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Biomedical subjects

K Beharry

Publications and source records attributed to K Beharry.

At least 19 recordsLinked to original sources

Changes in cerebral venous prostanoids during midazolam-induced cerebrovascular hypotension in newborn piglets.

OBJECTIVES: We hypothesized that the effects of midazolam are associated with altered prostanoid synthesis in the newborn piglet during continuous infusion. To test this hypothesis, we examined the effect of midazolam on prostanoid production in the carotid artery and sagittal sinus vein before and during midazolam infusion. DESIGN: Prospective, randomized, controlled, experimental study. SETTING: Research laboratory at Long Beach Memorial Medical Center. SUBJECTS: Fourteen newborn piglets (1-3 days old, 1-1.5 kg) randomly assigned to receive either midazolam or vehicle (5% dextrose) infusion for 6 hrs. INTERVENTIONS: Two groups of animals received either a) a loading dose of 300 microg/kg of midazolam over 15 mins, followed by a continuous intravenous infusion of 100 microg/kg/hr (n = 6), or b) equivalent volume bolus and intravenous infusions of 5% dextrose (control, n = 8). MEASUREMENTS AND MAIN RESULTS: Changes in systemic and cerebral venous hemodynamics, blood gases, and prostanoid (prostaglandin E2, 6-ketoprostaglandin F1 alpha, thromboxane B2) production were measured at baseline, postbolus, and at 0.5, 2, 4, and 6 hrs. Systemic and cerebral venous midazolam concentrations were measured at 0.5, 1, 2, 3, 4, 5, and 6 hrs. Midazolam infusion did not affect systemic hemodynamics or blood gases. In contrast, midazolam infusion significantly reduced sagittal sinus vein blood pressure, PO2, oxygen saturation, and oxygen content. Cerebral fractional oxygen extraction increased and was positively correlated with cerebral fractional midazolam extraction. Concurrently, systemic and sagittal sinus vein plasma prostaglandin E2 concentrations decreased, whereas 6-ketoprostaglandin F1 alpha concentrations increased with midazolam infusion. Thromboxane B2 concentrations increased transiently in the systemic plasma. CONCLUSIONS: Midazolam infusion preceded by a high bolus dose in newborn piglets alters systemic and sagittal sinus vein prostanoid production. It is also associated with changes in sagittal sinus vein blood pressure and cerebral fractional oxygen extraction. These changes may reflect decreased brain perfusion and metabolism during midazolam infusion.

Analysis of Variance↗

Biochemical changes in prostanoids and cerebral expression of cyclooxygenase (COX)-1 and COX-2 during morphine sulfate infusion in the newborn piglet .

To examine the biochemical regulation of morphine sulfate (MS) on prostanoid synthesis, conscious newborn piglets received a bolus dose of 100 microg/kg followed by a continuous infusion dose of 100 microg/kg/h. The control group received equivalent volume bolus and continuous infusion of 5% dextrose. Blood samples were drawn from the femoral artery and sagittal sinus vein before, during and after infusion for measurement of prostanoids. The expression of mRNAs encoding cyclooxygenases (COX)-1 and -2 in the brainstem, thalamus, cortex, and cerebellum of the newborn piglets were also examined. Systemic PGE2 levels declined substantially during and post MS infusion (p < 0.01), whereas sagittal sinus vein PGE2 levels increased following the bolus dose (p < 0.01) and at 4 h of continuous infusion (p < 0.01). MS infusion did not affect systemic 6-ketoPGF1alpha levels, however, in the cerebral circulation 6-ketoPGF1alpha levels increased 146% (p < 0.01) following the bolus dose and remained elevated throughout the infusion and post infusion times. Systemic TxB2 levels increased transiently at 4 h (p < 0.01) and sagittal sinus vein TxB2 increased at 0.5 and 1 h (p < 0.01) during continuous infusion. RT-PCR assays revealed a 1.5- (p < 0.001) to 4-fold (p < 0.001) increased expression of COX-1 mRNA in the MS-infused brain samples. In contrast, no differences in COX-2 mRNA were detected between the groups. These data imply that MS may have significant effects on prostanoid synthesis in the newborn. The data further show that the MS-induced prostanoid responses appear to be mediated via COX-1.

