hg, PCO2 decreased from 109 to 79 mm Hg, and maximal lung volumes increased by 112%. The hormone treatment decreased the severity of the respiratory failure, although these very preterm lambs still had severe respiratory failure. At 135 d gestation, the fetal hormone treatment decreased the ventilatory pressure requirements that were needed to normalize PCO2 values from 30 to 21 cm H2O. Compliance increased by 40%, and maximal lung volumes increased by 33%. Alveolar or lung tissue, saturated phosphatidylcholine, or alveolar SP-A pool sizes did not change with hormone treatment at 135 d gestation. We conclude that fetal hormone treatment significantly improved postnatal lung function at both gestational ages, although the characteristics of the responses were different.

Animals↗