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Collated from PsychonautWiki, Pharmacology, DrugCentral. Where sources differ (e.g. dosing), Compare shows them side by side.

Sections

Also known as HaldolPW

ToxicityPW
can have serious side effects at higher dosages; risk of having severe extrapyramidal symptoms and muscle rigidity

Oral

Route dataPsychonautWiki

ThresholdLightCommonStrongHeavy
0.25 mg0.25–1 mg1–5 mg5–10 mg10 mg+
012.5 mg
LightCommonStrongHeavy
Onset30–60 minutes
Total12–36 hours
OnsetCome-upPeakOffset

🧬 Receptor activityPHDC

TargetActionAffinitySource
D(2) dopamine receptorKi 0.46 nMCHEMBL
D(3) dopamine receptorKi 3.5 nMCHEMBL
D(4) dopamine receptorKi 5.8 nMCHEMBL
D(1A) dopamine receptorKi 140 nMCHEMBL
5-hydroxytryptamine receptor 1D (HTR1D)Antagonist6.6 KiDRUGCENTRAL
5-hydroxytryptamine receptor 2A (HTR2A)Antagonist7 KiDRUGCENTRAL
5-hydroxytryptamine receptor 7 (Htr7)Antagonist6.3 KiDRUGCENTRAL
D(2) dopamine receptor (DRD2)Inverse agonist9.15 KiDRUGCENTRAL
D(3) dopamine receptor (DRD3)Inverse agonist8.52 KiDRUGCENTRAL
D(4) dopamine receptor (DRD4)Inverse agonist9.42 KdDRUGCENTRAL
G protein-activated inward rectifier potassium channel 2 (Kcnj6)Gating inhibitor4.1 EC50DRUGCENTRAL
Potassium voltage-gated channel subfamily H member 1 (KCNH1)Blocker6.2 IC50DRUGCENTRAL
3-beta-hydroxysteroid-Delta(8),Delta(7)-isomerase (EBP)6.72 KiDRUGCENTRAL
5-hydroxytryptamine receptor 1A (HTR1A)5.55 KiDRUGCENTRAL
5-hydroxytryptamine receptor 1B (HTR1B)6.569 KiDRUGCENTRAL
5-hydroxytryptamine receptor 1E (HTR1E)5.301 KiDRUGCENTRAL
5-hydroxytryptamine receptor 1F (HTR1F)5.301 KiDRUGCENTRAL
5-hydroxytryptamine receptor 2A (Htr2a)7.35 KiDRUGCENTRAL
5-hydroxytryptamine receptor 2B (HTR2B)6.1 KiDRUGCENTRAL
5-hydroxytryptamine receptor 2C (HTR2C)5.33 KiDRUGCENTRAL
5-hydroxytryptamine receptor 5A (HTR5A)5.648 KiDRUGCENTRAL
5-hydroxytryptamine receptor 6 (HTR6)5.22 KiDRUGCENTRAL
5-hydroxytryptamine receptor 7 (HTR7)6.45 KiDRUGCENTRAL
AP-2 complex subunit sigma (Ap2s1)7.62 KiDRUGCENTRAL
Adenylate cyclase (Adcy1)5.64 IC50DRUGCENTRAL
Adrenergic receptor alpha-2 (Adra2b)5.57 KiDRUGCENTRAL
Alpha-1A adrenergic receptor (ADRA1A)7.9 KiDRUGCENTRAL
Alpha-1B adrenergic receptor (ADRA1B)8.097 KiDRUGCENTRAL
Alpha-1D adrenergic receptor (ADRA1D)7.553 KiDRUGCENTRAL
Alpha-2A adrenergic receptor (ADRA2A)5.947 KiDRUGCENTRAL
Alpha-2B adrenergic receptor (ADRA2B)6.319 KiDRUGCENTRAL
Alpha-2C adrenergic receptor (ADRA2C)6.26 KiDRUGCENTRAL
Beta-2 adrenergic receptor (ADRB2)5.301 KiDRUGCENTRAL
C-8 sterol isomerase (ERG2)9.3 KiDRUGCENTRAL
Calmodulin (CALM1)6.3 IC50DRUGCENTRAL
D(1A) dopamine receptor (DRD1)7.82 KiDRUGCENTRAL
D(1B) dopamine receptor (DRD5)7.52 KiDRUGCENTRAL
D(2) dopamine receptor (Drd2)9.7 KiDRUGCENTRAL
D(3) dopamine receptor (Drd3)8.52 KiDRUGCENTRAL
Dopamine receptor (DRD2)8.74 IC50DRUGCENTRAL
Histamine H1 receptor (HRH1)6.36 KiDRUGCENTRAL
Histamine H2 receptor (HRH2)5.999 KiDRUGCENTRAL
Histone H1.0 (H1F0)6.11 KiDRUGCENTRAL
Membrane-associated progesterone receptor component 1 (Pgrmc1)7.444 KiDRUGCENTRAL
Mu-type opioid receptor (OPRM1)6.003 KiDRUGCENTRAL
Multidrug resistance protein 1 (ABCB1)6.7 KiDRUGCENTRAL
Muscarinic acetylcholine receptor (Chrm1)5.13 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M1 (CHRM1)5.8 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M2 (Chrm2)6.62 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M3 (CHRM3)5 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M5 (CHRM5)6.182 KiDRUGCENTRAL
Opioid receptor (Oprd1)5.92 KiDRUGCENTRAL
Pol polyprotein (pol)7 KiDRUGCENTRAL
Potassium channel subfamily K member 2 (KCNK2)5.26 IC50DRUGCENTRAL
Potassium voltage-gated channel subfamily H member 2 (KCNH2)7.5 IC50DRUGCENTRAL
Protease (protease)7 KiDRUGCENTRAL
Serotonin 1 (5-HT1) receptor (Htr1a)4.7 IC50DRUGCENTRAL
Serotonin 2 (5-HT2) receptor (Htr2c)8.38 KiDRUGCENTRAL
Sigma intracellular receptor 2 (Tmem97)7.36 KiDRUGCENTRAL
Sigma non-opioid intracellular receptor 1 (SIGMAR1)8.92 EC50DRUGCENTRAL
Sodium channel alpha subunits; brain (Types I, II, III) (SCN1A)5.92 IC50DRUGCENTRAL
Sodium-dependent noradrenaline transporter (SLC6A2)5.74 KiDRUGCENTRAL
Sodium-dependent serotonin transporter (SLC6A4)5.74 KiDRUGCENTRAL
Transmembrane protein 97 (TMEM97)7.8 KiDRUGCENTRAL
Transporter (NET)5.26 KiDRUGCENTRAL
Vesicular acetylcholine transporter (Slc18a3)6.41 KiDRUGCENTRAL
Zinc finger protein 664 (ZNF664)8.18 KiDRUGCENTRAL
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Mechanism of actionPH