Analgesics, Opioid↗

Biochemical and molecular endothelin responses to morphine sulfate infusion in conscious newborn piglets.

The biochemical and molecular endothelin-1 (ET-1) responses to high dose morphine sulfate infusion were studied in conscious newborn piglets (n = 6) that received a loading dose of 100 micrograms/kg over 5 min followed by a continuous i.v. infusion dose of 100 micrograms.kg-1.h-1 for 4 h. The control group (n = 6) received equivalent volume loading and infusion doses of 5% dextrose. Blood samples were drawn serially from the femoral artery and sagittal sinus vein before (0), during (30 min, 1, 2, 3, and 4 h), and post (1 and 2 h) infusion. Five micrograms of total RNA obtained from brainstem tissue homogenates was analyzed by reverse transcriptase--polymerase chain reaction (RT-PCR). The amounts of mRNA encoding ET-1, and endothelin receptor subtypes ETA and ETB, were semiquantitated using densitometric scanning. Morphine infusion resulted in elevated respiratory rate and mean arterial blood pressure, with no effect on arterial pH, Po2, and O2 saturation. Compared with the control group, morphine induced significant elevations in plasma ET-1 levels following the bolus dose (systemic: 13.2 +/- 3.6 vs. 8.6 +/- 2.2 pg/mL, p < 0.05; sagittal sinus vein: 13.7 +/- 3.4 vs. 8.2 +/- 0.9 pg/mL, p < 0.01). These effects lasted up to 2 h after discontinuation of morphine infusion (systemic: 14.5 +/- 3.4 to 18.7 +/- 5.7 pg/mL vs. 7.5 +/- 0.8 to 9.4 +/- 3.2 pg/mL, p < 0.05 to p < 0.01; sagittal sinus vein: 14.8 +/- 2.7 to 17.6 +/- 2.8 pg/mL vs. 7.5 +/- 1.4 to 9.4 +/- 3.4 pg/mL, p < 0.05 to p < 0.01). The RT-PCR assay showed a twofold (p < 0.02) upregulation in ET-1 and a threefold (p < 0.007) upregulation in ETA receptor mRNA expression in the brainstem of morphine-treated animals. In contrast, there was a threefold (p < 0.0001) downregulation of the ETB receptor mRNA expression. The rapid and sustained elevations in systemic arterial and sagittal sinus venous ET-1 levels suggest a role for ET-1 in the morphine-induced excitatory responses observed in newborn piglets. Upregulation of ETA receptors and downregulation of ETB receptors in the brainstem with high doses of morphine may indicate possible effects on cerebral vascular tone.

Analgesics, Opioid↗

Pharmacokinetics and protein binding of intravenous ibuprofen in the premature newborn infant.

The elimination, disposition and protein binding of ibuprofen (IBU) in premature infants were studied for use in the prevention of intraventricular hemorrhage and closure of patent ductus arteriosus. The kinetic profile of i.v. IBU lysine (10 mg/kg bolus) given within the first 3 h after birth was studied in 21 premature neonates (mean birthweight = 944.7 g, range: 575-1450 g; gestational age: 26.8 weeks, range: 22-31 weeks). Blood samples (0.3 ml/sample) were obtained at time 0 and at 1, 3, 6, 12, 24, 48, and 72 h post-dose for IBU by high-performance liquid chromatography (HPLC). Kinetic analyses assumed applicability of one open-compartment model and calculations from the model-independent areas under the time concentration curve (AUC). Data (mean +/- SEM) show that apparent volume of distribution (AVd) was 62.1 +/- 3.9 ml/kg, plasma t1/2 beta was 30.5 +/- 4.2 h, elimination rate constant (Kel) was 0.032 +/- 0.004 h-1, plasma clearance was 2.06 +/- 0.33 ml/kg/h and plasma concentration (Cp) at 1 h was 180.6 +/- 11.1 mg/l. Gestational age and birthweight were not related to drug elimination. In 10 neonates, IBU maintenance dose of 5 mg/kg once daily on days 2 and 3 generated mean Cp of 116.6 +/- 54.5 mg/l and 113.6 +/- 58.2 mg/l, respectively. Protein binding by ultrafiltration and capillary electrophoresis showed that the percentage bound IBU was significantly lower in full term cord plasma (94.98 +/- 0.39%, n = 26) compared to adult plasma protein (mean +/- SE = 98.73 +/- 0.31%, n = 8, p < 0.0001). Compared to data from adults and older children, IBU elimination is markedly prolonged in neonates and protein binding is slightly lower. Thus, investigational and clinical therapeutic regimens should be adjusted to account for decreased drug disposition to ensure safe and effective therapy.

