Collated from PsychonautWiki, Pharmacology, DrugCentral. Where sources differ (e.g. dosing), Compare shows them side by side.
Deliriant use is associated with highly uncomfortable and/or dangerous experiences. Deliriants are highly unpredictable and may result in erratic behaviors, self-injury, hospitalization, or death. It should be noted that most individuals do not choose to repeat the experience due to its unpleasant nature.PW
🧬 Receptor activityPHDC
| Target | Action | Affinity | Source | |
|---|---|---|---|---|
| M1 receptor | Antagonist | 8.9 pKi | GTOPDB | TargetM1 receptor ActionAntagonist Affinity8.9 pKi SourceGTOPDB |
| Muscarinic acetylcholine receptor M4 | — | Ki 0.764 nM | CHEMBL | TargetMuscarinic acetylcholine receptor M4 Action— AffinityKi 0.764 nM SourceCHEMBL |
| Muscarinic acetylcholine receptor M1 | — | Ki 1.351 nM | CHEMBL | TargetMuscarinic acetylcholine receptor M1 Action— AffinityKi 1.351 nM SourceCHEMBL |
| Unchecked | — | Ki 1.5 nM | CHEMBL | TargetUnchecked Action— AffinityKi 1.5 nM SourceCHEMBL |
| Muscarinic acetylcholine receptor M3 | — | Ki 3.151 nM | CHEMBL | TargetMuscarinic acetylcholine receptor M3 Action— AffinityKi 3.151 nM SourceCHEMBL |
| Muscarinic acetylcholine receptor M5 | — | Ki 8.679 nM | CHEMBL | TargetMuscarinic acetylcholine receptor M5 Action— AffinityKi 8.679 nM SourceCHEMBL |
| Muscarinic acetylcholine receptor M2 | — | Ki 12 nM | CHEMBL | TargetMuscarinic acetylcholine receptor M2 Action— AffinityKi 12 nM SourceCHEMBL |
| Sigma non-opioid intracellular receptor 1 | — | Ki 45 nM | CHEMBL | TargetSigma non-opioid intracellular receptor 1 Action— AffinityKi 45 nM SourceCHEMBL |
| Muscarinic acetylcholine receptor M1 (CHRM1) | Antagonist | 8.89 IC50 | DRUGCENTRAL | TargetMuscarinic acetylcholine receptor M1 (CHRM1) ActionAntagonist Affinity8.89 IC50 SourceDRUGCENTRAL |
| Cytochrome P450 2D6 (CYP2D6) | — | 5.611 IC50 | DRUGCENTRAL | TargetCytochrome P450 2D6 (CYP2D6) Action— Affinity5.611 IC50 SourceDRUGCENTRAL |
| Muscarinic acetylcholine receptor M2 (CHRM2) | — | 7.73 IC50 | DRUGCENTRAL | TargetMuscarinic acetylcholine receptor M2 (CHRM2) Action— Affinity7.73 IC50 SourceDRUGCENTRAL |
| Muscarinic acetylcholine receptor M3 (CHRM3) | — | 7.58 IC50 | DRUGCENTRAL | TargetMuscarinic acetylcholine receptor M3 (CHRM3) Action— Affinity7.58 IC50 SourceDRUGCENTRAL |
| Muscarinic acetylcholine receptor M4 (CHRM4) | — | 8.17 IC50 | DRUGCENTRAL | TargetMuscarinic acetylcholine receptor M4 (CHRM4) Action— Affinity8.17 IC50 SourceDRUGCENTRAL |
| Muscarinic acetylcholine receptor M5 (CHRM5) | — | 7.99 IC50 | DRUGCENTRAL | TargetMuscarinic acetylcholine receptor M5 (CHRM5) Action— Affinity7.99 IC50 SourceDRUGCENTRAL |
| Sigma non-opioid intracellular receptor 1 (SIGMAR1) | — | 7.347 Ki | DRUGCENTRAL | TargetSigma non-opioid intracellular receptor 1 (SIGMAR1) Action— Affinity7.347 Ki SourceDRUGCENTRAL |
Mechanism of actionPH
Trihexyphenidyl is a non-selective muscarinic acetylcholine receptor antagonist but binds with higher affinity to the M1 subtype. In vivo studies have shown that trihexyphenidyl demonstrates higher affinity for central muscarinic receptors located in the cerebral cortex and lower affinity for those located peripherally. Other studies suggest that trihexyphenidyl may modify nicotinic acetylcholine receptor neurotransmission, leading indirectly to enhanced dopamine release in the striatum. Although the anticholinergic has proven to be useful in the treatment of symptoms associated with Parkinson’s disease or other movement disorders, its mechanism of action has yet to be fully elucidated.