While haloperidol has demonstrated pharmacologic activity at a number of receptors in the brain, it exerts its antipsychotic effect through its strong antagonism of the dopamine receptor (mainly D2), particularly within the mesolimbic and mesocortical systems of the brain. Schizophrenia is theorized to be caused by a hyperdopaminergic state within the limbic system of the brain. Dopamine-antagonizing medications such as haloperidol, therefore, are thought to improve psychotic symptoms by halting this over-production of dopamine. The optimal clinical efficacy of antipsychotics is associated with the blockade of approximately 60 % - 80 % of D2 receptors in the brain. While the exact mechanism is not entirely understood, haloperidol is known to inhibit the effects of dopamine and increase its turnover. Traditional antipsychotics, such as haloperidol, bind more tightly than dopamine itself to the dopamine D2 receptor, with dissociation constants that are lower than that for dopamine. It is believed that haloperidol competitively blocks post-synaptic dopamine (D2) receptors in the brain, eliminating dopamine neurotransmission and leading to the relief of delusions and hallucinations that are commonly associated with psychosis. It acts primarily on the D2-receptors and has some effect on 5-HT2 and α1-receptors, with negligible effects on dopamine D1-receptors. The drug also exerts some blockade of α-adrenergic receptors of the autonomic system. Antagonistic activity regulated through dopamine D2 receptors in the chemoreceptive trigger zone (CTZ) of the brain renders its antiemetic activity. Of the three D2-like receptors, only the D2 receptor is blocked by antipsychotic drugs in direct relation to their clinical antipsychotic abilities. Clinical brain-imaging findings show that haloperidol remains tightly bound to D2 dopamine receptors in humans undergoing 2 positron emission tomography (PET) scans with a 24h pause in between scans. A common adverse effect of this drug is the development of extrapyramidal symptoms (EPS), due to this tight binding of haloperidol to the dopamine D2 receptor. Due to the risk of unpleasant and sometimes lifelong extrapyramidal symptoms, newer antipsychotic medications than haloperidol have been discovered and formulated. Rapid dissociation of drugs from dopamine D2 receptors is a plausible explanation for the improved EPS profile of atypical antipsychotics such as [DB00734]. This is also consistent with the theory of a lower affinity for D2 receptors for these drugs. As mentioned above, haloperidol binds tightly to the dopamine receptor, potentiating the risk of extrapyramidal symptoms, and therefore should only been used when necessary.
Haloperidol has less prominent autonomic effects than do other antipsychotic drugs. It has little anticholinergic activity ... it blocks activation of alpha receptors by sympathomimetic amines but is much less potent than chlorpromazine in this action.
Although the complex mechanism of the therapeutic effect is not clearly established, haloperidol is known to produce a selective effect on the central nervous system (CNS) by competitive blockade of postsynaptic dopamine (D2) receptors in the mesolimbic dopaminergic system and an increased turnover of brain dopamine to produce its tranquilizing effects. With subchronic therapy, depolarization blockade, or diminished firing rate of the dopamine neuron (decreased release) along with D2 postsynaptic blockade results in the antipsychotic action.