Age Factors↗

Early ibuprofen administration to prevent patent ductus arteriosus in premature newborn infants.

OBJECTIVE: To test whether early postnatal (0 to 3 hours) intravenous administration of ibuprofen will prevent patent ductus arteriosus (PDA) in preterm neonates. DESIGN: Prospective sequential controlled trial with three treatment arms. SETTING: Level 3 perinatal-neonatal intensive care nursery. PATIENTS: Thirty-four premature newborn infants born from February to August 1993 with a mean birth weight of 913 g (range, 565 to 1460 g) and gestational age of 26.9 weeks (range, 22.4 to 31.0). INTERVENTION: Infants were consecutively assigned within 3 hours of age to treatment with either one dose of ibuprofen lysine (10 mg/kg intravenously) followed by 5 mg/kg per dose intravenously at 24 and 48 hours of age (n = 12), one dose of ibuprofen lysine (10 mg/kg intravenously; n = 11), or saline (n = 11). OUTCOME VARIABLES: Primary outcome variable was the presence of ductus arteriosus by echocardiography and clinical assessments at 3, 7, and 21 days of life. Secondary outcome variables included presence of intraventricular hemorrhage, renal function, ventilatory and oxygen needs, hematologic changes, gastrointestinal function, time to full enteral feeding, duration of hospitalization, and age at discharge. RESULTS: The three groups of patients were comparable in birth weight, gestational age, antenatal administration of betamethasone, and other perinatal characteristics. Ibuprofen treatment significantly reduced plasma levels of prostaglandins, and the levels remained low for 72 hours in newborns who received three doses of the drug. The incidence of PDA and other variables did not differ between patients who received a single dose of ibuprofen and those given saline. However, compared with the saline-treated newborns, babies who received three doses of ibuprofen had no PDA (0/12 vs 7/11 for saline; P < .02), had lower daily mean airway pressures (mean +/- SD, 5.2 +/- 1.1 cm H2O vs 8.3 +/- 2.8 cm H2O for saline; P < .02) and better oxygenation index (2.6 +/- 0.6 vs 4.7 +/- 1.8 for saline; P < .02) at the end of the first week of life, and required fewer days of ventilation (25 +/- 14 days vs 44 +/- 26 days for saline; P < .03). Babies given three doses of ibuprofen tended to tolerate full oral feedings earlier (35 +/- 19 days vs 56 +/- 34 days for saline; P = .09), had shorter duration of hospitalization (71.2 +/- 22.6 days vs 127.3 +/- 74.7 days for saline; P < .05), and were discharged to home at an earlier postconceptional age (37.8 +/- 2.0 weeks vs 44.8 +/- 9.8 weeks for saline; P < .05). ibuprofen treatment in this phase I trial was not associated with any apparent early neurological, intestinal, renal, hepatic, or hematologic complications. CONCLUSIONS: Administration of three doses of ibuprofen within 3 hours after birth in preterm neonates reduced the incidence of PDA without causing notable early adverse drug reactions in this phase I trial. Early closure of the ductus arteriosus was also associated with better respiratory outcome and earlier discharge from the hospital.

Analysis of Variance↗

Effects of continuous infusion fentanyl citrate on cerebrovascular and systemic prostanoids in postsurgical newborn piglets.

