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J C Crabbe

Publications and source records attributed to J C Crabbe.

At least 19 recordsLinked to original sources

Antagonism of ethanol withdrawal convulsions in Withdrawal Seizure Prone mice by diazepam and abecarnil.

Abecarnil, a beta-carboline acting at benzodiazepine receptors, has been shown to have anxiolytic and anticonvulsant properties in a number of models. It has reduced muscle relaxant and incoordinating effects in comparison to diazepam. Given the wide clinical application of diazepam to prevent alcohol withdrawal seizures, a genetic animal model was employed to compare abecarnil with diazepam for its anti-withdrawal effects. Withdrawal Seizure Prone (WSP) mice, genetically selected to develop severe handling-induced convulsions after withdrawal from chronic ethanol treatment, were exposed to ethanol vapor for 24 h. WSP mice given doses of abecarnil or diazepam at the peak of withdrawal had significantly reduced handling-induced convulsion scores. While abecarnil was slightly more potent than diazepam, its effects were shorter-lasting. Similar results were seen in an experiment where withdrawal handling-induced convulsions were assessed after a single high-dose ethanol injection. Abecarnil and diazepam also reduced the smaller handling-induced convulsion scores seen in naive WSP mice. Single doses of abecarnil or diazepam did not lead to a rebound elevation of handling-induced convulsion scores suggestive of a withdrawal reaction.

Animals

Neural sensitivity to pentylenetetrazol convulsions in inbred and selectively bred mice.

In these experiments, sensitivity to the convulsant drug pentylenetetrazol (PTZ) was measured in 10 inbred mouse strains, and in 4 mouse lines selectively bred for severe (WSP1, WSP2) or minimal (WSR1, WSR2) ethanol withdrawal convulsions. Using a timed infusion procedure, sensitivity to convulsions was assessed by measures of latency to convulsion, effective dose (ED) infused at time of convulsion, and brain concentration (BC) of PTZ at time of convulsion. In addition, ED and latency to convulsion were measured in WSP and WSR mice at 5 different concentrations of PTZ. Higher concentrations, which increased rate of drug infusion, reduced latency but had little effect on ED. WSP1 mice were slightly more sensitive to PTZ than WSR1 mice, but WSP2 mice were equally or less sensitive than WSR2 mice. Among the inbred strains, latency, ED and brain PTZ concentration were found to be highly correlated, suggesting that pharmacokinetic factors do not significantly influence access of PTZ to sites of action in the central nervous system. The C57BL/6J strain was least sensitive by all measures, while DBA/2J mice were highly sensitive. The BALB/cJ strain was the most sensitive strain as assessed by ED and latency, but BC indicated relatively average sensitivity. Apparently, pharmacokinetic factors in this strain result in a relatively rapid accumulation of drug in brain, making it appear to be more sensitive. Thus, although ED provides a reliable estimate of neural sensitivity in general, genetic factors exist which, in some strains, modify access of PTZ and possibly other drugs to brain, potentially affecting determination of sensitivity in the absence of a measure of brain drug concentration.

Animals

Genetic determinants of ethanol reinforcement.

In this paper, we present examples of some of the several behaviors which have been taken to indicate the reinforcing efficacy of drugs, including ethanol. Efforts to identify the genetic determinants of these behaviors have employed diverse pharmacogenetic methods. For example, we have used selective breeding to develop mice selected for severe or attenuated ethanol withdrawal and have found that Withdrawal Seizure Prone mice show a greater conditioned preference for ethanol-associated locations than the selected Withdrawal Seizure Resistant line. Similarly, HOT mice, selected for insensitivity to ethanol-induced hypothermia, had greater conditioned place preference after ethanol training than COLD mice, selected for ethanol hypothermic sensitivity. We have also developed selected mouse lines responsive or unresponsive to ethanol-stimulated locomotor activity. These FAST and SLOW lines develop sensitization rather than tolerance to ethanol-induced activity. Using inbred strains of mice, others had shown that strains differed in preference for drinking ethanol solutions. We found that these strains also differed in acceptance of ethanol. Single-gene techniques have been used to show that preference drinking is significantly altered in mutant rodent strains lacking hypothalamic vasopressin, or with nephrogenic diabetes insipidus. In a specific panel of Recombinant Inbred mouse strains, we found that a single gene appeared to control a significant portion of the variance in preference drinking. These examples show that traits putatively related to drug reinforcement show substantial genetic control. Specifically, single-gene methods show promise of identification and mapping of genes related to drug reinforcement.

