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Biomedical subjects

A Gulati

Publications and source records attributed to A Gulati.

At least 91 records · Page 5Linked to original sources

Differences in the binding of [3H][D-Ser2,Thr6]leucine-enkephalin and [3H][D-Pen2,D-Pen5]enkephalin to brain membranes of morphine tolerant-dependent rats.

The effect of morphine tolerance-dependence and abstinence on the characteristics of delta-opiate receptors was determined in male Sprague-Dawley rats. Two ligands used for characterizing the receptors were [3H][D-Ser2,Thr6]leucine-enkephalin ([3H]DSTLE) and [3H][D-Pen2,D-Pen5]enkephalin ([3H]DPDPE). Rats were implanted s.c. under light ether anesthesia with six morphine pellets (each containing 75 mg of morphine free base). Rats which served as controls were implanted similarly with placebo pellets. Two sets of rats were used. In one group of rats, the pellets were left intact (tolerant-dependent) at the time of sacrificing and in the other the pellets had been removed 18 h earlier (abstinent). The spinal cord and brain regions (amygdala, hippocampus, hypothalamus, corpus striatum, mid-brain, pons and medulla and cortex) were dissected for binding studies. The binding of [3H]DSTLE to membranes of cerebral cortex of morphine-tolerant-dependent rats was decreased in comparison to control rats, and was due to a decrease in Bmax rather than Kd value. The binding of [3H]DSTLE to other brain regions or spinal cord of morphine-tolerant-dependent and abstinent rats did not differ from their respective controls. On the other hand, the binding of [3H]DPDPE was unaffected in any brain region or the spinal cord of morphine-tolerant-dependent and abstinent rats when compared to their controls. The decrease in binding of [3H]DSTLE to cortical membranes of morphine-tolerant-dependent rats amounted to 15%. Since DSTLE also binds to mu-opiate receptors, which have earlier been shown to be decreased in cortex of morphine-tolerant-dependent rats, and the binding of a more selective delta-opiate ligand [3H]DPDPE was unaffected, it is concluded that central delta-opiate receptors do not play a role in the development of morphine-induced tolerance-dependence or abstinence processes in the rat.

Analgesics↗

Spinal transection reduces both spinal antinociception and CNS concentration of systemically administered morphine in rats.

Within one day after spinal transection, the antinociceptive effect of systemically administered morphine on the spinal withdrawal reflex is significantly reduced. This observation has provided important empirical support for the present model of opiate-induced analgesia. One prediction from this model is that the antinociceptive effect of intrathecal (spinal) morphine injections should not be reduced by spinalization. When examined experimentally, this prediction was not supported; the antinociceptive effect of intrathecally administered morphine was significantly enhanced after acute spinalization. This result suggested an alternate hypothesis of morphine-induced analgesia. One prediction from this new hypothesis is that the decreased behavioral response to systemic morphine in spinal rats is due to a decrease in the spinal concentration of morphine produced by spinal transection. To test this prediction separate groups of intact rats and acute (one day) spinal rats, were assessed with the tail-flick (TF) procedure 60 min after subcutaneous injection of various doses of morphine (0.75, 1.5, 3.0, 4.5, 6.0 or 9.0 mg/kg) or at different time points (30, 60, 90, 150 or 240 min) after a single injection of 9.0 mg/kg. Immediately after behavioral testing, the rats were killed and brains, spinal cords and blood samples were collected and subsequently analyzed with a morphine radioimmunoassay. The results show that the concentration of morphine in the brain and spinal cords of acute spinal rats is significantly lower than that of intact rats, whereas morphine levels in the blood do not differ. These data suggest that the decreased antinociceptive effect of subcutaneous morphine in acute rats is due to a decrease in the concentration of the opiate in the central nervous system.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Down-regulation of brain and spinal cord K-opiate receptors in spontaneously hypertensive, Wistar-Kyoto normotensive, and Sprague-Dawley rats by chronic treatment with U-50, 488H.

