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A M Allan

Publications and source records attributed to A M Allan.

At least 19 recordsLinked to original sources

5-HT(3) receptors, alcohol and aggressive behavior in mice.

Alcohol is a positive modulator at the 5-HT(3) receptor, which has been implicated in alcohol drinking, anxiety and aggression. The reported experiments explored the role of the 5-HT(3) receptor in aggressive behavior and alcohol-heightened aggression. Male, CFW mice were trained to self-administer 1.0 g/kg of alcohol, after which they confronted an intruder. Half of the CFW mice exhibited consistently increased aggressive behavior after alcohol and were designated as showing alcohol-heightened aggression, the others showed no increase and were designated as showing alcohol non-heightened aggression. The 5-HT(3) antagonist, ondansetron (0.01-1.0 mg/kg), significantly reduced aggression in both groups of CFW mice without affecting non-aggressive behaviors. Zacopride also reduced aggression effectively in both groups of mice, but at high doses began to affect walking. Male B6SJL/F2 transgenic 5-HT(3) over-expressing mice (TG) and wild-type mice (WT) were tested for aggressive behavior in their home cage. In those individuals that fought in tests of resident-intruder aggression, no differences were found in aggression after alcohol intake. In tests of aggression without alcohol intake, zacopride reduced aggression in both TG and WT mice at a dose of 56 mg/kg. Antagonism of 5-HT(3) receptors shows promising anti-aggressive effects, although these effects depend on the genetic background of the mice.

Aggression↗

Conditioned place preference for cocaine is attenuated in mice over-expressing the 5-HT(3) receptor.

The serotonin 5-HT(3) receptor is thought to play a role in the reward pathway and drug abuse by modulating dopamine release within the mesolimbic pathway. Dopamine release stimulated by cocaine and methamphetamine is blocked by administration of 5-HT(3) receptor antagonists. Animal studies demonstrate that 5-HT(3) receptor antagonists decrease cocaine and methamphetamine preference. We have developed a 5-HT(3) receptor over-expressing mouse to study the role of this receptor in substance abuse. No changes in either the dopamine receptors (D1, D2, D3, and D4) or in the dopamine transporter (DAT) were found over a wide range of brain regions. 5-HT(3) receptor over-expressing mice failed to develop conditioned place preference to 10 mg/kg or 6 mg/kg cocaine but showed a modest preference for 4 mg/kg cocaine. 5HT(3) receptor over-expressing mice were more sensitive to the locomotor activating effects of low dose cocaine and methamphetamine. Further, brain slices from the transgenic mice release more dopamine in response to low concentrations of cocaine. These data suggest that 5HT(3) receptor over-expression in the forebrain decreases cocaine preference and increases acute sensitivity with a corresponding increase in the amount of dopamine released in response to cocaine.

Animals↗

Characterization of electrically evoked [3H]-D-aspartate release from hippocampal slices.

Electrical stimulation has certain advantages over chemical stimulation methods for the study of neurotransmitter release in brain slices. However, measuring detectable quantities of electrically evoked release of endogenous or radiolabeled markers of excitatory amino acid neurotransmitters has required current intensities or frequencies much higher than those usually required to study other transmitter systems. We demonstrate here that [3H]-D-aspartate (D-ASP) release can be detected from hippocampal slices at lower stimulation intensities in the presence of a glutamate reuptake inhibitor. Subsequently, we optimized the electrical stimulus parameters for characterizing electrically evoked D-ASP release. Under the experimental conditions described, greater than 90% of electrically evoked D-ASP release is calcium-dependent. Evoked D-ASP release is markedly reduced by pre-treating slices with the synaptic vesicle toxin bafilomycin A1 (BAF A1) or in the presence of 10-mM magnesium. Evoked D-ASP release is also reduced to variable degrees by N- and P/Q type voltage-sensitive calcium channel antagonists. Neither spontaneous efflux nor evoked D-ASP release were affected by NMDA, AMPA or group I metabotropic glutamate receptor (mGluR) antagonists. Evoked D-ASP release was reduced in the presence of an adenosine A1 receptor agonist and potentiated by treatment with a group I mGluR5 agonist. Evoked [3H]-D-ASP release was similar in magnitude to evoked [3H]-L-glutamate (L-GLU) release. Finally, in separate experiments using the same electrical stimulus parameters, more than 90% of electrically evoked endogenous L-GLU release was calcium dependent, a pattern similar to that observed for evoked [3H]-D-ASP release. Taken together, these results indicate that electrically evoked [3H]-D-ASP release mimics evoked glutamate release in brain slices under the experimental conditions employed in these studies.