BACKGROUND: Newborns admitted to the intensive care unit undergo multiple painful procedures. Fentanyl citrate (FC) is one of the most commonly used drugs for pain relief in the newborn. Although it has been reported that one of the biological effects of fentanyl is hemodynamic stability, the response of systemic and/or cerebrovascular prostanoids to FC infusions have not been studied. METHODS: To examine the effects of continuous intravenous (IV) infusion of FC on systemic and cerebrovascular prostanoid concentrations, two groups of spontaneously breathing newborn piglets (1-3 days old) were studied. The study group (n = 6) and the control group (n = 8) were respectively given a loading dose of 30 micrograms/kg IV over 15 minutes, immediately followed by a continuous IV infusion of 10 micrograms/kg/hr for 6 hours, or a placebo (PB) solution of 5% dextrose in a similar fashion. Cerebrospinal fluid (0.5 mL) from cisterna magna puncture and blood samples (1.0 mL) from the sagittal sinus vein and carotid artery were collected serially before and after FC or PB infusion for drug and PG determinations. FC was measured by high pressure liquid chromatography (HPLC), and the prostanoids were measured using enzyme immunoassay (EIA) kits. RESULTS: FC infusion induced marked elevations in 6-ketoPGF1 alpha (300%, p < 0.001) and TXB2 (150%, p < 0.001) at 30 minutes, and remained elevated up to 2 hours of infusion. In addition, systemic 6-ketoPGF1 alpha increased by 180% (p < 0.001) and PGE2 concentrations fell dramatically at 30 minutes (87%, p < 0.001) and did not return to normal levels during the infusion time (83% to 81%, p < 0.001 to p < 0.01). CSF 6-ketoPGF1 alpha and TXB2 levels increased by 152% and 80%, respectively (p < 0.001), but PGE2 decreased by 76% (p < 0.001), at 6 hours of infusion. An inverse relationship existed between FC, and sagittal sinus PGE2 levels (r = 0.46, p < 0.03) and systemic PGE2 levels (r = 0.602, p < 0.02). CONCLUSION: The data suggest FC is rapidly transported across the blood brain barrier and the effects on cerebrovascular prostanoids, particularly PGE2 is rapid and prolonged. PGE2 appears to be the primary responsive prostanoid. The magnitude of the response, as evidenced by the early and sharp reductions in systemic and cerebrovascular concentrations, suggest vasoconstriction, with possible adverse effects on organ blood flow and metabolic activity. However, further studies are required to evaluate the effects on organ blood flow and metabolism.

Analgesics, Opioid↗

Changes in cerebrospinal fluid and cerebrovascular endothelin concentrations during hypotension and hypertension in newborn piglets with induced sterile meningitis.

The effects of sterile meningitis on endothelin-1 (ET-1) and big ET-1 concentrations during hypotension and hypertension were studied in the cerebrospinal fluid and plasma of newborn piglets. Cerebrospinal fluid was obtained via cisterna magna puncture, and blood was obtained from the sagittal sinus vein and left subclavian artery. The study group consisted of 14 newborn piglets injected with 0.5 mL heat-killed group B streptococcus (GBS) (10(9) colony forming unit (cfu) equivalents), into the right cerebral lateral ventricle; the control group consisted of 10 newborn piglets injected with sterile normal saline, in a similar fashion. Hypotension (mean arterial blood pressure (MABP) 20-59 mmHg; 1 mmHg = 133.3 Pa) and hypertension (MABP 110-140 mmHg) were induced 1.5-2 h apart in random sequence in each animal, by inflating balloon-tipped catheters placed at the aortic root and descending aorta, respectively. Cerebral blood flow (CBF) was measured using radiolabeled microspheres, 15 min before and after injection of GBS or saline (normotension), during the hypotension and hypertension episodes, and during recovery normotension, immediately prior to cerebrospinal fluid and blood sampling. ET-1 and big ET-1 concentrations (pg/mL) were measured using radioimmunoassay kits. The combined effect of induced sterile meningitis and induced hypotension resulted in a significant rise in the concentration of cerebrospinal fluid ET-1 (control, 5.1 +/- 0.1; GBS, 9.3 +/- 0.2 pg/mL; p < 0.01), cerebrospinal fluid big ET-1 (control, 0; GBS, 18.1 +/- 2.7 pg/mL; p < 0.01), and sagittal sinus (cerebrovascular) big ET-1 (control, 15.5 +/- 4.2; GBS, 47.5 +/- 9.6 pg/mL; p < 0.01). In contrast, the combined effect of induced sterile meningitis and induced hypertension resulted in a marked elevation in cerebrovascular ET-1 concentrations (control, 9.5 +/- 0.9; GBS, 28.5 +/- 6.1 pg/mL; p < 0.01), with no significant change in cerebrospinal fluid concentrations. In addition, cerebrovascular production of ET-1 increased dramatically during hypertension in the GBS group (control, 0; GBS, 161.7 +/- 13.2 pg.min-1.100 g-1; p < 0.001), and was maintained during the recovery period (133.7 +/- 10.8 pg.min-1.100 g-1). Cerebrovascular ET-1 concentrations correlated significantly with total CBF and MABP in both groups of animals (control, r = 0.49, p < 0.002; GBS, r = 0.64, p < 0.0001), but the response was of a much greater magnitude in the GBS group. There was an inverse relationship between cerebrovascular big ET-1 concentrations and total CBF (r = -0.53, p < 0.0001) and MABP (r = -0.71, p < 0.0001) in the GBS group. In the MABP range of 60-110 mmHg a positive relationship was observed between cerebrovascular ET-1 concentrations and cerebral vascular resistance, in the control group only (r = 0.59, p < 0.002). The combined insult of induced sterile meningitis and induced hypotension or hypertension may be associated with increased cerebrovascular ET-1 and (or) big ET-1 concentrations. Changes in these vasoactive agents may contribute to pressure passivity of CBF in the newborn with meningitis.