The effects of chronic administration of U-50,488H, a K-opiate receptor agonist, on the binding of [3H]ethylketocyclazocine ([3H]EKC) to K-opiate receptors on the cerebral cortical and spinal cord membranes of spontaneously hypertensive (SHR), Wistar-Kyoto normotensive (WKY), and Sprague-Dawley (SD) rats were determined. Age-matched (10 weeks old) male rats of each strain were injected twice daily for 7 days with either U-50,488H (25 mg/kg, i.p.) or its vehicle. On day 8, the rats were killed. The cerebral cortex and the spinal cord were isolated for binding studies. The systolic blood pressure and heart rate of SD and WKY rats did not differ but the blood pressure of SHR rats were higher than that of SD and WKY rats. The receptor density (Bmax) and apparent dissociation constant (Kd) values of [3H]EKC binding to the spinal cord of WKY and SHR rats did not differ. However, the spinal cord of SD rats had higher Bmax and Kd values than WKY or SHR rats. The cortex of the SD rats had a lower Bmax value than the other two strains. Treatment with U-50,488H decreased the Bmax value of [3H]EKC in spinal cord of SD rats, increased the Kd value in SHR rats, and had no effect in WKY rats. Decreases in the Bmax value were produced in the cortex of all strains of rats, but a greater effect was observed in WKY and SHR rats than in SD rats.

3,4-Dichloro-N-methyl-N-(2-(1-pyrrolidinyl)-cycloh↗

Down-regulation of alpha 2 adrenoceptors in ventrolateral medulla of spontaneously hypertensive rats.

The binding of [3H]idazoxan [correction of idaxazon] to imidazole sites and [3H]rauwolscine to alpha 2 adrenoceptors of neuronal membranes prepared from cerebral cortex and ventrolateral medulla of 10 week old spontaneously hypertensive (SHR) and normotensive Wistar-Kyoto (WKY) rats was determined. [3H]idazoxan [correction of idaxazon] bound to the membranes of cerebral cortex and ventrolateral medulla at a single high affinity site. The binding of [3H]idazoxan [correction of idaxazon] in ventrolateral medulla and cerebral cortex was found to be similar in SHR and WKY rats. [3H]Rauwolscine bound to the membranes of cerebral cortex and ventrolateral medulla at a single high affinity site. The binding of [3H]rauwolscine in the cerebral cortex was found to be similar in SHR and WKY rats. However, in the ventrolateral medulla [3H]rauwolscine binding was found to be significantly lower in SHR as compared to WKY rats. The decreased binding was due a decrease (32%) in the Bmax value in SHR rats as compared to WKY rats. The Kd values were similar in SHR and WKY rats. It is concluded that imidazole binding sites are not affected while, alpha 2 adrenergic binding sites are decreased in the ventrolateral medulla of SHR rats and may be contributing to the regulation of blood pressure.

Animals↗

Down-regulation of endothelin receptors in the ventrolateral medulla of spontaneously hypertensive rats.

The binding of [125I] sarafotoxin 6b (SRT 6b) and [125I] endothelin-1 (ET-1) to endothelin (ET) receptors of neuronal membranes prepared from cerebral cortex and ventrolateral medulla of 8 week old spontaneously hypertensive (SHR) and normotensive Wistar-Kyoto (WKY) rats was determined. [125I] SRT 6b bound to the membranes of cerebral cortex and ventrolateral medulla at a single high affinity site. The binding of [125I] SRT 6b in the cerebral cortex was found to be similar in SHR and WKY rats. However, in the ventrolateral medulla [125I] SRT 6b binding was found to be significantly lower in SHR as compared to WKY rats. The decreased binding was due to decrease (48%) in the Bmax values in SHR rats as compared to WKY rats. The Kd values were similar in SHR and WKY rats. [125I] ET-1 also bound to the membranes of cerebral cortex and ventrolateral medulla at a single high affinity site. The binding of [125I] ET-1 in the cerebral cortex was found to be similar in SHR and WKY rats. However, in the ventrolateral medulla [125I] ET-1 binding was found to be significantly lower in SHR as compared to WKY rats. The decreased binding was due to 36% decrease in the Bmax values in SHR rats as compared to WKY rats. The Kd values were similar in SHR and WKY rats. It is concluded that the population of ET receptors is less in the ventrolateral medulla of SHR rats and may be contributing to the regulation of blood pressure.