Animals↗

5-HT(3) receptor function and potentiation by alcohols in frontal cortex neurons from transgenic mice overexpressing the receptor.

The function of 5-hydroxytryptamine (5-HT)(3) receptors was examined by whole-cell patch-clamp recording in dissociated frontal cortex neurons from 5-HT(3) receptor overexpressing transgenic, and wild-type mice. The effect of acute exposure to alcohols on the 5-HT(3) receptor-mediated ion current was also investigated. The 5-HT(3) receptors expressed on frontal cortex neurons in transgenic mice were activated by 5-HT and a selective 5-HT(3) receptor agonist, 2-methyl-5-HT. This current was blocked by zacopride, a specific 5-HT(3) receptor antagonist. Dissociated frontal cortex neurons from wild-type mice exhibited little or no 5-HT(3) receptor-mediated current. Ethanol (EtOH) and trichloroethanol (TCEt) potentiated the function of 5-HT(3) receptors overexpressed in transgenic mice. This is the first evidence that 5-HT(3) receptors exhibit sensitivity to alcohols when expressed by a central neuron.

Alcohols↗

5-HT3 receptor over-expression enhances ethanol sensitivity in mice.

Ethanol sensitivity may play a role in the risk of developing alcoholism. The role of 5-HT3 receptors in sensitivity to ethanol was assessed in mice over-expressing the 5-HT3 receptor in the forebrain. Sleep time and ED50 for loss of righting reflex (LRR) were used to assess the effect of a high dose of ethanol in transgenic versus non-transgenic mice. The ED50 for ethanol-induced increase in open field activity was used to measure differences in sensitivity to low dose ethanol. The ED50 for ethanol-induced increase in activity was 41% lower in the 5-HT3 receptor over-expressing transgenic mice compared to non-transgenic mice. However, 5-HT3 receptor over-expressing mice did not differ from control mice in ethanol metabolism, ED50 for LRR, and ethanol sleep time. Over-expression of 5-HT3 receptors in mouse forebrain results in an enhanced sensitivity to the stimulating effects of a low dose of ethanol without altering ethanol sedating effects or ethanol metabolism. These data suggest that 5-HT3 receptors modulate low dose ethanol sensitivity and may explain why, in previous studies, these mice consume less ethanol.

Alcohol Drinking↗

5-HT3 receptor over-expression decreases ethanol self administration in transgenic mice.

The 5-HT3 receptor is thought to play a role in the reward pathway and the phenomena of drug abuse by modulating dopamine release in the mesolimbic pathway. Studies involving this receptor have been hampered due to the low level of 5-HT3 receptors in the CNS. A 5-HT3 receptor over-expressing mouse was produced to study the role of this receptor in the rewarding properties of drugs of abuse. Over-expression was restricted to the forebrain by controlling gene expression with the Ca2+ calmodulin (CAM) kinase IIalpha promoter. No over-expression was detected in other body organs nor the cerebellum, as measured by ligand binding and Northern analysis. 5-HT3 receptor over-expressing mice drank less alcohol than non-transgenic mice in a two-bottle free choice test. Over-expression of the 5-HT3 receptor in these mice resulted in a decrease in ethanol consumption. These mice should prove useful in testing hypothesis regarding a common reward pathway for drugs of abuse and the role 5-HT3 receptors play in this pathway.