Animals↗

Ascorbic acid during cerebral ischemia in newborn piglets.

We measured ascorbic acid (reduced and oxidized) in brain, CSF and blood, before, during and after cerebral ischemia in newborn piglets. Bilateral carotid ligation induced a 54% decrease in cerebral blood flow (p < 0.01) and a 43% decrease in the cerebral metabolic rate of oxygen (p < 0.01). After ischemia and reperfusion, we obtained a 60% decrease (p < 0.01) in total brain ascorbic acid content. CSF ascorbic acid increased during reperfusion: +60% at 30 min (p < 0.001) and +160% at 120 min (p < 0.05). Blood ascorbic acid content did not change. These changes and the absence of massive oxidation of ascorbic acid in brain tissue suggest release of ascorbic acid by the brain during ischemia.

Animals↗

Biochemical mediators of meningeal inflammatory response to group B streptococcus in the newborn piglet model.

The meningeal inflammatory response to a heat-killed mutant unencapsulated strain of type III group B Streptococcus (GBS) was studied in a newborn piglet model. GBS (10(9) colony-forming unit equivalents) or saline (control) was inoculated intraventricularly. Serial cerebrospinal fluid measurements were done at baseline and over the course of the next 24 h for cytochemical changes and production of tumor necrosis factor (TNF) and prostaglandins. In separate experiments, we defined the time course of early changes during the first 6 h and dose response relationship over a range of inocula 10(6) to 10(9) colony-forming unit equivalents. The intraventricular inoculation of the heat-killed unencapsulated GBS induced marked leukocytosis and increased protein by 6 h. These changes were preceded by a several hundredfold increase in TNF (maximum at 2 h) and prostaglandins (maximum at 2-4 h). The early and sharp rise in TNF suggests its pivotal role in initiating the inflammatory cascade. The magnitude of the inflammatory response increased with increasing bacterial dose over the range studied. To study the effect of encapsulation of GBS in the induction of meningeal inflammation, we compared the response to the unencapsulated mutant strain with that to the encapsulated parent strain. The encapsulated strain produced much smaller inflammatory changes, and only with high doses of bacteria. The GBS cell wall appeared to be the primary bacterial product triggering inflammation. Intraventricular injection of the heat-killed unencapsulated GBS with exposed cell wall can serve as a valid model for studying neonatal meningitis.

Animals↗

Effect of group B streptococcal meningitis on retinal and choroidal blood flow in newborn pigs.

