Ibogaine is a psychoactive indole alkaloid derived from plants such as Tabernanthe iboga, characterized by hallucinogenic and oneirogenic effects. Ibogaine exhibits complex pharmacology by interacting with multiple neurotransmitter systems, notably affecting opioid, serotonin, sigma, NMDA, and nicotinic acetylcholine receptors; its metabolite noribogaine primarily acts as a serotonin reuptake inhibitor and κ-opioid receptor agonist.
The psychoactivity of the root bark of the iboga tree, T. iboga, one of the plants from which ibogaine is extracted, was first discovered by forager tribes in Central Africa, who passed the knowledge to the Bwiti tribe of Gabon. It was first documented in the 19th century for its spiritual use, later isolated and synthesized for its psychoactive properties, briefly marketed in Europe as a stimulant, and ultimately controversially researched for its potential in treating addiction despite being classified as a controlled substance. Ibogaine can be semisynthetically produced from voacangine, with its total synthesis achieved in 1956 and its structure confirmed by X-ray crystallography in 1960. Its clinical use and development have been limited due to regulatory barriers and serious safety risks, such as toxicity to the heart.
Ibogaine produces a two-phase experience—initially visionary and dream-like with vivid imagery and altered perception, followed by an introspective period marked by lingering side effects, such as nausea and mood disturbances, which may persist for days. Long-term risks include mania and heart issues such as long QT syndrome, and potentially fatal interactions with other drugs.
Only two randomized controlled trials have been conducted on ibogaine and noribogaine for substance use disorders, and while they show preliminary anti-addictive potential, their safety and efficacy are unconfirmed, with significant risks including cardiotoxicity and fatalities. Ibogaine is federally illegal in the United States. It is used in treatment clinics abroad under legal gray areas, with growing media attention. It has inspired the development of non-hallucinogenic, non-cardiotoxic analogues like 18-MC and tabernanthalog for therapeutic use. In 2025, Texas allocated $50 million for clinical research on ibogaine to develop FDA-approved treatments for opioid use disorder, co-occurring substance use disorders, and other ibogaine-responsive conditions. A 2026 US executive order directed federal agencies to accelerate review of ibogaine.
Contents
Use and effects
Ibogaine is derived from the root of Tabernanthe iboga, a plant known to exhibit hallucinogenic effects in people who consume it. It is described as having a typical dose range of 1,000 to 1,500 mg orally, with these doses producing hallucinogenic effects, and a duration of 18 to 36 hours. However, lower doses like 200 to 400 mg orally are also active and said to be hallucinogenic. In addition, very low doses of ibogaine, like 8 to 50 mg orally, have been used and reported to produce stimulant or "antidepressant" effects. The onset of the drug is 1 to 3 hours and peak effects have been described as being reached after 2 hours. With full hallucinogenic doses, ibogaine is described as having three different phases of effects. The first phase is the acute or visionary phase, which onsets after 1 to 3 hours and has a duration of 4 to 8 hours; the second phase is the evaluative or introspective phase, which starts after 4 to 8 hours and has a duration of 8 to 20 hours; and the third phase is residual stimulation, which onsets after 12 to 24 hours and has a duration of 24 to 72 hours or longer. Each of these phases is described as having distinct qualitative effects.
The visionary phase is a dream-like, conscious state called oneirophrenia. Visual effects are almost always present and are often described as films or slideshows. These may be accompanied by increases in long-term visual memory, resulting in autobiographical content. Other changes to sensation and perception may occur, including auditory hallucinations or distortions. Nausea and vomiting can be severe. Subjects may experience extreme confusion and/or a depressed mood. The visionary stage typically lasts 4–8 hours, but may last longer with especially high doses.
The introspective phase is poorly defined, often simply as 24 or 36 hours post-treatment. Sensation and perception return to normal, but nausea, headaches, and other side effects linger. Insomnia, irritability, and mood changes are often seen, including depression and sometimes mania. Depression can persist well after 36 hours, known as a "grey day"; the effect is well-recognized. A persistently low mood can progress into major depressive disorder, a chronic condition. For the treatment of opioid or alcohol addiction, the subjective experiences do not appear to be important, although they are correlated with some secondary measures (e.g., satisfaction in self-assessments).
Ibogaine has been referred to as an oneirogen (oneirophrenic or oneiric), or a hallucinogen that produces a dream-like state of consciousness. This unique altered state of consciousness is shared with harmala alkaloids like harmaline but is distinct from that of other hallucinogens like serotonergic psychedelics such as LSD or psilocybin.
