A dose-response study of ibogaine-induced neuropathology in the rat cerebellum.
Z Xu, L W Chang, W Slikker, S F Ali, R L Rountree, A C Scallet
Toxicological sciences : an official journal of the Society of Toxicology September 1, 2000 DOI: 10.1093/toxsci/57.1.95 via PubMed
Summary
AI-generated from the abstractIbogaine, a psychoactive compound from a West African shrub, can damage brain cells in rats even after a single dose. In rats given 100 mg/kg, the cerebellum showed clear signs of neurodegeneration, specifically in Purkinje neurons. Similar damage occurred in all rats given 75 mg/kg, though the affected areas were narrower. At 50 mg/kg, only 2 of 6 rats showed damage, but those affected had patches of astrocyte activation. No damage was seen in rats given 25 mg/kg, suggesting this dose may be a safe threshold with no observable adverse effects. The findings highlight ibogaine's potential neurotoxicity, which is relevant given its use in addiction treatment.
Study at a glance
| Characteristics | Dose-response study Peer reviewed |
|---|---|
| Sample size | 30 |
| Population | Rats |
| Intervention | Ibogaine |
| Dose | 25 mg/kg, 50 mg/kg, 75 mg/kg, 100 mg/kg |
| Duration | Single injection |
| Topics | Addiction |
| Keywords | Addiction therapy Substance abuse treatment Dependency management Recovery intervention Drug addiction treatment |
| Citations | 37 |
| Key finding | Ibogaine caused dose-dependent neurodegeneration in rat cerebellum, with 25 mg/kg identified as a no-observable-adverse-effect level. |
Abstract
Ibogaine (IBO) is an indole alkaloid from the West African shrub, Tabernanthe iboga. It is structurally related to harmaline, and both these compounds are rigid analogs of melatonin. IBO has both psychoactive and stimulant properties. In single-blind trials with humans, it ameliorated withdrawal symptoms and interrupted the addiction process. However, IBO also produced neurodegeneration of Purkinje cells and gliosis of Bergmann astrocytes in the cerebella of rats given even a single dose (100 mg/kg, ip). Here, we treated rats (n = 6 per group) with either a single ip injection of saline or with 25 mg/kg, 50 mg/kg, 75 mg/kg, or 100 mg/kg of IBO. As biomarkers of cerebellar neurotoxicity, we specifically labeled degenerating neurons and axons with silver, astrocytes with antisera to glial fibrillary acidic protein (GFAP), and Purkinje neurons with antisera to calbindin. All rats of the 100-mg/kg group showed the same pattern of cerebellar damage previously described: multiple bands of degenerating Purkinje neurons. All rats of the 75-mg/ kg group had neurodegeneration similar to the 100-mg/kg group, but the bands appeared to be narrower. Only 2 of 6 rats that received 50 mg/kg were affected; despite few degenerating neuronal perikarya, cerebella from these rats did contain patches of astrocytosis similar to those observed with 75 or 100 mg/kg IBO. These observations affirm the usefulness of GFAP immunohistochemistry as a sensitive biomarker of neurotoxicity. None of the sections from the 25-mg/kg rats, however stained, were distinguishable from saline controls, indicating that this dose level may be considered as a no-observable-adverse-effect level (NOAEL).