PharmacodynamicsPH

Use of the first-generation antipsychotics (including haloperidol) is considered highly effective for the management of the "positive" symptoms of schizophrenia including hallucinations, hearing voices, aggression/hostility, disorganized speech, and psychomotor agitation. However, this class is limited by the development of movement disorders such as drug-induced parkinsonism, akathisia, dystonia, and tardive dyskinesia, and other side effects including sedation, weight gain, and prolactin changes. Compared to the lower-potency first-generation antipsychotics such as [DB00477], [DB01624], [DB00623], and [DB01403], haloperidol typically demonstrates the least amount of side effects within class, but demonstrates a stronger disposition for causing extrapyramidal symptoms (EPS). Low‐potency medications have a lower affinity for dopamine receptors so that a higher dose is required to effectively treat symptoms of schizophrenia. In addition, they block many receptors other than the primary target (dopamine receptors), such as cholinergic or histaminergic receptors, resulting in a higher incidence of side effects such as sedation, weight gain, and hypotension. The balance between the wanted drug effects on psychotic symptoms and unwanted side effects are largely at play within dopaminergic brain pathways affected by haloperidol. Cortical dopamine-D2-pathways play an important role in regulating these effects and include the nigrostriatal pathway, which is responsible for causing extrapyramidal symptoms (EPS), the mesolimbic and mesocortical pathways, which are responsible for the improvement in positive schizophrenic symptoms, and the tuberoinfundibular dopamine pathway, which is responsible for hyperprolactinemia. A syndrome consisting of potentially irreversible, involuntary, dyskinetic movements may develop in patients. Although the prevalence of the syndrome appears to be highest among the elderly, especially elderly women, it is impossible to rely upon prevalence estimates to predict, at the inception of antipsychotic treatment, which patients are likely to develop the syndrome. Cases of sudden death, QT-prolongation, and Torsades de Pointes have been reported in patients receiving haloperidol. Higher than recommended doses of any formulation and intravenous administration of haloperidol appear to be associated with a higher risk of QT-prolongation and Torsades de Pointes. Although cases have been reported even in the absence of predisposing factors, particular caution is advised in treating patients with other QT-prolonging conditions (including electrolyte imbalance [particularly hypokalemia and hypomagnesemia], drugs known to prolong QT, underlying cardiac abnormalities, hypothyroidism, and familial long QT-syndrome). A potentially fatal symptom complex sometimes referred to as Neuroleptic Malignant Syndrome (NMS) has been reported in association with antipsychotic drugs. Clinical manifestations of NMS are hyperpyrexia, muscle rigidity, altered mental status (including catatonic signs) and evidence of autonomic instability (irregular pulse or blood pressure, tachycardia, diaphoresis, and cardiac dysrhythmias). Additional signs may include elevated creatine phosphokinase, myoglobinuria (rhabdomyolysis) and acute renal failure.