Contraindications
Ibogaine should not be used during pregnancy or breastfeeding.
Adverse effects
There is a need for controlled clinical trials before the safety of ibogaine can be established; existing evidence, largely from uncontrolled case reports, links it to significant acute and long-term adverse events (especially cardiac issues like QTc prolongation), including fatalities. It should only be used in medically supervised settings with thorough screening and continuous cardiac and psychiatric monitoring.
Ibogaine can cause various cardiovascular changes (e.g., slowed heart rate, blood pressure shifts), neurological effects (ataxia, tremor, mania), and rare but serious complications, including arrhythmias, respiratory failure, and death, especially when combined with opioids or in patients with underlying conditions.
Cardiac risks likely occur through hERG channel blockade leading to QT prolongation and arrhythmias; the synthetic analog 18-MC appears to produce much less of this dangerous effect despite similar binding affinity.
A 2022 review found 58 ibogaine-associated emergencies, including 38 deaths. Two of these deaths occurred in the setting of clinical studies. According to a 2012 estimate, 1 in every 300 patients who take ibogaine die.
Neurotoxicity
Laboratory studies in rats indicate that ibogaine at high doses may cause degeneration of Purkinje cells in the cerebellum. This also occurred with the related drug harmaline. However, subsequent research found no evidence of this neurotoxicity with ibogaine in a primate. In limited human research, neuropathological examination revealed no evidence of neuronal degenerative changes in an adult female patient who had received four separate doses of ibogaine ranging between 10 and 30 mg/kg over a 15-month interval. A published series of fatalities associated with ibogaine ingestion also found no evidence for consistent neurotoxicity.
Interactions
Ibogaine has potential for adverse interactions with other psychedelic agents and prescription drugs. It may interact with monoamine oxidase inhibitors (MAOIs), for instance due to its serotonin reuptake inhibition.
Pharmacology
Pharmacodynamics
Ibogaine affects many different neurotransmitter systems simultaneously and hence has complex pharmacology. The specific targets mediating the effects of ibogaine are not fully clear. The drug is a cyclized derivative of serotonin, and hence may be expected to have serotonergic actions, but shows relatively low affinity for serotonin receptors. In any case, it appears that the serotonin 5-HT2A, 5-HT2C, sigma σ2, and μ- and/or κ-opioid receptors may be involved in the subjective effects of ibogaine based on animal studies. Conversely, the NMDA, serotonin 5-HT1A and 5-HT3, and sigma σ1 receptors do not appear to be involved.
Ibogaine's major active metabolite noribogaine has similar discriminative stimulus properties compared to ibogaine in rodent drug discrimination tests, but only partially substitutes for ibogaine. It appears that the stimulus properties of ibogaine may be primarily mediated by noribogaine. Noribogaine is most potent as a serotonin reuptake inhibitor. It acts as a moderate κ-opioid receptor agonist and weak μ-opioid receptor agonist or weak partial agonist. The action of ibogaine at the κ-opioid receptor may indeed contribute significantly to the psychoactive effects attributed to ibogaine ingestion; Salvia divinorum, another plant recognized for its strong hallucinogenic properties, contains the chemical salvinorin A, which is a highly selective κ-opioid agonist. Noribogaine is more potent than ibogaine in rat drug discrimination assays when tested for the subjective effects of ibogaine.
There has been uncertainty about which biological target interactions mediate the psychoactive and other effects of ibogaine. Rodent drug discrimination studies with ibogaine have been employed to help elucidate these interactions. Ibogaine partially substitutes for the serotonergic psychedelics LSD and DOM and this can be blocked by the serotonin 5-HT2 receptor antagonist pizotifen. Similarly, LSD and DOM partially substitute for ibogaine and this can be blocked by the serotonin 5-HT2A receptor antagonist pirenperone. The serotonin releasing agent and potent serotonin 5-HT2 receptor agonist fenfluramine also partially substitutes for ibogaine. The preferential serotonin 5-HT2C receptor agonists MK-212 and mCPP partially substitute for ibogaine as well and this can be blocked by the serotonin 5-HT2 receptor antagonist metergoline. The preceding findings suggest that serotonin 5-HT2A and 5-HT2C receptor activation are involved in the subjective effects of ibogaine. Conversely, the serotonin 5-HT1A and 5-HT3 receptors do not appear to be involved.