Animals

Genetic differences in hypothalamic-pituitary-adrenal axis responsiveness to acute ethanol and acute ethanol withdrawal.

There is a growing body of evidence suggesting that corticosteroids contribute to the increased neural excitability observed during ethanol withdrawal. In the present study, this was further investigated using mouse strains which differ in ethanol withdrawal severity. DBA/2 (DBA) mice were found to display more severe acute ethanol withdrawal seizures than C57BL/6 (C57) mice. Additionally, DBA mice showed a greater stress response than C57 mice, as measured by higher plasma concentrations of adrenocorticotropic hormone (ACTH) and corticosterone, to an acute dose of ethanol. Mimicking withdrawal plasma corticosterone levels by administering corticosterone to ethanol-naive mice resulted in increases in handling-induced convulsions in the range observed during withdrawal. There did not appear to be a strain difference in sensitivity to the excitatory effects of corticosterone. In summary, the greater stress response to ethanol by DBA mice may account, in part, for the more severe ethanol withdrawal syndrome of this strain.

Adrenocorticotropic Hormone

Single-locus control of saccharin intake in BXD/Ty recombinant inbred (RI) mice: some methodological implications for RI strain analysis.

The sac locus, with a major effect on saccharin preference, was discovered by Fuller (1974) in C57BL/6J (B6), DBA/2J (D2), and derived crosses, and is now supported in the BXD/Ty recombinant inbred (RI) series by a marked bimodal distribution in saccharin preference among 20 strains. The B6 allele led to increased saccharin preference compared to the D2 allele. Since the search for bimodal distributions reflecting major gene loci is an essential part of RI strain analysis, a new statistical method is proposed to test for bimodality, and comparisons are made to previously proposed methods. Another new RI method, quantitative trait loci (QTL) analysis, allows provisional detection and mapping of minor as well as major gene loci. Using this method as a screen, significant associations with saccharin preference were suggested with marker loci on portions of six chromosomes. One of these, the D12nyu1 locus on chromosome 12, was independently supported in a panel of standard (non-RI) inbred strains also tested for saccharin preference. It is unclear whether this reflects the sac locus.

Animals

Genetic approaches to drug dependence.

Pharmacogenetic studies with drugs of abuse are proliferating. Many genetic animal models are now available for studies of the mechanisms of action of a variety of drugs. These models provide unique, genetically defined populations of extremely sensitive and insensitive animals for neuropharmacological analyses. John Crabbe and John Belknap describe how molecular biological methods are being applied to these models in combination with more traditional genetic mapping strategies to identify single genes of importance to drug effects. Pharmacogenetic approaches offer the hope of establishing commonalities of mechanisms among abused drugs.

Animals

Ethanol tolerance in a genetically insensitive selected mouse line.

Mouse lines genetically susceptible (COLD) or resistant (HOT) to the acute hypothermic effects of ethanol were previously shown to differ in tolerance development: HOT mice did not develop tolerance, while COLD mice did. The present experiment increased the thermal load on HOT and COLD mice by administering ethanol chronically at an ambient temperature of 4 degrees C. Under these conditions, initial hypothermic responses were as large as 10 degrees C. Both HOT and COLD mouse lines developed significant tolerance by the third daily injection. Tolerance was dose-dependent: significant tolerance was seen only at the higher doses. HOT and COLD mouse lines developed approximately equal degrees of tolerance. Results support the hypothesis of a role for functional demand in the development of tolerance.

Alcoholic Intoxication

Acute sensitivity of FAST and SLOW mice to the effects of abused drugs on locomotor activity.