Pharmacokinetics

Half-lifePH

Following oral administration, the half-life was found to be 14.5-36.7 hours. Following intramuscular injection, mean half-life was found to be 20.7 hours.
10 MG Haloperidol IV and oral administration to healthy volunteers: serum T1/2 10-19 hr after IV and 12-38.3 hr after oral administration. Bioavailability in the order of 60%; distribution volume around 1300 L.
Haloperidol, Elimination: Oral: 24 hours (range 12 to 37 hours). Intramuscular: 21 hours (range, 17 to 25 hours). Intravenous: 14 hours (range, 10 to 19 hours). Haloperidol decanoate, Elimination: Approximately 3 weeks (single or multiple doses).

AbsorptionPH

Haloperidol is a highly lipophilic compound and is extensively metabolized in humans, which may cause a large interindividual variability in its pharmacokinetics. Studies have found a wide variance in pharmacokinetic values for orally administered haloperidol with 1.7-6.1 hours reported for time to peak plasma concentration (tmax), 14.5-36.7 hours reported for half-life (t1⁄2), and 43.73 μg/L•h [range 14.89-120.96 μg/L•h] reported for AUC. Haloperidol is well-absorbed from the gastrointestinal tract when ingested orally, however, the first-pass hepatic metabolism decreases its oral bioavailability to 40 - 75%. After intramuscular administration, the time to peak plasma concentration (tmax) is 20 minutes in healthy individuals or 33.8 minutes in patients with schizophrenia, with a mean half-life of 20.7 hours. Bioavailability following intramuscular administration is higher than that for oral administration. Administration of haloperidol decanoate (the depot form of haloperidol for long-term treatment) in sesame oil results in slow release of the drug for long-term effects. The plasma concentrations of haloperidol gradually rise, reaching its peak concentration at about 6 days after the injection, with an apparent half-life of about 21 days. Steady-state plasma concentrations are achieved after the third or fourth dose.
In radiolabeling studies, approximately 30% of the radioactivity is excreted in the urine following a single oral administration of 14C-labelled haloperidol, while 18% is excreted in the urine as haloperidol glucuronide, demonstrating that haloperidol glucuronide is a major metabolite in the urine as well as in plasma in humans.
The apparent volume of distribution was found to range from 9.5-21.7 L/kg. This high volume of distribution is in accordance with its lipophilicity, which also suggests free movement through various tissues including the blood-brain barrier.
Following intravenous administration, the plasma or serum clearance (CL) was found to be 0.39-0.708 L/h/kg (6.5 to 11.8 ml/min/kg). Following oral administration, clearance was found to be 141.65 L/h (range 41.34 to 335.80 L/h). Haloperidol clearance after extravascular administration ranges from 0.9-1.5 l/h/kg, however this rate is reduced in poor metabolizers of C_YP2D6_ enzyme. Reduced CYP2D6 enzyme activity may result in increased concentrations of haloperidol. The inter-subject variability (coefficient of variation, %) in haloperidol clearance was estimated to be 44% in a population pharmacokinetic analysis in patients with schizophrenia. Genetic polymorphism of CYP2D6 has been demonstrated to be an important source of inter-patient variability in the pharmacokinetics of haloperidol and may affect therapeutic response and incidence of adverse effects.
Haloperidol is well absorbed from the gastrointestinal tract but first-pass hepatic metabolism decreases oral bioavailability to 40 to 75%. Serum concentration peaks 0.5 to 4 hours after an oral dose.
The apparent volume of distribution is about 20 L/kg, consistent with the high lipophilicity of the drug. Haloperidol circulates in blood bound predominantly (90-94%) to plasma proteins.