Animals↗

Prenatal ethanol exposure decreases GAP-43 phosphorylation and protein kinase C activity in the hippocampus of adult rat offspring.

Consumption of moderate quantities of ethanol during pregnancy produces deficits in long-term potentiation in the hippocampal formation of adult offspring. Protein kinase C (PKC)-mediated phosphorylation of the presynaptic protein GAP-43 is critical for the induction of long-term potentiation. We tested the hypothesis that this system is affected in fetal alcohol-exposed (FAE) rats by measuring GAP-43 phosphorylation and PKC activity in the hippocampus of adult offspring of rat dams that had consumed one of three diets throughout gestation: (a) a 5% ethanol liquid diet, which produced a maternal blood ethanol concentration of 83 mg/dl (FAE); (b) an isocalorically equivalent 0% ethanol diet (pair-fed); or (c) lab chow ad libitum. Western blot analysis using specific antibodies to PKC-phosphorylated GAP-43 revealed that FAE rats had an approximately 50% reduction in the proportion of phosphorylated GAP-43. Similarly, we found that PKC-mediated incorporation of 32P into GAP-43 was reduced by 85% in hippocampal slices from FAE rats compared with both control groups. FAE animals also showed a 50% reduction in total hippocampal PKC activity, whereas the levels of six major PKC isozymes did not change in any of the diet groups. These results suggest that GAP-43 phosphorylation deficits in rats prenatally exposed to moderate levels of ethanol are not due to alterations in the expression of either the enzyme or substrate protein, but rather to a defect in kinase activation.

Animals↗

Prenatal ethanol exposure alters the modulation of the gamma-aminobutyric acidA1 receptor-gated chloride ion channel in adult rat offspring.

We examined the effect of prenatal ethanol exposure on gamma-aminobutyric acid (GABA)-stimulated 36Cl- flux. Sprague-Dawley rat dams were fed either a liquid diet containing 5% ethanol, pair-fed an isocalorically equivalent 0% ethanol diet or rat chow ad libitum throughout gestation. Membrane vesicles were prepared from medial frontal cortex, cerebellum and hippocampal formation of adult offspring in each diet group. GABA-stimulated 36Cl- flux was not significantly affected by prenatal ethanol exposure in any of the three brain regions examined. Positive allosteric modulation of GABA-stimulated 36Cl- flux by flunitrazepam or alphaxalone, as well as negative modulation by FG-7142 or pregnenolone, were all diminished in medial frontal cortex of 5% ethanol diet offspring compared with both ad libitum and pair-fed control groups. In cerebellum, prenatal ethanol exposure attenuated the modulatory effects of both benzodiazepines, but did not affect neurosteroid modulation. In hippocampus, prenatal ethanol exposure enhanced the effects of flunitrazepam and alphaxalone, whereas negative modulatory effects were either decreased (FG-7142) or unchanged (pregnenolone). These results indicate that moderate ethanol consumption during gestation can produce long-lasting alterations in neuromodulatory influences on GABAA receptor-mediated inhibitory neurotransmission in adult offspring. In hippocampal formation, the heightened sensitivity to positive modulatory influences may contribute to synaptic plasticity deficits in fetal ethanol-exposed rat offspring. We speculate that these prenatal ethanol-induced changes may be either a consequence of differential GABAA receptor subunit expression or receptor uncoupling in different brain regions. Furthermore, offspring exposed to ethanol in utero may display differential sensitivities to benzodiazepines and possibly other centrally active therapeutic agents.

Animals↗

Desensitization of a gamma-aminobutyric acid type A receptor in rat is increased by chronic treatment with chlordiazepoxide: a molecular mechanism of dependence.