Animals↗

Opiate antagonist binding sites in discrete brain regions of spontaneously hypertensive and normotensive Wistar-Kyoto rats.

The binding of 3H-naltrexone, an opiate receptor antagonist, to membranes of discrete brain regions and spinal cord of 10 week old spontaneously hypertensive (SHR) and normotensive Wistar-Kyoto (WKY) rats was determined. The brain regions examined were hypothalamus, amygdala, hippocampus, corpus striatum, pons and medulla, midbrain and cortex. 3H-Naltrexone bound to membranes of brain regions and spinal cord at a single high affinity site with an apparent dissociation constant value of 3 nM. The highest density of 3H-naltrexone binding sites were in hippocampus and lowest in the cerebral cortex. The receptor density (Bmax value) and apparent dissociation constant (Kd value) values of 3H-naltrexone to bind to opiate receptors on the membranes of amygdala, hippocampus, corpus striatum, pons and medulla, midbrain, cortex and spinal cord of WKY and SHR rats did not differ. The Bmax value of 3H-naltrexone binding to membranes of hypothalamus of SHR rats was 518% higher than WKY rats but the Kd values in the two strains did not differ. It is concluded that SHR rats have higher density of opiate receptors labeled with 3H-naltrexone in the hypothalamus only, in comparison with WKY rats, and that such a difference in the density of opiate receptors may be related to the elevated blood pressure in SHR rats.

Animals↗

Binding characteristics of [3H]SCH 23390 in spinal cord and discrete brain regions of kappa-opiate tolerant-dependent and abstinent rats.

The effects of chronic administration of U-50,488H, a highly selective kappa-opiate receptor agonist, and its subsequent withdrawal were determined. The binding characteristics of [3H]SCH 23390 to dopamine D1 receptors were investigated on membranes of rat spinal cord and in discrete brain regions. Male Sprague-Dawley rats received U-50,488H (25 mg/kg) intraperitoneally twice a day for 4 days. Animals serving as controls received only vehicle. Two different treatment schedules were used. In one, rats were injected with U-40,588H on day 5 and were sacrificed 1 h later (tolerant-dependent rats). In another, the rats were sacrificed 16 h after the last injection of U-50,488H (abstinent rats). Chronic administration of U-50,488H resulted in the development of tolerance to its analgesic effect, as demonstrated by the decreased response to a challenge dose of U-50,488H compared to vehicle-injected rats. The binding characteristics (Bmax and Kd values) of [3H]SCH 23390 were unaffected in spinal cord and other regions of brain of tolerant-dependent rats. In U-50,488H-abstinent rats, Bmax values of [3H]SCH 23390 were increased in hypothalamic and striatal membranes, but Kd values were unaffected. These results suggest that, in U-50,488H-abstinent rats, dopamine D1 receptors are up-regulated in hypothalamus and striatum.

3,4-Dichloro-N-methyl-N-(2-(1-pyrrolidinyl)-cycloh↗

Differential effects of two kappa-opiate agonists, U-50,488H and U-69,593, on the binding of 3H-(3-MeHis2) thyrotropin-releasing hormone to rat spinal cord and amygdala membranes.