PURPOSE: To assess the effect of group B streptococcal (GBS) meningitis on retinal blood flow (RetBF) and choroidal blood flow (ChBF) autoregulation in sedated newborn piglets (1 to 5 days of age). METHODS: Fourteen study animals injected with 0.5 ml heat-killed GBS (10(9)) were compared to 10 control animals injected with 0.5 ml saline. The site of injection for both groups was the cerebral lateral ventricles. RetBF and ChBF were measured by radioactive microspheres (141Ce, 51Cr, 113Sn, 85Sr, 95Nb, 46Sc) over a mean arterial blood pressure (MABP) range of 20 to 150 mm Hg. Hypertension and hypotension were induced 2 hours apart in random sequence on each animal by inflating balloon-tipped catheters placed at the descending aorta and the aortic root, respectively. RetBF and ChBF were measured 15 minutes before and after injection of GBS or saline (baseline) and during hypotension or hypertension. RESULTS: Fifth-order polynomial regression analyses of RetBF and ChBF (ml/100 g per minute) versus MABP showed that in control animals, blood flows were constant at MABP of 60 to 110 mm Hg for RetBF and was pressure passive above and below these ranges. However, no autoregulation was observed for ChBF throughout the MABP range. In contrast, RetBF of GBS-treated animals increased with increasing blood pressure throughout range of MABP studied, and absence of autoregulation was maintained in the choroid. Vascular resistance (mm Hg/ml per minute/100 g) increased as MABP was raised to maintain constant flow and was correlated linearly with MABP at 60 to 110 mm Hg (r = 0.6682, P = 0.0003) in RetBF of control animals but not in GBS-treated animals (r = -0.291, P = NS). Vascular resistance did not change with MABP for ChBF of control animals (r = -0.264, P = NS) but decreased as MABP was raised in GBS-treated animals (r = -0.548, P < 0.0001). GBS did not alter oxygen delivery, which varied directly with MABP in control animals (RetBF: r = 0.74, P < 0.001; ChBF: r = 0.68, P < 0.001) and in GBS-treated animals (RetBF: r = 0.55, P < 0.001; ChBF: r = 0.68, P < 0.001). CONCLUSION: Group B streptococcal meningitis significantly impairs eye blood flow autoregulation and may contribute to increased risk of retinal damage in infants with meningitis.

Animals↗

Enhanced cerebral blood flow autoregulation in the newborn piglet by d-tubocurarine and pancuronium but not by vecuronium.

Neuromuscular blockers may affect cerebral blood flow (CBF) regulation in the newborn. We studied the effects of d-tubocurarine (0.1 mg.kg-1, n = 8), pancuronium (0.1 and 0.4 mg.kg-1, n = 6 and 7), and vecuronium (0.1 and 0.4 mg.kg-1, n = 6 and 7) on CBF measured over the same range of mean systemic blood pressure ([BP] 15-122 mmHg) in each group of newborn pigs; controls received normal saline (n = 7). The levels of BP during hypotension and hypertension were scaled at intervals of 5 +/- 1.6 mmHg and adjusted by inflating balloon-tipped catheters placed in the aorta. After saline, the low dose of pancuronium (0.1 mg.kg-1), and the two doses of vecuronium, CBF was constant over the BP range of 50-90 mmHg (r = -0.07-0.35, P greater than 0.20) but varied directly with BP beyond this range (tau = 0.38 - 0.60, P less than 0.05). In contrast, in pigs treated with d-tubocurarine and high-dose pancuronium, CBF remained constant from 35 to 122 mmHg of BP (r = 0.14 - 0.37, P greater than 0.10) and changed minimally (4-12%) with BP greater than 105 mmHg compared to the other groups (41-59%, P less than 0.01). When BP was reduced below 30 mmHg, CBF also decreased less (20-38%) in animals treated with d-tubocurarine and high dose-pancuronium than after the other treatments (58-67%, P less than 0.05).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effects of phenobarbital on cerebral blood flow in the newborn piglet.

