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Prochlorperazine

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3 sources

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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 Compazine, Stemzine, Buccastem, Stemetil, PhenotilPW

Oral

Route dataPsychonautWiki

ThresholdLightCommonStrongHeavy
2 mg2.5–5 mg5–20 mg20–40 mg—+
040 mg
LightCommonStrongHeavy
Onset30–45 minutes
Total4–8 hours
OnsetCome-upPeakOffset

🧬 Receptor activityPHDC

TargetActionAffinitySource
D1 receptorAntagonist7.1 pKiGTOPDB
D2 receptorAntagonist8.4 pKiGTOPDB
D3 receptorAntagonist8.4 pKiGTOPDB
D4 receptorAntagonist6.1 pKiGTOPDB
D(2) dopamine receptor (DRD2)Antagonist8.764 KiDRUGCENTRAL
D(3) dopamine receptor (DRD3)Antagonist8.611 KiDRUGCENTRAL
5-hydroxytryptamine receptor 1A (HTR1A)5.229 KiDRUGCENTRAL
5-hydroxytryptamine receptor 1B (Htr1b)5.919 KiDRUGCENTRAL
5-hydroxytryptamine receptor 2A (HTR2A)7.824 KiDRUGCENTRAL
5-hydroxytryptamine receptor 2B (HTR2B)7.187 KiDRUGCENTRAL
5-hydroxytryptamine receptor 2C (HTR2C)6.914 KiDRUGCENTRAL
5-hydroxytryptamine receptor 4 (HTR4)6.712 KiDRUGCENTRAL
5-hydroxytryptamine receptor 6 (HTR6)6.907 KiDRUGCENTRAL
Alpha-1A adrenergic receptor (ADRA1A)7.622 KiDRUGCENTRAL
Alpha-1B adrenergic receptor (Adra1b)7.31 KiDRUGCENTRAL
Alpha-1D adrenergic receptor (ADRA1D)7.886 KiDRUGCENTRAL
Alpha-2A adrenergic receptor (ADRA2A)7.201 KiDRUGCENTRAL
Alpha-2B adrenergic receptor (ADRA2B)8.324 KiDRUGCENTRAL
Alpha-2C adrenergic receptor (ADRA2C)7.921 KiDRUGCENTRAL
Cytochrome P450 1A2 (CYP1A2)5.699 IC50DRUGCENTRAL
Cytochrome P450 2D6 (CYP2D6)6.523 IC50DRUGCENTRAL
D(1A) dopamine receptor (DRD1)7.108 KiDRUGCENTRAL
D(4) dopamine receptor (DRD4)7.17 KiDRUGCENTRAL
Histamine H1 receptor (HRH1)7.723 KiDRUGCENTRAL
Membrane-associated progesterone receptor component 1 (Pgrmc1)6.381 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M1 (CHRM1)6.613 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M2 (CHRM2)5.956 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M3 (CHRM3)6.493 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M4 (CHRM4)6.721 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M5 (CHRM5)6.801 KiDRUGCENTRAL
Pleiotropic ABC efflux transporter of multiple drugs (PDR5)5.77 IC50DRUGCENTRAL
Potassium voltage-gated channel subfamily H member 2 (KCNH2)5.82 KiDRUGCENTRAL
Sigma non-opioid intracellular receptor 1 (SIGMAR1)7.638 KiDRUGCENTRAL
Sodium-dependent dopamine transporter (SLC6A3)5.86 KiDRUGCENTRAL
Sodium-dependent noradrenaline transporter (SLC6A2)6.402 KiDRUGCENTRAL
Sodium-dependent serotonin transporter (SLC6A4)6.207 KiDRUGCENTRAL
Solute carrier family 22 member 1 (SLC22A1)4.3 IC50DRUGCENTRAL
Tyrosine-protein kinase Fyn (FYN)5.245 IC50DRUGCENTRAL
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Mechanism of actionPH