The effect of delta- and kappa-opiate receptor agonists on the binding of 3H-(3-MeHis2) thyrotropin-releasing hormone (3H-MeTRH) to membranes of the spinal cord and amygdala of male Sprague-Dawley rats was determined in an effort to further understand interactions between opiates and TRH receptors. The agonists used were D-Ala2-MePhe4-Gly-ol5-enkephalin (DAMGO, mu-receptor), cyclic D-penicillamine2-D-penicillamine5-enkephalin (DPDPE, delta-receptor), cyclic D-penicillamine2-L-penicillamine5-enkephalin (DPLPE, delta-receptor), D-Ala2-D-Leu5-enkephalin (delta-receptor), U-50,488H and U-69,593 (kappa-receptor). 3H-MeTRH bound to amygdala and spinal cord membranes at a single site with Bmax values of 35.7 +/- 5.4 and 15.8 +/- 2.6 fmol/mg protein, and Kd values of 6.3 +/- 1.1 and 5.2 +/- 0.7 nmol/l, respectively. The competition experiments were carried out at a concentration of 2 nmol/l 3H-MeTRH. The concentration of opiate ranged from 10(-9) to 10(-4) mol/l. DAMGO, DPDPE and DPLPE had no effect on the binding of 3H-MeTRH to amygdala or spinal cord membranes. The two highly selective kappa-agonists differed in their interaction with TRH receptors. Whereas U-69,593 did not modify the binding of 3H-MeTRH, U-50,488H significantly inhibited the binding of 3H-MeTRH to both spinal cord and amygdala membranes. U-50,488H has been found to be 10 times more potent than U-69,593 at the central kappa-opiate receptors and may explain their differential action at the TRH receptors. It is concluded that mu- and delta-opiate agonists do not interact with brain and spinal cord TRH receptors.(ABSTRACT TRUNCATED AT 250 WORDS)

3,4-Dichloro-N-methyl-N-(2-(1-pyrrolidinyl)-cycloh↗

Analgesic and hyperthermic effects of intravenously administered morphine in the rat are related to its serum levels.

The analgesic response, colonic temperature changes and the pharmacokinetic parameters of i.v. administered morphine sulfate (2.5, 5.0 and 10.0 mg/kg) through indwelling cannulas in the jugular vein were determined in male Sprague-Dawley rats. The analgesic and hyperthermic responses were determined before and at 30-min intervals for a period of 360 min after the morphine injection and were expressed as area under the time-response curve. Blood samples were collected periodically for a period of 24 h. Serum was separated and was used for the estimation of morphine by the highly sensitive radioimmunoassay. The pharmacokinetic parameters, half life, the terminal elimination rate constant, the mean residence time, the apparent volume of distribution at steady state and the total clearance were determined by using noncompartmental analysis. The area under the serum concentration-time curve from time zero to infinity was related to the dose of morphine. The other parameters were the same for all the doses of morphine, except the serum levels of morphine extrapolated to zero time which increase gradually with the dose. Dose-dependent analgesic and hyperthermic responses were related to the area under the serum concentration-time curve. It is concluded that the dose-dependent pharmacological effects of morphine were related to the area under the serum concentration-time curve from time zero to infinity for serum levels of morphine but not to the other pharmacokinetic parameters.

Analgesia↗

Inter-relationship between dental, skeletal and chronological ages in well-nourished and mal-nourished children.

Dental casts, wrist roentgenograms and full mouth radiographs of teeth of 80 mal-nourished and 40 well-nourished children were evaluated and compared for correlation of dental, skeletal and chronological ages. The findings revealed (1) very high correlation between dental and skeletal ages (r = 0.9584); (2) high correlation of chronological age with dental and skeletal ages (r = 0.8635 and r = 0.8716); (3) out of all the three correlations considered, dental and skeletal ages had the maximum correlation; (4) malnutrition had a significant adverse effect on the skeletal and dental ages. Greater the severity of malnutrition, more pronounced was its effect on the dental and skeletal ages; and (5) no evidence of severity of malocclusion with retarded skeletal and dental ages.

Adolescent↗

Down-regulation of brain and spinal cord mu-opiate receptors in morphine tolerant-dependent rats.

