Epilepsy
Study register · detail Präklinische Studie (in vitro + in vivo Tiermodell) · Epilepsy · 2010

Cannabidiol displays antiepileptiform and antiseizure properties in vitro and in vivo.

Clear benefit GRADE Very low 342 citations
SamplePräklinisch
ControlVehicle-treated control animals
EndpointSeizure incidence / LFP burst…
Blindingn.a.
DesignPräklinische Studie (in vitro + in vivo Tiermodell)
Cannabinoidcbd
Max. dose100.0 mg
Key finding

CBD significantly reduced epileptiform activity in vitro and seizure severity as well as mortality in vivo compared to vehicle.

Summary

Preclinical investigation of CBD (0,01–100 µM in vitro; 1/10/100 mg/kg in vivo) in hippocampal brain slices and in the mouse pentylenetetrazole seizure model. CBD 100 mg/kg significantly reduced severe seizures and mortality vs. vehicle (p<0.05). In vitro: reduction of amplitude and duration of epileptiform LFP bursts in CA1, CA3 and dentate gyrus. Mechanism of action independent of the CB1 receptor. First evidence for CBD as an antiepileptic mode of action without psychoactive CB1 agonism.

P
PopulationHippocampal brain slices (rat, in vitro) and rodents in the pentylenetetrazole model of generalized seizures (in vivo)
I
InterventionCannabidiol (CBD) 0,01–100 µM (in vitro) or 1, 10, 100 mg/kg (in vivo)
C
ControlVehicle-treated control animals (in vivo); baseline conditions (in vitro)
O
OutcomeCBD 100 mg/kg significantly reduced incidence of severe seizures and mortality vs. vehicle; in vitro reduction of LFP burst amplitude and duration in several hippocampal regions
Confidence in the evidence
Very low

The lowest GRADE level, the effect estimate remains uncertain.

Downgraded for
Indirectness
Quality profile
Sample size
Blinding
Effect size Clear benefit
Citations / year
Authors
Jones NA, Hill AJ, Smith I, Bevan SA, Williams CM, Whalley BJ, Stephens GJ.
DOI 10.1124/jpet.109.159145
Design: Präklinische Studie (in vitro + in vivo Tiermodell)
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Abstract
Plant-derived cannabinoids (phytocannabinoids) are compounds with emerging therapeutic potential. Early studies suggested that cannabidiol (CBD) has anticonvulsant properties in animal models and reduced seizure frequency in limited human trials. Here, we examine the antiepileptiform and antiseizure potential of CBD using in vitro electrophysiology and an in vivo animal seizure model, respectively. CBD (0.01-100 muM) effects were assessed in vitro using the Mg(2+)-free and 4-aminopyridine (4-AP) models of epileptiform activity in hippocampal brain slices via multielectrode array recordings. In the Mg(2+)-free model, CBD decreased epileptiform local field potential (LFP) burst amplitude [in CA1 and dentate gyrus (DG) regions] and burst duration (in all regions) and increased burst frequency (in all regions). In the 4-AP model, CBD decreased LFP burst amplitude (in CA1 only at 100 muM CBD), burst duration (in CA3 and DG), and burst frequency (in all regions). CBD (1, 10, and 100 mg/kg) effects were also examined in vivo using the pentylenetetrazole model of generalized seizures. CBD (100 mg/kg) exerted clear anticonvulsant effects with significant decreases in incidence of severe seizures and mortality compared with vehicle-treated animals. Finally, CBD acted with only low affinity at cannabinoid CB(1) receptors and displayed no agonist activity in [(35)S]guanosine 5'-O-(3-thio)triphosphate assays in cortical membranes. These findings suggest that CBD acts, potentially in a CB(1) receptor-independent manner, to inhibit epileptiform activity in vitro and seizure severity in vivo. Thus, we demonstrate the potential of CBD as a novel antiepileptic drug in the unmet clinical need associated with generalized seizures.

The impediment to action advances action. — Marcus Aurelius