The mechanism of action of prochlorperazine has not been fully determined, but may be primarily related to its anti-dopaminergic effects. Prochlorperazine blocks the D2 dopamine receptors in the brain, which are somatodendritic autoreceptors. Inhibition of D2 receptor signaling results in the blockade of postsynaptic dopamine receptors in the mesolimbic system and an increased dopamine turnover. Nausea and vomiting are proposed to arise from peripheral or central stimulation of serotonin type 3 (5-HT3) and dopamine type 2 receptors, the predominant receptors expressed at the chemoreceptor trigger zone (CTZ). Prochlorperazine exerts antiemetic effects and was shown to inhibit apomorphine-induced vomiting by blocking D2 dopamine receptors in the CTZ..
The principal pharmacologic effects of prochlorperazine are similar to those of chlorpromazine. Prochlorperazine has weak anticholinergic effects, moderate sedative effects, and strong extrapyramidal effects. Prochlorperazine has strong antiemetic activity.
The development of phenothiazine derivatives as psychopharmacologic agents resulted from the observation that certain phenothiazine antihistaminic compounds produced sedation. In an attempt to enhance the sedative effects of these drugs, promethazine and chlorpromazine were synthesized. Chlorpromazine is the pharmacologic prototype of the phenothiazines. The pharmacology of phenothiazines is complex, and because of their actions on the central and autonomic nervous systems, the drugs affect many different sites in the body. Although the actions of the various phenothiazines are generally similar, these drugs differ both quantitatively and qualitatively in the extent to which they produce specific pharmacologic effects. /Phenothiazine General Statement/
In the CNS, phenothiazines act principally at the subcortical levels of the reticular formation, limbic system, and hypothalamus. Phenothiazines generally do not produce substantial cortical depression; however, there is minimal information on the specific effects of phenothiazines at the cortical level. Phenothiazines also act in the basal ganglia, exhibiting extrapyramidal effects. The precise mechanism(s) of action, including antipsychotic action, of phenothiazines has not been determined, but may be principally related to antidopaminergic effects of the drugs. There is evidence to indicate that phenothiazines antagonize dopamine-mediated neurotransmission at the synapses. There is also some evidence that phenothiazines may block postsynaptic dopamine receptor sites. However, it has not been determined whether the antipsychotic effect of the drugs is causally related to their antidopaminergic effects. Phenothiazines also have peripheral and/or central antagonistic activity against alpha-adrenergic, serotonergic, histaminic (H1-receptors), and muscarinic receptors. Phenothiazines also have some adrenergic activity, since they block the reuptake of monoamines at the presynaptic neuronal membrane, which tends to enhance neurotransmission. The effects of phenothiazines on the autonomic nervous system are complex and unpredictable because the drugs exhibit varying degrees of alpha-adrenergic blocking, muscarinic blocking, and adrenergic activity. The antipsychotic activity of phenothiazines may be related to any or all of these effects, but it has been suggested that the drugs' effects on dopamine are probably most important. It has also been suggested that effects of phenothiazines on other amines (eg, gamma-aminobutyric acid [GABA]) or peptides (eg, substance P, endorphins) may contribute to their antipsychotic effect. Further study is needed to determine the role of central neuronal receptor antagonism and of effects on biochemical mediators in the antipsychotic action of the phenothiazines and other antipsychotic agents. /Phenothiazine General Statement/
Although the exact mechanism(s) of action has not been conclusively determined, phenothiazines have an antiemetic effect. The antiemetic activity may be mediated via a direct effect of the drugs on the medullary chemoreceptor trigger zone (CTZ), apparently by blocking dopamine receptors in the CTZ. Phenothiazines inhibit the central and peripheral effects of apomorphine and ergot alkaloids. Phenothiazines generally do not inhibit emesis caused by the action of drugs at the nodose ganglion or by local action on the GI tract. /Phenothiazine General Statement/
For more Mechanism of Action (Complete) data for Prochlorperazine (15 total), please visit the HSDB record page.

PharmacodynamicsPH

Prochlorperazine is an antipsychotic agent that works to promote postsynaptic inhibition of dopaminergic neurons. It also exerts its anti-emetic actions via anti-dopaminergic effects, where it displays similar efficacy as ondansteron, a 5HT-3 receptor antagonist and anti-emetic, in preventing delayed nausea and vomiting. Prochlorperazine was shown to inhibit histaminergic, cholinergic and alpha-1 adrenergic receptors. The blockade of alpha-1 adrenergic receptors may result in sedation, muscle relaxation, and hypotension. It displays anti-anxiety effects as well. Compared to other phenothiazine derivatives, prochlorperazine is less sedating and has a weak propensity for causing hypotension or potentiating the effects of CNS depressants and anesthetics. Other than its primary action on D2 receptors, one study showed that prochlorperazine may inhibit the P2X7 receptor in human macrophages, leading to inhibition of calcium ion influx.