The effect of chronic administration of morphine and its withdrawal on the characteristics of mu-opiate receptors was determined in male Sprague-Dawley rats. The ligand used for characterizing the receptors was [3H][D-Ala2,MePhe4,Gly5-ol]enkephalin ([3H]DAMGO). Rats were implanted s.c. under light ether anesthesia with six morphine pellets (each containing 75 mg of morphine free base). Rats serving as controls were implanted similarly with placebo pellets. Two sets of animals were used. In one group of rats, the pellets were left intact (tolerant-dependent) at the time of killing and in the other the pellets had been removed 18 h earlier (abstinent). The spinal cord and brain regions (amygdala, hippocampus, hypothalamus, corpus striatum, midbrain, pons and medulla, and cortex) were dissected. In morphine-abstinent rats, the binding of ligands of mu-opiate receptors to membranes of spinal cord and brain regions did not change. In non-abstinent morphine-tolerant-dependent rats, the binding of [3H]DAMGO to membranes of spinal cord, pons and medulla, and cerebral cortex was found to be decreased. These changes were due to decreases in the Bmax values rather than Kd values for the binding of [3H]DAMGO. The results clearly indicate that morphine-induced tolerance-dependence in the rat is associated with changes in the selected brain regions and spinal cord with mu-opiate receptors being down-regulated in spinal cord, pons and medulla, and cerebral cortex. It is concluded that tolerance to morphine in the rats may be due to down-regulation of central mu-opiate receptors. However, mu-opiate receptors are unaffected in morphine abstinence.

Animals↗

Down-regulation of hypothalamic 5-HT1A receptors in morphine-abstinent rats.

The effects of morphine tolerance-dependence and abstinence on 5-HT1A receptors in brain regions and spinal cord of the rat were determined. Tolerance to and physical dependence on morphine was induced in male Sprague-Dawley rats by implanting six morphine pellets (each containing 75 mg of morphine free base) during a seven day period. Two groups of rats were used for binding studies. In one group the pellets were left intact (tolerant-dependent) and in the other they were removed (abstinent). Rats were killed, and spinal cords and brains were excised. Brain was dissected into seven regions (amygdala, hippocampus, hypothalamus, striatum, midbrain, pons + medulla and cortex). 5-HT1A receptors were characterized by using [3H]8-hydroxy-di-n-propylaminotetralin [( 3H]DPAT) as the ligand and unlabelled 5-HT to determine the non-specific binding. In morphine and placebo tolerant-dependent rats the binding of [3H]DPAT to 5-HT1A receptors in brain regions and spinal cord did not differ. The Bmax value of [3H]DPAT in the hypothalamus of morphine abstinent rats was decreased by 61.9%. No change in Bmax value was observed in other brain regions and spinal cord. The Kd values were unaffected. Subcutaneous administration of DPAT produced hypothermia in rats from which pellets had been removed. The intensity of DPAT-induced hypothermic response was greater in morphine abstinent rats as compared to placebo abstinent rats. Since DPAT is believed to have a major action on the presynaptic 5-HT neurons, it is concluded that in morphine abstinent rats 5-HT1A receptors are down-regulated in hypothalamus, but in morphine tolerant-dependent rats they are unaffected.

8-Hydroxy-2-(di-n-propylamino)tetralin↗

Characteristics of central binding sites for [3H] DAMGO in spontaneously hypertensive rats.

The binding of [3H] DAMGO, a highly selective ligand for mu-opiate receptors, to membranes of discrete brain regions and spinal cord of 10 week old spontaneously hypertensive (SHR) and normotensive Wistar-Kyoto (WKY) rats was determined. The brain regions examined were hypothalamus, amygdala, hippocampus, corpus striatum, pons and medulla, midbrain and cortex. [3H] DAMGO bound to membranes of brain regions and spinal cord at a single high affinity site. The receptor density (Bmax value) and apparent dissociation constant (Kd value) of [3H] DAMGO to bind to membranes of hippocampus, corpus striatum, pons and medulla, cortex and spinal cord of WKY and SHR rats did not differ. The Bmax value of [3H] DAMGO in membranes of hypothalamus and midbrain of SHR rats was significantly higher than in WKY rats but the Kd values in the two strains did not differ. On the other hand, the Bmax value of [3H] DAMGO in membranes of amygdala of SHR rats was lower than that of WKY rats but the Kd values in the two strains were similar. It is concluded that SHR rats have higher density of mu-opiate receptors in hypothalamus and midbrain but lower density in amygdala in comparison with WKY rats, and that such differences in the distribution of mu-opiate receptors may be related to the elevated blood pressure in SHR rats.