To determine the neonatal cerebrovascular effect of a therapeutic dose and a high dose of phenobarbital (Pb), the effect of Pb on cerebral blood flow (CBF) and total brain oxygen consumption (CMRO2) was studied in three groups of awake newborn piglets (aged 1-3.5 days). Group I (control n = 9) received normal saline solution, group II (n = 9) received a therapeutic dose of Pb (15 mg/kg i.v.) and group III (n = 9) received a high Pb dose (45 mg/kg i.v.). Four CBF measurements per piglet using radioactive microspheres (141Ce, 85Cr, 95Nb, 46Sc), arterial blood gases, O2 content, hematocrit and plasma glucose were obtained at 0, 15, 30, 60 min after saline or Pb injections. In all groups, pH, PaO2, PaCO2, blood pressure, heart rate, temperature and plasma glucose remained unchanged except a 14% decrease (p < 0.01) in blood pressure and an increase (p < 0.05) in PaCO2, 60 min after drug injection in groups II and III. Total CBF in group II decreased by 14% (p < 0.05) 15 min after drug injection and was significantly lower (p < 0.05) than control (group I) but returned to baseline after 30 min. High Pb dose progressively lowered CBF by 11% 15 min after drug injection and produced a significant decrease by 20% (p < 0.01) 30 min after drug injection with return to baseline after 60 min. Similar effects were noted in different brain regions (cerebrum and thalamus). CMRO2 remained unchanged in the control group; however, it was decreased by 35% (< 0.01 p > 0.05) 15 min after drug injection and returned to baseline after 60 min. In group III, high Pb dose lowered CMRO2 by 31% 30 min (p = 0.02) after drug injection. Data indicate that Pb exerts a minimal but transient dose-dependent effect on CBF and CMRO2.

Animals↗

Doxapram metabolism in human fetal hepatic organ culture.

The biotransformation of doxapram, a respiratory stimulant was studied with use of explants from human fetal livers (n = 15 fetuses) obtained from therapeutic abortions (gestational age, 10 to 20 weeks). Explants were cultured in Leibowitz medium and the media from cultured samples were collected before and at 3, 6, 12, and 24 hours after incubation with 2.5, 5.0, and 10 micrograms/ml doxapram. The concentrations of doxapram and its metabolites (AHR 0914, an analog of doxapram, AHR 5955 or ketodoxapram, and AHR 5904) were measured by high pressure liquid chromatography. Explant histopathology and alkaline phosphatase activity showed no direct toxic effects of the drug on liver tissue. The fastest rate of doxapram metabolism occurred during the first 3 hours of incubation (198 +/- 73.3, 438 +/- 63.3, and 538 +/- 62 ng/mg/hr liver protein at doxapram concentrations of 2.5, 5.0, and 10.0 micrograms/ml, respectively). At 3 hours of incubation, the amount of doxapram metabolized (nanogram per milligram of liver protein) was significantly higher (p less than 0.01) at doxapram concentrations of 10.0 (1616 +/- 186) and 5.0 microgram/ml (1315 +/- 190) than at 2.5 micrograms/ml (594 +/- 220). The oxidative pathway producing keto-doxapram, or AHR 5955 and AHR 5904, is more active than the de-ethylation producing the analog of doxapram AHR 0914. Data indicate substantial metabolism of doxapram by the human fetal lives.

Biotransformation↗

The role of adenosine in the vascular adaptation of neonatal cerebral blood flow during hypotension.

This study investigated the potential role of adenosine in cerebral blood flow (CBF) regulation in the neonate during moderate and severe hypotension. Experiments were done in anesthetized, 1- to 3-day-old piglets. Regional CBF (determined by radiolabeled microsphere technique) and cerebral metabolic rate for O2 (CMRO2) were measured (a) during normotension and (b) during a 3-min period of moderate (58 +/- 9 mm Hg) or severe (36 +/- 7 mm Hg) hypotension produced by the inflation of a balloon catheter placed in the aortic root. Measurements of CBF and CMRO2 were performed successively after intracerebroventricular (i.c.v.) injections of vehicle (n = 17), the adenosine receptor blocker 8-phenyltheophylline (8-PT, 10 micrograms, n = 14), and the A2-receptor agonist 5'-N-(ethylcarboxamide)adenosine (NECA, 2 ng, n = 8). After i.c.v. administration of vehicle, none of the parameters studied was significantly altered by moderate hypotension, but severe hypotension decreased the total CBF (mean +/- SD) from 86 +/- 24 to 40 +/- 15 ml min-1 100 g-1 and CMRO2 from 3.2 +/- 0.8 to 1.8 +/- 1.0 ml min-1 100 g-1 (p less than 0.05). Administration of 8-PT did not alter these parameters during normotension, but significantly decreased CBF during moderate hypotension compared to postvehicle values (53 +/- 11 versus 81 +/- 12 ml min-1 100 g-1, p less than 0.05). This loss of autoregulation was completely reversed by NECA. During severe hypotension, 8-PT altered the CBF redistribution towards the brainstem.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine↗

Gastrointestinal absorption of doxapram in neonates.