Pharmacokinetics
Ibogaine is metabolized in the human body by cytochrome P450 2D6 (CYP2D6) into noribogaine (more correctly, O-desmethylibogaine or 12-hydroxyibogamine). Both ibogaine and noribogaine have a plasma half-life around 2 hours in rats, although the half-life of noribogaine is slightly longer than that of the parent compound. In humans, the elimination half-life of ibogaine is about 7 hours whereas the half-life of noribogaine is 24 to 50 hours. Ibogaine may be deposited in fat and metabolized into noribogaine as it is released. After ibogaine ingestion in humans, noribogaine shows higher plasma levels than ibogaine and is detected for a longer period of time than ibogaine.
Chemistry
Ibogaine is a substituted tryptamine. It has two separate chiral centers, meaning that four different stereoisomers of ibogaine exist, which are difficult to resolve.
Synthesis
The chemical synthesis of ibogaine has been described.
One recent total synthesis of ibogaine and related drugs starts with 2-iodo-4-methoxyaniline which is reacted with triethyl((4-(triethylsilyl)but-3-yn-1-yl)oxy)silane using palladium acetate in DMF to form 2-(triethylsilyl)-3-(2-((triethylsilyl)oxy)ethyl)-1H-indole. This is converted using N-iodosuccinamide and then fluoride to form 2-(2-iodo-1H-indol-3-yl)ethanol. This is treated with iodine, triphenyl phosphine, and imidazole to form 2-iodo-3-(2-iodoethyl)-1H-indole. Then, using 7-ethyl-2-azabicyclo[2.2.2]oct-5-ene and cesium carbonate in acetonitrile, the ibogaine precursor 7-ethyl-2-(2-(2-iodo-1H-indol-3-yl)ethyl)-2-azabicyclo[2.2.2]oct-5-ene is obtained. Using palladium acetate in DMF, the ibogaine is obtained. If the exo ethyl group on the 2-azabicyclo[2.2.2]octane system in ibogaine is replaced with an endo ethyl, then epiibogaine is formed.
Crystalline ibogaine hydrochloride is typically produced by semisynthesis from voacangine in commercial laboratories. It can be prepared from voacangine through one-step demethoxycarbonylation process too.
In 2025, researchers at the University of California, Davis Institute for Psychedelics and Neurotherapeutics reported the total synthesis of ibogaine, ibogaine analogues, and related compounds from pyridine.
Analogues and derivatives
Analogues of ibogaine include noribogaine, ibogamine, ibogaline, tabernanthine, voacangine, coronaridine, oxa-noribogaine, and pinoline, among others.
A synthetic derivative of ibogaine, 18-methoxycoronaridine (18-MC), is a selective α3β4 antagonist that was developed collaboratively by neurologist Stanley D. Glick (Albany) and chemist Martin E. Kuehne (Vermont). This discovery was stimulated by earlier studies on other naturally occurring analogues of ibogaine, such as coronaridine and voacangine, that showed these compounds to have anti-addictive properties.
More recently, non- and less-hallucinogenic analogues, ibogalogs like tabernanthalog and ibogainalog, were engineered by scientists attempting to produce non-cardiotoxic ibogaine derivatives by removing the lipophilic isoquinuclidine ring. In animal models, both molecules failed to produce cardiac arrhythmias, and tabernanthalog failed to produce any head twitch response, suggesting psychedelic effects were absent. Other deconstructed analogues of ibogaine, such as 5-MeO-IsoqT, have also been developed and studied.
Biosynthesis
Ibogaine biosynthesis begins with tryptophan undergoing enzymatic decarboxylation by tryptophan decarboxylase (TDC) to form tryptamine. Secologanin, an iridoid synthesized from isopentenyl pyrophosphate (IPP) and dimethylallyl pyrophosphate (DMAPP), is reacted with tryptamine to make strictosidine. A glycosidic bond cleavage of strictosidine by strictosidine β-deglucosidase (SGD) produces a lactol. The lactol opens and produces an aldehyde, then condenses to form an iminium. Through isomerization and reduction by geissoschizine synthase 1 (GS1), 19E-geissoschizine is yielded. The indole is oxidized, and the molecule undergoes an intramolecular Mannich reaction and Grob fragmentation to form preakuammicine. Preakuammicine is highly unstable and therefore reduced to stemmadenine by oxidation-reduction reactions (REDOX 1 and REDOX 2). Stemmadine is acylated by stemmadine Ο-acetyltransferase (SAT) to yield stemmadine acetate. Through oxidation by precondylocarpine acetate synthase (PAS) and reduction by dihydroprecondylocarpine acetate synthase (DPAS), an enamine intermediate is formed. The intermediate undergoes fragmentation to produce an iminium that tautomerizes to yield dehydrosecodine. Coronaridine synthase (CorS) catalyzes the isomerization of dehydrosecodine, and an unusual cycloaddition is completed. DPAS and NADPH reduce the iminium to form (-)-coronaridine.