When rats were made tolerant to the benzodiazepine tranquilizer chlordiazepoxide (CDPX) by its steady administration, a particular gamma-aminobutyric acid type A (GABAA) receptor in cerebral cortex was modified. Its rate of desensitization in the absence of CDPX was enhanced (3-fold with 10 microM GABA) below saturation with GABA, and the dependence of this rate on GABA concentration was changed from sigmoid to hyperbolic. This mimicked the effect of the presence of CDPX on desensitization of the naive receptor. This receptor has been characterized by its rapid desensitization (t1/2 = 30 msec at saturation). In contrast, a different, slower desensitizing GABAA receptor, on the same membrane, was unaffected, and the initial transmembrane halide exchange rate of the faster desensitizing receptor was unaltered. In the presence of CDPX, the initial halide exchange rate of the modified receptor was enhanced, but the already enhanced desensitization rate was not altered. During chronic presence of CDPX and the development of tolerance, the total signal due to this receptor remained constant at the value before exposure. After discontinuation, the total signal decreased but could be restored to the original value by the presence of CDPX. It was postulated that dependence and withdrawal syndromes result from a decreased ratio of initial chloride flux rate to desensitization rate, caused by an increase in desensitization. The contribution of this effect in vivo would depend on desensitization making a contribution to signal termination [or the fraction of receptors that are inactive (desensitized)]. In the quench flow experiments, the total signal due to this receptor from naive rat did not depend much on GABA concentration or the presence of CDPX because the result of increased channel opening was counterbalanced by increased desensitization. In contrast, the total signal of this receptor from tolerant rat was significantly increased by CDPX or increased GABA concentration. Differences between these experiments and measurements reported with other drugs could be explained if, in those experiments, the halide exchange rate, as well as its desensitization rate, retained an enhanced value in the absence of the drug.

Animals↗

Effects of prenatal ethanol exposure on phospholipase C-beta 1 and phospholipase A2 in hippocampus and medial frontal cortex of adult rat offspring.

Previous studies in our laboratory using a rat model of fetal alcohol exposure (FAE) suggest that FAE-induced behavioral deficits are, in part, linked to neurochemical and electrophysiological deficits in long-term potentiation (LTP) in the entorhinal cortical perforant path projection to the hippocampal formation. Several findings suggest that signal-activated phospholipase C (PLC) and phospholipase A2 (PLA2) are critical to the induction and maintenance of LTP. Thus, alterations in phospholipid metabolism may play a significant role in the LTP deficits observed in FAE offspring. To test this hypothesis, we measured PLC-beta 1 and PLA2 activities in the hippocampus and medial frontal cortex of adult rats prenatally exposed to ethanol. PLC-beta 1 activities were significantly decreased by 20 to 30% in both the hippocampus and medial frontal cortex of FAE rats, compared with ad libitum and pair-fed controls. Total Ca(2+)-dependent PLA2 activity was 25% lower in the medial frontal cortex of FAE rats, but did not significantly differ from controls in the hippocampal formation. Approximately 30% of the measured activity in both the medial frontal cortex and hippocampal formation of ad libitum and pair-fed animals was associated with an 85 kDa cytosolic PLA2 form. Cytosolic PLA2 activities were significantly reduced in both the medial frontal cortex and hippocampal formation of FAE rats, compared with controls. These changes in Ca(2+)-dependent PLA 2 and PLC-beta 1 activities, coupled with reports of FAE-induced deficits in protein kinase C activity, indicate that prenatal exposure to moderate quantities of ethanol causes profound and long-lasting deficits in the cellular signaling mechanisms associated with activity-dependent synaptic plasticity and memory formation.

Animals↗

Effect of in vivo administration of anesthetics on GABAA receptor function.

In research involving tissue derived from animals, the use of anesthesia before sacrifice is recommended by the American Veterinary Medical Association and is strongly encouraged by university committees on the use of animals in research. In this study, the effects of anesthesia on the modulation of the GABAA receptor complex by ethanol, a benzodiazepine, and a barbiturate were determined. In vivo administration of the anesthetic methoxyflurane and CO2 before sacrifice resulted in a decrease in Cl- flux in mouse brain microsacs. These treatments also resulted in the loss of the ability of the GABAA receptor modulatory agents flunitrazepam and ethanol to enhance the Cl- flux in this assay system.