MetabolismPH

Haloperidol is extensively metabolised in the liver with only about 1% of the administered dose excreted unchanged in urine. In humans, haloperidol is biotransformed to various metabolites, including p-fluorobenzoylpropionic acid, 4-(4-chlorophenyl)-4-hydroxypiperidine, reduced haloperidol, pyridinium metabolites, and haloperidol glucuronide. In psychiatric patients treated regularly with haloperidol, the concentration of haloperidol glucuronide in plasma is the highest among the metabolites, followed, in rank order, by unchanged haloperidol, reduced haloperidol and reduced haloperidol glucuronide. The drug is thought to be metabolized primarily by oxidative N-dealkylation of the piperidine nitrogen to form fluorophenylcarbonic acids and piperidine metabolites (which appear to be inactive), and by reduction of the butyrophenone carbonyl to the carbinol, forming _hydroxyhaloperidol_. The enzymes involved in the biotransformation of haloperidol include cytochrome P450 (CYP) including CYP3A4 and CYP2D6, carbonyl reductase and uridine di-phosphoglucose glucuronosyltransferase enzymes. The greatest proportion of the intrinsic hepatic clearance of haloperidol is performed by glucuronidation and followed by the reduction of haloperidol to reduced haloperidol and by CYP-mediated oxidation. In studies of cytochrome-mediated disposition in vitro, CYP3A4 appears to be the major isoform of the enzyme responsible for the metabolism of haloperidol in humans. The intrinsic clearance of the back-oxidation of reduced haloperidol to the parent compound, oxidative N-dealkylation and pyridinium formation are of the same order of magnitude. This suggests that the same enzyme system is responsible for the above three metabolic reactions. In vivo human studies on haloperidol metabolism have shown that the glucuronidation of haloperidol accounts for 50 to 60% of haloperidol biotransformation and that approximately 23% of the biotransformation was accounted for by the reduction pathway. The remaining 20 to 30% ofthe biotransformation of haloperidol would be via N-dealkylation and pyridinium formation.
Although the exact metabolic fate has not been clearly established, it appears that haloperidol is principally metabolized in the liver. The drug appears to be metabolized principally by oxidative N-dealkylation of the piperidine nitrogen to form fluorophenylcarbonic acids and piperidine metabolites (which appear to be inactive), and by reduction of the butyrophenone carbonyl to the carbinol, forming hydroxyhaloperidol. Limited data suggest that the reduced metabolite, hydroxyhaloperidol, has some pharmacologic activity, although its activity appears to be less than that of haloperidol. Urinary metabolites in rats include p-fluorophenaceturic acid, beta-p-fluorobenzoylpropionic acid, and several unidentified acids.
... it is metabolized via reduction to reduced haloperidol, which is biologically inactive. Different extents of enterohepatic recycling, and ethnic differences in metabolism, could also account for the observed variability in haloperidol disposition.
The enzymes involved in the biotransformation of haloperidol include cytochrome P450 (CYP), carbonyl reductase and uridine diphosphoglucose glucuronosyltransferase. The greatest proportion of the intrinsic hepatic clearance of haloperidol is by glucuronidation, followed by the reduction of haloperidol to reduced haloperidol and by CYP-mediated oxidation. In studies of CYP-mediated disposition in vitro, CYP3A4 appears to be the major isoform responsible for the metabolism of haloperidol in humans. The intrinsic clearances of the back-oxidation of reduced haloperidol to the parent compound, oxidative N-dealkylation and pyridinium formation are of the same order of magnitude, suggesting that the same enzyme system is responsible for the 3 reactions. Large variation in the catalytic activity was observed in the CYP-mediated reactions, whereas there appeared to be only small variations in the glucuronidation and carbonyl reduction pathways. Haloperidol is a substrate of CYP3A4 and an inhibitor, as well as a stimulator, of CYP2D6.
... In vivo pharmacogenetic studies have indicated that the metabolism and disposition of haloperidol may be regulated by genetically determined polymorphic CYP2D6 activity. However, these findings appear to contradict those from studies in vitro with human liver microsomes and from studies of drug interactions in vivo. Interethnic and pharmacogenetic differences in haloperidol metabolism may explain these observations.
Haloperidol has known human metabolites that include (2S,3S,4S,5R)-6-[4-(4-Chlorophenyl)-1-[4-(4-fluorophenyl)-4-oxobutyl]piperidin-4-yl]oxy-3,4,5-trihydroxyoxane-2-carboxylic acid, Haloperidol pyridinium, and p-Fluorobenzoylpropionic acid and 4-(4-chlorophenyl)-4-hydroxypiperidine.

Protein bindingPH

Studies have found that free fraction of haloperidol in human plasma is 7.5-11.6%. This was found to be comparable among healthy adults, young adults, elderly patients with schizophrenia, and even in patients with liver cirrhosis.

Plan when to take Haloperidol — see where onset, peak and comedown land on the clock

Fact-sheets from PsychonautWiki. Harm-reduction reference only — not medical advice.