The universal nature of the stimulant or euphoric effect of addictive drugs suggests that it may be an important predictor of a drug's addiction potential. Furthermore, assessment of stimulant sensitivity could be useful for predicting the liability of individuals to drug abuse. The stimulant actions of abused drugs from different pharmacological classes may share a common biological mechanism. We investigated this notion by assessing the drug responses relative to base-line locomotor activity of mice selectively bred for increased (FAST) and reduced (SLOW) sensitivity to ethanol-induced stimulation. FAST mice were more sensitive than SLOW mice to the stimulant effects of methanol (1.5-3.0 g/kg), t-butanol (0.2-0.6 g/kg), n-propanol (0.15-1.2 g/kg), pentobarbital (10-40 mg/kg) and phenobarbital (15-120 mg/kg). FAST and SLOW mice were similarly stimulated by d-amphetamine (1.25-10 mg/kg) and caffeine (2.5-20 mg/kg). The activity of FAST and SLOW mice was equally depressed by nicotine (0.5-2.0 mg/kg) and morphine (4-75 mg/kg). Finally, FAST mice were unaffected, whereas SLOW mice were depressed by diazepam (1-8 mg/kg). Selection for relative sensitivity to stimulation by ethanol has generalized to other alcohols and to barbiturates, but not to several other abused drugs, including amphetamine. The data presented here support a hypothesized common mechanism of stimulant action for alcohols and barbiturates, and suggest that differences in sensitivity to drug stimulant effects can be seen in the absence of dopamine system differences.

Alcohols

Effects of convulsants on handling-induced convulsions in mice selected for ethanol withdrawal severity.

Withdrawal seizure-prone (WSP) mice were genetically selected to express severe handling-induced convulsions (HIC) upon cessation of chronic ethanol vapor inhalation. The HIC is a sensitive measure of CNS excitability, and the current paper compares the effects of eleven convulsant drugs on the HIC in WSP and WSR (withdrawal seizure-resistant) mice, the latter selected for minimal alcohol withdrawal HIC. If WSP and WSR mice were differentially sensitive to a subset of the tested drugs, a common mechanism of action for that subset would imply that genes influencing that mechanism were important in determining ethanol withdrawal severity. All drugs significantly enhanced HIC in WSP mice. The magnitude of enhancement was small for N-methyl-D-aspartate (NMDA), kainic acid, BAY K 8644, Ro 15-4513, and strychnine; greater enhancement in WSP mice was seen after nicotine, and the direct and indirect gamma-aminobutyric acid (GABA) antagonists bicuculline, 3-mercaptopropionic acid, picrotoxin, t-butylcyclophosphorothionate (TBPS), and pentylenetetrazol. Only two drugs, picrotoxin and pentylenetetrazol, had a marked effect on WSR mice: maximal effect of these drugs was equivalent in WSP and WSR mice. However, picrotoxin and pentylenetetrazol were more potent in WSP than in WSR mice. Three other GABA antagonists, bicuculline, 3-mercaptopropionic acid, and TBPS, had a very small effect in WSR mice: these drugs also seemed to be more potent in WSP than in WSR mice. For all other tested drugs, maximal effect in WSP mice was much greater in WSP than in WSR mice.(ABSTRACT TRUNCATED AT 250 WORDS)

Alcoholism

Response to selection for ethanol-induced locomotor activation: genetic analyses and selection response characterization.

Selectively bred FAST mice are highly susceptible, while SLOW mice are less susceptible, to the locomotor stimulant effects of ethanol. Heritability estimates indicate that approximately 15% of the variance in the FAST lines is of additive genetic origin, while low susceptibility is ostensibly nonheritable. Inbreeding has increased at the rate of 2% per generation, but fertility has been unaffected. Measurement reliability for sensitivity to this ethanol effect was high when measured in both circular (r = 0.6) and square (r = 0.7) open-fields. In addition, our results indicate that we have selected for differences in sensitivity to ethanol rather than for differences in habituation to the test environment. The difference in response to ethanol between FAST and SLOW mice extended to tests varying in duration, and to a range of ethanol doses. We conclude that the divergence between FAST and SLOW mice generalizes to related test parameters, and speculate that the genetic architecture underlying the locomotor stimulant response may be simpler than previously proposed.

Animals

Use of recombinant inbred strains to identify quantitative trait loci in psychopharmacology.