Anesthesia↗

Gamma-aminobutyric acidA receptor function is inhibited by microtubule depolymerization.

Microtubules are present at postsynaptic densities in brain and are proposed to be involved in anchoring neurotransmitter receptor clusters at postsynaptic membranes. However, the influence of microtubules on gamma-aminobutyric acidA (GABAA) receptors has not been studied. Microtubule-affecting agents were tested for their actions on GABAA receptor function, by measuring muscimol-stimulated chloride uptake into cerebral cortical microsacs and proteoliposomes and GABA-mediated currents in Xenopus laevis oocytes expressing GABAA receptors. Colchicine, nocodazole, vinblastine, and taxol inhibited muscimol-stimulated chloride uptake. beta- and gamma-lumicolchicine did not inhibit GABAA ergic function. Colchicine decreased the potency of muscimol, a GABA agonist, to stimulate chloride uptake without affecting the specific binding of [3H]flunitrazepam or t-[35S]butylbicyclophosphorothionate to the GABAA receptor, or the allosteric modulation of binding of these ligands by muscimol. The function of purified GABAA receptors reconstituted in proteoliposomes, a preparation not containing microtubule components, was not affected by colchicine. In contrast to the results seen in human monocytes by other investigators, we found that colchicine decreased, rather than increased, protein kinase A activity in cortical microsacs. Thus, protein kinase A modulation of the GABAA receptor is not a likely mechanism for the actions of colchicine. We propose that microtubule-depolymerizing agents inhibit GABAA ergic function by disrupting the interaction of GABAA receptors with microtubules.

Animals↗

Ethanol enhances synaptically evoked GABAA receptor-mediated responses in cerebral cortical neurons in rat brain slices.

Previous intracellular electrophysiological studies on rat hippocampal brain slices have shown very little effect of acute ethanol application on synaptically evoked GABAA receptor-mediated responses recorded in CA1 pyramidal neurons. The present study was designed to compare the effects of ethanol on pyramidal neurons in the hippocampus and cerebral cortex. Using conventional intracellular microelectrodes (60-80 M omega) to impale cortical neurons in brain slices, 80 mM ethanol application did not affect the membrane input impedance nor evoked EPSPs, but significantly affected the resting membrane potential (usually a 2-5 mV hyperpolarization). When stimulus-evoked GABAA-mediated IPSCs were studied using whole-cell recordings from cortical neurons voltage-clamped at depolarizing potentials, monophasic IPSCs were evoked that were blocked by bicuculline, increased by pentobarbital, and enhanced by ethanol superfusion in a dose dependent manner over the range of 20-160 mM. Hippocampal IPSCs recorded under identical conditions were not enhanced by ethanol. Parallel studies of GABA-stimulated 36Cl- flux measurements in microsacs prepared from hippocampal, cerebral cortical and cerebellar tissue demonstrated that ethanol significantly enhanced (30-50%) 36Cl- flux in microsacs derived from the cerebral cortex and cerebellum, but not in microsacs prepared from the hippocampus. These results demonstrate that there are clear brain region-dependent differences in the way that GABAA receptor function is altered by acute ethanol, and that these differences are apparent not only as an enhancement of responses to exogenous GABA, but also as a facilitation of the responses to endogenous GABA released from inhibitory nerve terminals during synaptic activation.

Animals↗

Barbiturate tolerance: effects on GABA-operated chloride channel function.