There are two pathways (-)-coronaridine can take to become (-)-ibogaine. The first pathway begins with a P450 enzyme, ibogamine-10-hydroxylase (I10H), and methylation of noribogaine-10-Ο-methyltransferase (N10OMT) to produce (-)-voacangine. Polyneudridine aldehyde esterase-like 1 (PNAE1) and a spontaneous decarboxylation can convert (-)-voacangine to (-)-ibogaine. The second pathway consists of PNAE1 and the spontaneous decarboxylation occurring first to yield (-)-ibogamine, then the reaction of I10H-mediated hydroxylation and N10OMT-catalyzed O-methylation to produce (-)-ibogaine.
Natural occurrence
Ibogaine occurs naturally in iboga root bark. Ibogaine is also available in a total alkaloid extract of the Tabernanthe iboga plant, which also contains all the other iboga alkaloids and thus has only about half the potency by weight of standardized ibogaine hydrochloride.
Due to environmental concerns and low levels in Tabernanthe iboga, ibogaine is often produced via semi-synthesis starting with voacangine, a naturally-occurring alkaloid in Voacanga africana.
History
The use of iboga in African spiritual ceremonies was first reported by French and Belgian explorers in the 19th century, beginning with the work of French naval physician and explorer of Gabon Marie-Théophile Griffon du Bellay. The first botanical description of the Tabernanthe iboga plant was made in 1889. Ibogaine was first isolated from T. iboga in 1901 by Dybowski and Landrin and independently by Haller and Heckel in the same year using T. iboga samples from Gabon. Complete synthesis of ibogaine was accomplished by G. Büchi in 1966. Since then, several other synthesis methods have been developed.
Use of low doses of ibogaine (e.g. 10–30 mg/day) as a stimulant and "anti-fatigue" drug in the treatment of conditions like "cardiac atony", neurasthenia, and convalescence was advocated by French researchers in 1905. From the 1930s to 1960s, ibogaine was sold in France as Lambarène, an extract of the Tabernanthe manii plant, and promoted as a mental and physical stimulant. It was formulated at doses of 200 mg extract containing low doses of 4 to 8 mg ibogaine per tablet. The drug enjoyed some popularity among post-World War II athletes. Lambarène was withdrawn from the market in 1966 when the sale of ibogaine-containing products became illegal in France. Another formulation was Iperton, which contained Tabernanthe iboga extract 40 mg per dose unit.
In 2008, Mačiulaitis and colleagues stated that in the late 1960s, the World Health Assembly classified ibogaine as a "substance likely to cause dependency or endanger human health". The U.S. Food and Drug Administration (FDA) also assigned it to a Schedule I classification, and the International Olympic Committee banned it as a potential doping agent.
Anecdotal reports concerning ibogaine's effects appeared in the early 1960s. Its anti-addictive properties were discovered accidentally by Howard Lotsof in 1962, at the age of 19, when he and five friends—all heroin addicts—noted subjective reduction of their craving and withdrawal symptoms while taking it. Further anecdotal observation convinced Lotsof of its potential usefulness in treating substance addictions. He contracted with a Belgian company to produce ibogaine in tablet form with the name Endabuse for clinical trials in the Netherlands, and was awarded a United States patent for the product in 1985. The first objective, placebo-controlled evidence of ibogaine's ability to attenuate opioid withdrawal in rats, was published by Dzoljic et al. in 1988. Diminution of morphine self-administration was reported in preclinical studies by Glick et al. in 1991. Cappendijk et al. demonstrated reduction in cocaine self-administration in rats in 1993, and Rezvani reported reduced alcohol dependence in three strains of "alcohol-preferring" rats in 1995.
Society and culture
Legal status
As of 2024, the legal status of ibogaine varies widely among countries, as it may be illegal to possess or use, may be legalized, may be decriminalized, or is under consideration for future legislation.
In the United States, although some cities and states have decriminalized psychedelic chemicals, plants and mushrooms, ibogaine has had minimal legislation, and remains illegal under federal law, as of 2026. The US Drug Enforcement Administration enforces ibogaine as a Schedule I substance under the Controlled Substances Act. A 2026 executive order in the US accelerates ibogaine research, regulatory review, patient access through Right to Try, and potential rescheduling if clinical trials and FDA approval criteria are successful. In March 2026, Texas announced plans to use $50 million approved by the Texas Legislature the previous year to create its own ibogaine research program after several proposals from drug companies failed to meet requirements for partnering with the state.