Pharmacokinetics

Half-lifePH

Following intravenous and single oral dose administration, the terminal elimination half live were 9 and 8 hours, respectively.

AbsorptionPH

Following oral administration, prochlorperazine is reported to be well absorbed from the gastrointestinal tract. The onset of pharmacological action is about 30 to 40 minutes following oral administration and 10 to 20 minutes following intramuscular administration. The duration of action for all routes is about 3 to 4 hours. Following oral administration in healthy volunteers, the mean oral bioavailability was about 12.5%. In these patients, the time to reach the peak plasma concentrations was about 5 hours. Repeated oral dosing resulted in an accumulation of prochlorperazine and its metabolite. Following multiple twice daily dosing, the steady state of prochlorperazine was reached by 7 days.
Prochlorperazine is reported to be mainly excreted via the feces and bile. Low quantities of unchanged prochlorperazine and its metabolite were detectable in the urine.
In a preliminary pharmacokinetic study involving healthy volunteers, the mean apparent volume of distribution following intravenous administration of 6.25 mg and 12.5 mg prochlorperazine were approximately 1401 L and 1548 L, respectively. Prochlorperazine is reported to be distributed to most body tissues with high concentrations being distributed into liver and spleen. There is evidence that phenothiazines are excreted in the breast milk of nursing mothers.
The mean plasma clearance (CL) of prochlorperazine following intravenous administration in healthy volunteers was approximately 0.98L/h x kg. The mean renal clearance was about 23.6 mL/h.
Phenothiazines are generally well absorbed from the GI tract and from parenteral sites; however, absorption may be erratic, particularly following oral administration. Considerable interindividual variations in peak plasma concentrations have been reported. The variability may result from genetic differences in the rate of metabolism, biodegradation of the drug in the GI lumen, and/or metabolism of the drug during absorption (in the GI mucosa) and first pass through the liver.
Phenothiazines are highly bound to plasma proteins.

MetabolismPH

Prochlorperazine undergoes hepatic metabolism involving oxidation, hydroxylation, demethylation, sulfoxide formation and conjugation with glucuronic acid. The oxidation reaction is mediated by CYP2D6. N-desmethyl prochlorperazine was detected in the plasma, as well as prochlorperazine sulfoxide, prochlorperazine 7-hydroxide and prochlorperazine sulfoxide 4'-N-oxide, following oral and buccal administration. Prochlorperazine may enter the enterohepatic circulation.
Most metabolites of phenothiazines are pharmacologically inactive; however, certain metabolites (eg, 7-hydroxychlorpromazine, mesoridazine) show moderate pharmacologic activity and may contribute to the action of the drugs. There is limited evidence to indicate that some phenothiazines (eg, chlorpromazine) may induce their own metabolism. /Phenothiazine General Statement/
Metabolized primarily in liver /by/ oxidation, hydroxylation, demethylation, sulfoxide formation and conjugation with glucuronic acid; metabolic alterations in side chain may also occur.
After chronic administration of piperazine-substituted phenothiazine drugs ... to rats, tissues contained drug metabolites, in which piperazine ring fission by multiple oxidative n-dealkylation had occurred to give substituted ethylenediamine. Thus, n-[gamma-(2-chlorphenothiazinyl-10)-propyl]ethylenediamine ... from prochlorperazine ...
Yields 2-chloro-10-(3-(4-methylpiperazin-1-yl)propyl)phenothiazine-n-oxide and 2-chloro-10-(3-(4-methylpiperazin-1-yl)propyl)phenothiazine sulfoxide in rats
For more Metabolism/Metabolites (Complete) data for Prochlorperazine (7 total), please visit the HSDB record page.

Protein bindingPH

There is limited data on protein binding of prochlorperazine.

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

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