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Also known as Quetiapine, SeroquelPW

An atypical antipsychotic medication under the brand name Seroquel. Also used to treat insomnia and mood swings. This drug is very sedating and can stop/slow down psychedelic drug trips. Infrequently abused.TS

Addiction potentialPW
moderately physically and psychologically addictive
ToxicityPW
low toxicity
TolerancePW
full tolerance within a week of continuous use; baseline after 7 - 14 days

Oral

Route dataPsychonautWiki

ThresholdLightCommonStrongHeavy
10 mg25–50 mg50–150 mg150–300 mg300 mg+
0375 mg
LightCommonStrongHeavy
Onset20–40 minutes
Peak1.5–6 hours
Offset6–7 hours
Total8–24 hours
After-effects24–48 hours
OnsetCome-upPeakOffset

Bioavailability: 100–100 %

Dangerous interactionsPW

Caution / uncertainPW

🧬 Receptor activityDC

TargetActionAffinitySource
5-hydroxytryptamine receptor 1D (HTR1D)Agonist5.7 KiDRUGCENTRAL
5-hydroxytryptamine receptor 1E (HTR1E)Agonist5.9 KiDRUGCENTRAL
5-hydroxytryptamine receptor 1F (HTR1F)Agonist5.6 KiDRUGCENTRAL
5-hydroxytryptamine receptor 2A (HTR2A)Antagonist7.131 IC50DRUGCENTRAL
5-hydroxytryptamine receptor 2C (HTR2C)Antagonist7 IC50DRUGCENTRAL
D(2) dopamine receptor (DRD2)Antagonist6.483 IC50DRUGCENTRAL
D(3) dopamine receptor (DRD3)Antagonist6.49 KiDRUGCENTRAL
D(4) dopamine receptor (DRD4)Antagonist5.8 KiDRUGCENTRAL
Sodium-dependent noradrenaline transporter (SLC6A2)Inhibitor6.03 KiDRUGCENTRAL
5-hydroxytryptamine receptor 1A (HTR1A)6.83 IC50DRUGCENTRAL
5-hydroxytryptamine receptor 1B (HTR1B)5.822 KiDRUGCENTRAL
5-hydroxytryptamine receptor 2A (Htr2a)6.66 KiDRUGCENTRAL
5-hydroxytryptamine receptor 2B (HTR2B)6.523 IC50DRUGCENTRAL
5-hydroxytryptamine receptor 5A (HTR5A)5.506 KiDRUGCENTRAL
5-hydroxytryptamine receptor 6 (HTR6)5.85 KiDRUGCENTRAL
5-hydroxytryptamine receptor 7 (HTR7)6.512 KiDRUGCENTRAL
Aldehyde oxidase (AOX1)5.854 IC50DRUGCENTRAL
Alpha-1A adrenergic receptor (ADRA1A)7.027 IC50DRUGCENTRAL
Alpha-1B adrenergic receptor (ADRA1B)7.409 KiDRUGCENTRAL
Alpha-1D adrenergic receptor (ADRA1D)7.457 KiDRUGCENTRAL
Alpha-2A adrenergic receptor (ADRA2A)5.44 KiDRUGCENTRAL
Alpha-2B adrenergic receptor (ADRA2B)6.127 KiDRUGCENTRAL
Alpha-2C adrenergic receptor (ADRA2C)6.241 IC50DRUGCENTRAL
Beta-1 adrenergic receptor (ADRB1)5.301 KiDRUGCENTRAL
Beta-2 adrenergic receptor (ADRB2)5.301 KiDRUGCENTRAL
D(1A) dopamine receptor (DRD1)6.41 KiDRUGCENTRAL
D(1B) dopamine receptor (DRD5)5.79 KiDRUGCENTRAL
D(2) dopamine receptor (Drd2)6.74 KiDRUGCENTRAL
Histamine H1 receptor (HRH1)8.35 IC50DRUGCENTRAL
Histone H1.0 (H1F0)8 KiDRUGCENTRAL
Membrane-associated progesterone receptor component 1 (Pgrmc1)5.936 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M1 (CHRM1)7.25 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M2 (CHRM2)6.037 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M3 (CHRM3)5.795 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M4 (CHRM4)6.266 KiDRUGCENTRAL
Muscarinic acetylcholine receptor M5 (CHRM5)5.524 KiDRUGCENTRAL
Potassium voltage-gated channel subfamily H member 2 (KCNH2)5.24 IC50DRUGCENTRAL
Sigma non-opioid intracellular receptor 1 (SIGMAR1)6.016 KiDRUGCENTRAL
Transporter (NET)6.17 KiDRUGCENTRAL
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Mechanism of actionPHDM