Animals↗

Pharmacokinetics of a single dose of morphine in preterm infants during the first week of life.

We studied morphine pharmacokinetics after a single intravenous dose of 0.1 mg/kg in 20 newborn infants, who were born at 26 to 40 weeks of gestation and were less than 5 days of age. In the 10 infants whose gestational age was less than or equal to 30 weeks, the mean (+/- SD) distribution half-life was 50 +/- 35 minutes, elimination half-life was 10 +/- 3.7 hours, and clearance was 3.39 +/- 3.28 ml/kg/min; the corresponding values for the three term infants were 19 +/- 8 minutes, 6.7 +/- 4.6 hours, and 15.5 +/- 10 ml/kg/min, respectively. The data suggested a trend of decreasing values for distribution and elimination half-lives with increasing gestation, but a considerable degree of variation was seen. The morphine clearance rate increased as a function of gestational age at a rate of 0.9 ml/kg/min per week of gestation. Between 18% and 22% of the drug was found to be protein bound. Four hours after the dose, the drug level remained greater than or equal to 12 ng/ml in 8 of 10 infants born at greater than or equal to 31 weeks of gestation. In 8 of 10 infants born at less than or equal to 30 weeks of gestation, similar levels were maintained at 8 hours after the initial dose. We conclude that (1) there is a marked degree of variation in morphine pharmacokinetics during the neonatal period, (2) nearly 80% of the intravenously infused drug remains free, which might explain the high sensitivity to morphine in this age group, and (3) during the first week of age, adequate blood levels can be maintained by administration of morphine at 4- to 6-hour intervals in term infants and at less frequent intervals in very premature infants (less than or equal to 30 weeks of gestation).

Blood Proteins↗

Effect of melanotropin release inhibiting factor on changes by haloperidol and centbutindole in cerebral cortical 5-hydroxytryptamine receptors.

The effect of melanotropin release inhibiting factor (Pro-Leu-Gly-NH2, MIF) was determined on changes induced by two neuroleptics, haloperidol and centbutindole, in cerebral cortical 5-hydroxytryptamine (5-HT) receptors. Male Sprague-Dawley rats were injected daily i.p. with vehicle, haloperidol (1.0 mg/kg) or centbutindole (0.5 mg/kg), respectively, for 21 days. On day 22, these 3 groups were further divided into 2 subgroups and injected with either vehicle or MIF (2.0 mg/kg, i.p.) daily for 3 days. 3H-5-HT was used to study 5-HT1 receptors, and 3H-spiroperidol to label 5-HT2 receptors in the cerebral cortex. Chronic administration of haloperidol significantly increased (39.7%) the maximal binding capacity (Bmax) of 3H-5-HT binding to 5-HT1 receptors. Dissociation constant (Kd) values did not change. Centbutindole had no effect on 5-HT1 receptors. MIF had no effect on 5-HT1 receptors, nor did it alter haloperidol-induced increases in the Bmax of 3H-5-HT binding to 5-HT1 receptors. Chronic administration of centbutindole significantly increased (61.1%) the Bmax of 3H-spiroperidol binding to 5-HT2 receptors. No change occurred in the Kd values. Chronic treatment with haloperidol had no effect on 5-HT2 receptor characteristics. MIF had no effect on 5-HT2 receptors or on the increase in 5-HT2 receptor density induced by centbutindole. The behavioral syndrome induced by 5-hydroxytryptophan (5-HTP) (50, 100 and 200 mg/kg, i.p.) was also measured in rats treated chronically with haloperidol or centbutindole. Haloperidol had no effect on the 5-HTP syndrome, whereas centbutindole stimulated by 24-45% the intensity of the syndrome.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