Doxapram was administered orally to six premature babies (3 males, 3 females) with refractory apnea at a mean gestational age of 29 +/- 2.3 weeks, mean birthweight of 1142 +/- 359 gm and a mean postnatal age of 24 days. They received 12, 24, and 36 mg/kg/6 hr on day 1, 2, and 3, respectively, assuming a bioavailability of 50%. Serial plasma doxapram concentrations, determined by high-performance liquid chromatography, increased with incremental doses. The drug underwent oxidative metabolism, producing ketodoxapram, the plasma concentration of which remained stable during treatment. The ratio of plasma concentrations to oral doses ranged from 0.10 to 0.12, suggesting that doxapram is poorly absorbed in the newborn. Oral doxapram may replace the intravenous infusion but doses may have to be increased to, but not exceeding, 24 mg/kg/6 hr to achieve therapeutic plasma concentrations. Interpatient variability, poor absorption and gastrointestinal adverse effects caution against the routine use of oral doxapram.

Administration, Oral↗

Rapid effects of hypoxia on the cerebrospinal fluid levels of adenosine and related metabolites in newborn and one-month-old piglets.

The effect of hypoxia on the levels of adenosine, inosine and hypoxanthine in the cerebrospinal fluid (CSF) was determined by HPLC in newborn (1- to 3-day-old, n = 6) and 1-month-old (n = 5) piglets. Serial CSF samples (q 60 s) were obtained from the cisterna magna during normoxia and a 5-min hypoxia test (PaO2 = 26.5 +/- 2.9 Torr). In normoxia, newborns had a lower mean (+/- SEM) CSF concentration of adenosine (0.72 +/- 0.17 vs 2.60 +/- 0.44 microM) and a higher concentration of hypoxanthine (4.88 +/- 0.41 vs. 1.39 +/- 0.60 microM) than the mature piglets (p less than 0.05). In all animals, hypoxia induced an increase in CSF levels of adenosine and its metabolites between 2 and 4 min. However, peak adenosine concentrations were higher in mature (4.17 +/- 1.41 microM) than in newborn (1.55 +/- 0.29 microM) piglets (p less than 0.05). These data might explain deficient vasodilator adaptation required for neonatal CBF regulation.

Adenosine↗

Differences in the effects in the newborn piglet of various nonsteroidal antiinflammatory drugs on cerebral blood flow but not on cerebrovascular prostaglandins.

To characterize the role of prostaglandins (PG) in the regulation of basal cerebral blood flow (CBF) in the newborn, we determined the effects of four nonsteroidal antiinflammatory drugs, indomethacin (3 mg/kg, n = 8 and 10 mg/kg, n = 5), aspirin (65 mg/kg, n = 6), ibuprofen (30 mg/kg, n = 8), and naproxen (15 mg/kg, n = 6), on CBF, cerebral metabolism, and cerebrovascular PG in conscious 1- to 3-d-old piglets. Drugs and vehicle (n = 8) were injected i.v., and measurements were made 5 min before and 20 and 60 min after injections. Neither the vehicle nor any of the nonsteroidal antiinflammatory drugs exerted significant effects on mean arterial blood pressure and on blood gases and pH. All four drugs, with the exception of indomethacin at the lower dose (3 mg/kg), decreased PG to nearly undetectable levels within 20 min; the low dose of indomethacin caused a small decrease (18-32%) in PG at 60 min. However, the effects of these agents on CBF were diverse. CBF increased after the administration of aspirin, decreased to almost the same extent after both low and high doses of indomethacin, and did not change after the administration of ibuprofen and naproxen. Cerebral metabolic rate for oxygen was increased by aspirin but was unaltered by the other drugs. The data suggest that PG may not play a critical role in the regulation of basal CBF in the newborn animal and that certain nonsteroidal antiinflammatory drugs may have additional actions unrelated to the inhibition of PG synthesis.

Animals↗