Male ICR mice were fed powdered laboratory chow containing phenobarbital for 7 days to induce tolerance. Mice were sacrificed and brains assayed for changes in GABA-mediated chloride flux into brain membrane vesicles (microsacs). Concentration-dependent stimulation of chloride flux by GABA alone was not affected by the development of tolerance to phenobarbital. Phenobarbital potentiation of GABA-mediated chloride flux was significantly attenuated in the membranes prepared from phenobarbital-tolerant mice compared with those from pair-fed control mice. Similarly, stimulation of GABA-mediated flux by the benzodiazepine, flunitrazepam was also depressed in membranes from tolerant mice. However, the ability of ethanol and the benzodiazepine inverse agonist FG-7142 to modulate GABA-gated chloride flux was not affected by the development of phenobarbital tolerance. No significant changes in saturation [3H]diazepam binding parameters were observed. These findings suggest that there is a degree of cross-tolerance between phenobarbital and benzodiazepine agonist at the level of the GABA-operated chloride channel. Furthermore, although some reports have demonstrated behavioral cross-tolerance between ethanol and barbiturates, the present data suggest different mechanisms of tolerance development for these intoxicants at the level of the GABAA receptor chloride channel complex.

Animals↗

Effect of thiol group modification on ion flux and ligand binding properties of the GABAA-benzodiazepine receptor chloride channel complex.

Agents that modify thiol groups have been shown to alter ligand binding at a variety of receptor sites. In addition, alkylation of sulfhydryls has been shown to block ion channel conductance. We studied the effects of thiol reagents on gamma-aminobutyric acid (GABA)-activated chloride flux (36Cl-) and [3H]-diazepam binding in mouse brain membrane preparation (microsacs). Incubation of microsacs in the presence of: mercuric chloride (HgCl2), p-chloromercuriphenylsulfonic acid (pCMBS), hydroxymercuribenzoate (HMB), n-ethylmaleimide (NEM), or iodoacetic acid (IAA) attenuated GABA-stimulated Cl- uptake. The thiol reagents reduced both maximal stimulation and the potency of GABA to induce Cl- uptake. Thiol reagent treatment decreased the affinity of high-affinity [3H]-muscimol equilibrium binding. Supernatant prepared from microsacs treated with pCMBS stimulated Cl- uptake in the absence of GABA agonist in microsacs unexposed to thiol reagents. The supernatant taken from pCMBS-treated microsacs also stimulated [3H]-diazepam binding. This effect was blocked by the addition of the GABA receptor antagonist bicuculline. The concentration of endogenous GABA in supernatant from pCMBS-treated microsacs was sixfold greater than that in supernatant from control microsacs. This increase in levels of endogenous GABA by thiol reagents was due to both an increase in GABA release and a decrease in high-affinity GABA uptake.

Animals↗

Effects of lorazepam tolerance and withdrawal on GABAA receptor operated chloride channels in mice selected for differences in ethanol withdrawal severity.

Withdrawal seizure prone (WSP) and withdrawal seizure resistant (WSR) mice were treated with 5 mg/kg lorazepam for 7 days via implanted osmotic mini pumps. Following chronic drug treatment, brains were assayed for GABA-mediated chloride flux (GABA-Cl-). Under control (drug naive) conditions, brain membranes prepared from WSP and WSR lines did not differ in flunitrazepam or ethanol stimulation of GABA-mediated 36Cl- uptake, but the WSP lines were more sensitive to inhibition of 36Cl- flux by the inverse agonist, FG-7142. Membranes from lorazepam tolerant WSP and WSR mice were resistant to flunitrazepam- and ethanol-stimulation of GABA-Cl-. Withdrawal from chronic treatment, by an acute injection with the benzodiazepine antagonist RO15-1788, returned flunitrazepam stimulation of GABA-Cl- to near control levels in WSR membranes but not in WSP membranes and restored ethanol modulation of the channel to control levels in both lines. Inhibition of chloride flux by the benzodiazepine partial inverse agonist, FG-7142 was greater in membranes from WSP mice compared with WSR mice. Tolerance to lorazepam increased sensitivity of the WSR membranes to FG-7142 without altering the response in the WSP line. Again, withdrawal restored the Cl- flux response to FG-7142 back to near control levels. Lorazepam tolerance lowered [3H]-flunitrazepam binding affinity slightly only in the WSR strain with no change in binding number. Withdrawal from chronic lorazepam treatment produced no significant change in binding affinity or number. The initial genotypic differences in benzodiazepine inverse agonist sensitivity, may be related to the selection for withdrawal seizure severity. Chronic administration of lorazepam reduces the coupling between the benzodiazepine agonist site and the chloride channel and concomitantly increases coupling between the channel and the inverse agonist site, while withdrawal resets the receptor coupling back to control response levels. However, for the WSP line, this drug environment dependent shift in channel coupling bias appears to be deficient compared with the WSR line.