Although the mechanism of action of quetiapine is not fully understood, several proposed mechanisms exist. In schizophrenia, its actions could occur from the antagonism of dopamine type 2 (D2) and serotonin 2A (5HT2A) receptors. In bipolar depression and major depression, quetiapine's actions may be attributed to the binding of this drug or its metabolite to the norepinephrine transporter. Additional effects of quetiapine, including somnolence, orthostatic hypotension, and anticholinergic effects, may result from the antagonism of H1 receptors, adrenergic α1 receptors, and muscarinic M1 receptors, respectively.
The therapeutic effects of antipsychotic drugs are thought to be mediated by dopaminergic blockade in the mesolimbic and mesocortical areas of the CNS, while antidopaminergic effects in the neostriatum appear to be associated with extrapyramidal effects. The apparently low incidence of extrapyramidal effects associated with quetiapine therapy suggests that the drug is more active in the mesolimbic than in the neostriatal dopaminergic system. In contrast to typical antipsychotic agents (e.g., chlorpromazine) but like other atypical antipsychotic drugs (e.g., clozapine), quetiapine does not cause sustained elevations in serum prolactin concentrations and therefore is unlikely to produce adverse effects such as amenorrhea, galactorrhea, and impotence.
The exact mechanism of antipsychotic action of quetiapine has not been fully elucidated but may involve antagonism at serotonin type 1 (5-hydroxytryptamine [5- HT1A]) and type 2 (5-HT2A, 5-HT2C) receptors, and at dopamine (D1, D2) receptors. Current evidence suggests that the clinical potency and antipsychotic efficacy of both typical and atypical antipsychotic drugs generally are related to their affinity for and blockade of central dopamine D2 receptors; however, antagonism at dopamine D2 receptors does not appear to account fully for the antipsychotic effects of quetiapine. Results of in vivo and in vitro studies indicate that quetiapine is a comparatively weak antagonist at dopamine D2 receptors. Receptor binding studies show quetiapine is a weak antagonist at D1 receptors. Although their role in eliciting the pharmacologic effects of antipsychotic agents remains to be fully elucidated, dopamine D3, D4, and D5 receptors also have been identified; quetiapine possesses no affinity for the dopamine D4 receptor.
Quetiapine exhibits alpha1- and alpha2-adrenergic blocking activity; blockade of alpha1-adrenergic receptors may explain the occasional orthostatic hypotension associated with the drug. Quetiapine also blocks histamine H1 receptors, which may explain the sedative effects associated with the drug. Quetiapine possesses little or no affinity for beta-adrenergic, gamma-aminobutyric acid (GABA), benzodiazepine, or muscarinic receptors.
Recent neuroimaging and postmortem studies have reported abnormalities in white matter of schizophrenic brains, suggesting the involvement of oligodendrocytes in the etiopathology of schizophrenia. This view is being supported by gene microarray studies showing the downregulation of genes related to oligodendrocyte function and myelination in schizophrenic brain compared to control subjects. However, there is currently little information available on the response of oligodendrocytes to antipsychotic drugs (APDs), which could be invaluable for corroborating the oligodendrocyte hypothesis. In this study we found: (1) quetiapine (QUE, an atypical APD) treatment in conjunction with addition of growth factors increased the proliferation of neural progenitors isolated from the cerebral cortex of embryonic rats; (2) QUE directed the differentiation of neural progenitors to oligodendrocyte lineage through extracellular signal-related kinases; (3) addition of QUE increased the synthesis of myelin basic protein and facilitated myelination in rat embryonic cortical aggregate cultures; (4) chronic administration of QUE to C57BL/6 mice prevented cortical demyelination and concomitant spatial working memory impairment induced by cuprizone, a neurotoxin. These findings suggest a new neural mechanism of antipsychotic action of QUE, and help to establish a role for oligodendrocytes in the etiopathology and treatment of schizophrenia.