Treatment clinics
Ibogaine treatment clinics have emerged in Mexico, Bahamas, Canada, the Netherlands, South Africa, and New Zealand, all operating in what has been described as a "legal gray area". Costa Rica also has treatment centers. Covert, illegal neighborhood clinics are known to exist in the United States, despite active DEA surveillance. While clinical guidelines for ibogaine-assisted detoxification were released by the Global Ibogaine Therapy Alliance in 2015, addiction specialists warn that the treatment of drug dependence with ibogaine in non-medical settings, without expert supervision and unaccompanied by appropriate psychosocial care, can be dangerous – and, in approximately one case in 300, potentially fatal.
Media
Detox or Die (2004). Directed by David Graham Scott. Scott begins videotaping his heroin-addicted friends. Before long, he himself is addicted to the drug. He eventually turns the camera on himself and his family. After 12 years of debilitating, painful dependence on methadone, Scott turns to ibogaine. Filmed in Scotland and England, and broadcast on BBC One as the third installment in the documentary series One Life.
Ibogaine: Rite of Passage (2004). Directed by Ben Deloenen. Cy, a 34-year-old heroin addict, undergoes ibogaine treatment with Dr. Martin Polanco at the Ibogaine Association, a clinic in Rosarito, Mexico. Deloenen interviews people formerly addicted to heroin, cocaine, and methamphetamine, who share their perspectives about ibogaine treatment. In Gabon, a Babongo woman receives iboga root for her depressive malaise. Deloenen visually contrasts this Western, clinical use of ibogaine with the Bwiti use of iboga root, but emphasizes the Western context.
Facing the Habit (2007). Directed by Magnolia Martin. Martin's subject is a former millionaire and stockbroker who travels to Mexico for ibogaine treatment for heroin addiction.
Tripping in Amsterdam (2008). In this short film directed by Jan Bednarz, Simon "Swany" Wan visits Sara Glatt's iboga treatment center in Amsterdam. Current TV broadcast the documentary in 2008 as part of their "Quarter-life Crisis" programming roster.
I'm Dangerous with Love (2009). Directed by Michel Negroponte. Negroponte examines Dimitri Mobengo Mugianis's long, clandestine career of treating heroin addicts with ibogaine.
One of the five segments of "Hallucinogens DMT" (2012), Season 2, Episode 4 of Drugs, Inc. on National Geographic Channel, a former heroin user treats addicts with ibogaine in Canada. He himself used ibogaine to stop his abuse of narcotics.
The "Underground Heroin Clinic" segment of "Addiction" (2013). Season 1, episode 7 of the HBO documentary series Vice examines the use of ibogaine to interrupt heroin addiction.
Research
Ibogaine has been studied for its potential medical use in treating substance use disorders, particularly opioid addiction, by reducing withdrawal symptoms and cravings. Regulatory restrictions and serious safety concerns, including cardiac risks, have limited its clinical development.
Psychotherapy
Ibogaine was used as an adjunct to psychotherapy by Claudio Naranjo, documented in his 1973 book The Healing Journey: New Approaches to Consciousness. He was awarded patent in 1974.
Addiction treatment
A 2022 systematic review suggests that ibogaine and noribogaine show promise in treating substance use disorders and comorbid depressive symptoms and psychological trauma, but carry serious safety risks, necessitating rigorous clinical oversight. A 2023 review found that ibogaine and noribogaine show some potential in treating substance use disorders, especially opiate detoxification, but that their efficacy is unconfirmed and use carries significant cardiotoxic and mortality risks. A total of two randomized controlled trials have been conducted on ibogaine and noribogaine.
Texas research initiative
In 2025, the state of Texas allocated $50 million to fund clinical research on ibogaine, aiming to develop a U.S. Food and Drug Administration-approved treatment for opioid use disorder, co-occurring substance use disorders, and other ibogaine-responsive conditions. The initiative, supported by former Governor Rick Perry, established a consortium of universities, hospitals, and drug developers, with the goal of positioning Texas as a leading center for psychedelic medicine research.
Federal government initiative
A 2026 executive order directed US agencies to accelerate research, regulatory review, and potential patient access pathways for psychedelic drugs, including ibogaine, for serious mental illness.