Animals↗

Brain region-dependent sensitivity of GABAA receptor-mediated responses to modulation by ethanol.

Simultaneous extracellular and intracellular electrophysiological recordings were made from the CA1 region of rat hippocampal brain slices during superfusion with ethanol. Ethanol (80 mM) had a biphasic effect on the extracellularly recorded population spike, with an initial increase followed by a significant reduction (38%) in this response, which was maximal 10 to 15 min after the start of ethanol application. Concurrent intracellular recordings in the CA1 showed a small (0.7 mV) hyperpolarization of the resting membrane potential, with no significant change in the input impedance, EPSP, GABAA and GABAB IPSPs, or after hyperpolarization (AHP) following depolarizing current injection. Ethanol reduced the amplitude and duration of depolarizing responses to brief, localized pressure-ejection of N-methyl-D-aspartate (NMDA) onto pyramidal neuron dendrites, but did not affect the GABAA receptor-mediated depolarizing responses to the dendritic application of GABA. In parallel studies, the effect of ethanol on GABA-stimulated 36Cl- flux was measured in microsac preparations from rat hippocampus, cerebellum, and cerebral cortex. Ethanol application caused substantial enhancement of the chloride uptake from cerebellar and cerebral cortical microsacs, but had no effect on 36Cl- influx in hippocampal microsacs. These results suggest that there are important brain region-dependent differences in the sensitivity of the GABAA receptor/chloride channel to modulation by ethanol.

Animals↗

Effects of lorazepam tolerance and withdrawal on GABAA receptor-operated chloride channels.

Mice were treated with 4 mg/kg of lorazepam for 7 days via implanted osmotic mini pumps. After chronic drug treatment, brains were assayed for GABA-mediated chloride flux (GABA-Cl-). Compared to control, brain membranes from lorazepam-tolerant mice were resistant to flunitrazepam stimulation of GABA-Cl-. Lorazepam tolerance did not affect [3H]diazepam binding affinity but did lower binding number slightly. Membranes from lorazepam-tolerant mice were cross-tolerant to both ethanol and phenobarbital stimulation of GABA-Cl-. Pentobarbital-stimulation of GABA-Cl- was equivalent in the two treatment groups. An increase in maximum inhibition of chloride flux produced by the benzodiazepine partial inverse agonist, n-methyl-beta-carboline-3-carboxamide (FG-7142) in membranes from lorazepam-tolerant mice was observed. FG-7142 was also found to be a more potent inhibitor of [3H]diazepam binding in membranes from lorazepam-tolerant mice. Withdrawal from chronic treatment by an acute injection with the benzodiazepine antagonist RO-15-1788 (flumazenil), restored functioning of the channel complex to control levels. There were no differences between membranes from control and lorazepam withdrawn mice in stimulation by flunitrazepam, ethanol, phenobarbital and pentobarbital or inhibition by FG-7142 of GABA-Cl-. [3H]Diazepam-saturated binding parameters and inhibition of binding by FG-7142 were similar. Chronic administration of lorazepam reduces the coupling between the benzodiazepine agonist site and the chloride channel and concomitantly increases coupling between the channel and the inverse agonist site. Furthermore, these findings offer neurochemical evidence for cross-tolerance to ethanol and phenobarbital after induction of lorazepam tolerance.

Animals↗