PharmacodynamicsPHDM

Quetiapine improves the positive and negative symptoms of schizophrenia and major depression by acting on various neurotransmitter receptors, such as the serotonin and dopamine receptors. In bipolar disorder, it improves both depressive and manic symptoms. **A note on suicidality in young patients and administration in the elderly** Quetiapine can cause suicidal thinking or behavior in children and adolescents and should not be given to children under 10 years of age. It is important to monitor for suicidality if this drug is given to younger patients. In addition, this drug is not indicated for the treatment of psychosis related to dementia due to an increased death rate in elderly patients taking this drug.

Pharmacokinetics

Half-lifePH

The average terminal half-life of quetiapine is about 6-7 hours.
The mean terminal half-life of quetiapine is about 6 hours.

AbsorptionPHDM

Quetiapine is rapidly and well absorbed after administration of an oral dose. Steady-state is achieved within 48 hours and peak plasma concentrations are achieved within 1.5 hours. The steady-state Cmax of quetiapine in Han Chinese patients with schizophrenia after a 300 mg oral dose of the extended released formulation was approximately 467 ng/mL and the AUC at steady-state was 5094 ng·h/mL. While the absolute bioavailability has not been fully elucidated and is reported to be low, the tablet formulation is 100% bioavailable relative to solution. Absorption of quetiapine is affected by food, with Cmax increased by 25% and AUC increased by 15%.
After an oral dose of radiolabeled quetiapine, less than 1% of unchanged drug was detected in the urine, suggesting that quetiapine is heavily metabolized. About 73% of a dose was detected in the urine, and about 20% in the feces.
Quetiapine distributes throughout body tissues. The apparent volume of distribution of this drug is about 10±4 L/kg.
The clearance of quetiapine healthy volunteers in the fasted state during a clinical study was 101.04±39.11 L/h. Elderly patients may require lower doses of quetiapine, as clearance in these patients may be reduced by up to 50%. Those with liver dysfunction may also require lower doses.
Quetiapine fumarate is rapidly absorbed after oral administration, reaching peak plasma concentrations in 1.5 hours. The tablet formulation is 100% bioavailable relative to solution. The bioavailability of quetiapine is marginally affected by administration with food, with Cmax and AUC values increased by 25% and 15%, respectively.
Steady state concentrations are expected to be achieved within two days of dosing.

MetabolismPH

The metabolism of quetiapine occurs mainly in the liver. Sulfoxidation and oxidation are the main metabolic pathways of this drug. According to in vitro studies, cytochrome P450 3A4 metabolizes quetiapine to an inactive sulfoxide metabolite and also participates in the metabolism of its active metabolite, N-desalkyl quetiapine. CYP2D6 also regulates the metabolism of quetiapine. In one study, three metabolites of N-desalkylquetiapine were identified. Two of the metabolites were identified as N-desalkylquetiapine sulfoxide and 7-hydroxy-N-desalkylquetiapine. CYP2D6 has been found to be responsible for metabolism of quetiapine to 7-hydroxy-N-desalkylquetiapine, a pharmacologically active metabolite. Individual differences in CYP2D6 metabolism may be present, which may affect the concentrations of the active metabolite.
Quetiapine is extensively metabolized in the liver principally via sulfoxidation and oxidation to inactive metabolites. In vitro studies suggest that the cytochrome P-450 (CYP) 3A4 isoenzyme is involved in the metabolism of quetiapine to the inactive sulfoxide metabolite, which is the principal metabolite. ... Based on in vitro studies, quetiapine and 9 of its metabolites do not appear likely to inhibit CYP isoenzymes 1A2, 3A4, 2C9, 2C19, or 2D6.
Quetiapine has known human metabolites that include Quetiapine Sulfoxide and 7-Hydroxy Quetiapine.
Hepatic. The major metabolic pathways are sulfoxidation, mediated by cytochrome P450 3A4 (CYP3A4), and oxidation of the terminal alcohol to a carboxylic acid. The major sulfoxide metabolite of quetiapine is inactive. Quetiapine also undergoes hydroxylation of the dibenzothiazepine ring, O-deakylation, N-dealkylation, and phase II conjugation. The 7-hydroxy and 7-hydroxy-
N-delakylated metabolites appear to be active, but are present in very low concentrations.
Route of Elimination: Elimination of quetiapine is mainly via hepatic metabolism. Following a single oral dose of 14C-quetiapine, less than 1% of the administered dose was excreted as unchanged drug, indicating that quetiapine is highly metabolized. Approximately 73% and 20% of the dose was recovered in the urine and feces, respectively.
Half Life: 6 hours

Protein bindingPH

The protein binding of quetiapine is 83%.

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

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