Unlike simple Mendelian characteristics, individual differences in complex quantitative phenotypes studied in psychopharmacology are generally distributed continuously and are likely to be influenced by many genes. Recombinant inbred (RI) strains are valuable not only for their traditional use of detecting major gene segregation and linkage but also for identifying associations between quantitative traits and quantitative trait loci (QTL) that account for relatively small amounts of variation in phenotypes as well as loci that account for greater amounts of variation. When applied to published data on genetic markers and on amphetamine, alcohol, and morphine responses in BXD RI strains (RI strains developed from the cross between C57BL/6J and DBA/2J progenitor inbred strains), the RI QTL approach identified several significant associations beyond known major gene effects. Together, significant associations explain more than half of the genetic variance for these measures. The RI QTL approach is especially valuable for investigating the QTL underpinnings of genetic correlations among measures. It is recommended that psychopharmacogenetic research focus on the BXD RI strains. The cumulative and integrative nature of such a program of research is the major benefit of the RI QTL association approach for molecular genetic analysis of psychopharmacological processes, their physiological infrastructure, and their interface with other behavioral and biological systems.

Animals

Differential modulation by the stress axis of ethanol withdrawal seizure expression in WSP and WSR mice.

Withdrawal from both acute and chronic ethanol (EtOH) exposure is associated with increased neural excitability and increased activity of the hypothalamic-pituitary-adrenal axis. There is some evidence that glucocorticoids are necessary for EtOH withdrawal seizure expression. Lines of mice that were selected for severe (WSP) and minimal (WSR) EtOH withdrawal (as estimated from handling-induced convulsion scores) have been shown to differ in their stress response following an acute dose of EtOH. In this study we provide evidence that these lines of mice also differ in their sensitivity to the excitatory effects of glucocorticoids. EtOH withdrawal seizures of WSP mice were significantly increased by chronic and acute corticosterone treatment, whereas those of the WSR mice were unaffected. Neural excitability was decreased in the WSP mice when aminoglutethimide, a glucocorticoid synthesis blocker, was administered. Thus, it appears that genetic differences in EtOH withdrawal seizure severity may be due, in part, to differences in sensitivity to the excitatory effects of glucocorticoids.

Alcohol Withdrawal Delirium

Use of recombinant inbred strains to assess vulnerability to drug abuse at the genetic level.

The use of Recombinant Inbred mouse Strains (RIS) to derive information about the complexity of the genetic architecture underlying various traits is increasing in popularity. Behaviors measured to index sensitivity to drug effects and vulnerability to drug abuse are considered here. Potential uses of RIS are identification of major gene effects, mapping of traits to particular chromosomal sites, determining genetic correlations between characters, and identifying behaviorally extreme genotypes. This approach has led to identification of a major gene moderating alcohol acceptance in mice and has revealed a more complex polygenic system influencing morphine consumption.

Alcohol Drinking

Effect of neurotransmitter-selective drugs in mice selected for differential sensitivity to the hypothermic actions of ethanol.

Mice selectively bred for resistance (HOT) and sensitivity (COLD) to the hypothermic effect of EtOH were tested for their hypothermic response to neurotransmitter-specific drugs and for the effect of such drugs on EtOH induced hypothermia (HT). The drugs administered were the opiate drugs morphine, levorphanol and U50488H, the dopamine agonists apomorphine, LY171535 and SKF38393, the dopamine antagonist chlorpromazine, the alpha adrenergic agonist St587, the cholinergic agonist nicotine and amphetamine, which increases the release of catecholamines. All of the drugs tested, with the exception of SKF38393 and amphetamine, induced a hypothermic response in HOT and COLD mice. SKF38393 had no effect on body temperature or HT produced by EtOH. Amphetamine caused HT at low doses and hyperthermia at high doses. COLD mice were more sensitive than HOT mice to the hypothermic effect of morphine and levorphanol, mu-opiate agonists, and U50488H, a relatively specific kappa agonist. All of the other drugs tested were approximately equally potent in HOT and COLD mice. These results suggest that the differential sensitivity of HOT and COLD mice to EtOH-induced HT may be partially mediated through genetic changes in opiate mechanisms.

Animals