Cerebral blood flow and oxygen metabolism were studied in six previously untreated patients with Parkinson's disease (PD) before and after anticholinergic treatment using positron emission tomography (PET) and compared with six controls. The PET study and an assessment of the disability and cognitive impairment were performed before and after administration of 6 mg trihexyphenidyl for 5 to 11 weeks. All PD patients showed improvements in motor symptoms after the trihexyphenidyl treatment. Cognitive function did not significantly differ between before and after trihexyphenidyl treatment. However, after trihexyphenidyl treatment, regional cerebral blood flow (rCBF) and regional oxygen metabolic rate (rCMRO2) decreased by 15% in the striatum and by 10% in all cortical areas contralateral to predominantly symptomatic limbs, and by 10% in the ipsilateral striatum and all cortical areas, significantly below the values of controls in most cerebral cortices and striatum. These findings suggest that trihexyphenidyl inhibits the cortical cholinergic system and significantly decreases rCBF and rCMRO2 in the cerebral cortices without cognitive impairment in untreated patients with PD.
In common with other antimuscarinic agents, trihexyphenidyl produces an atropine-like blocking action on parasympathetic-innervated peripheral structures, including smooth muscle. In addition, trihexyphenidyl exhibits a direct spasmolytic action on smooth muscle and exhibits weak mydriatic, antisialagogue, and cardiovagal blocking effects. The exact mechanism of action of trihexyphenidyl in parkinsonian syndrome is not understood but may result from blockade of efferent impulses and from central inhibition of cerebral motor centers. In small doses, trihexyphenidyl depresses the CNS but larger doses cause cerebral excitement resembling the signs of atropine toxicity.
In vivo microdialysis was used to study the effect of the non-selective muscarinic antagonist, trihexyphenidyl, on the decarboxylation of levodopa (L-dopa) in the striatum of hemi-Parkinson rats. In normal rats, continuous perfusion of trihexyphenidyl (1 mM) via the microdialysis probe induced a significant increase in striatal dopamine release, followed by a decrease to below baseline values. A similar effect was observed, though less pronounced, in denervated striatum of rats with a unilateral 6-hydroxydopamine lesion of the nigrostriatal pathway. In these hemi-Parkinson rats, continuous striatal perfusion of trihexyphenidyl had no effect on the biotransformation of locally applied L-dopa (2 uM for 20 min) to dopamine in either intact or denervated striatum. However, systemic administration of trihexyphenidyl (1.5 mg/kg ip) produced an attenuation of the L- dopa-induced dopamine release in the intact striatum (contralateral to the lesion) of hemi-Parkinson rats. This effect was absent in the denervated striatum of these animals. We confirmed that L-dopa induces an increase in striatal dopamine output which is influenced by the severity of the dopaminergic denervation. The absence of an effect of trihexyphenidyl locally applied in the striatum, on biotransformation of L-dopa suggests that the site of action of antimuscarinic drugs may not be in the striatum and, therefore, remains unclear.
PharmacodynamicsPH
Trihexyphenidyl is an antimuscarinic indicated as an adjunct in the treatment of parkinsonism or as a treatment for drug-induced extrapyramidal symptoms. It has a long duration of action as it does not need to be given every day. It has a wide therapeutic window, with acute toxicity being non fatal in doses as high as 300 mg. Patients should have their iridocorneal angle examined before and intraocular pressure monitored during therapy. Patients should be counselled regarding the risk of anhidrosis and hyperthermia.
Pharmacokinetics
Half-lifePH
The mean elimination half life of trihexyphenidyl is 3.2 ± 0.3 hours.
Twenty-four male subjects were randomized to receive two oral dosage forms of trihexyphenidyl HCl (alpha-cyclohexyl-alpha-phenyl-1-piperidinepropanol HCl). The dosage regimens were (1) a 5-mg immediate release (IR) tablet given twice daily at time zero and 12 hr later, and (2) two 5-mg sustained-release (SR) capsule formulations given daily. ... The mean elimination half-life (t1/2) was similar (p greater than 0.05) after the SR (10.1 hr) and IR (8.7 hr) formulations. /Trihexylphenidyl hydrochloride/
Using a sensitive radioreceptor assay for anticholinergic drugs, trihexyphenidyl /was assayed/ in human serum and ... its pharmacokinetics following short-term and long-term administration to patients with dystonia /was studied/. ... Elimination followed first-order kinetics and was rapid, with a half-life of 3.7 + or - 0.4 (SEM) hours. There was no relationship between half-life and peak serum level, age, duration of therapy, or etiology or severity of dystonia. ...
AbsorptionPH
Trihexyphenidyl is absorbed from the gastrointestinal tract. Trihexyphenidyl reaches a Cmax of 7.2 ng/mL, with a Tmax of 1.3 hours, and an AUC of 201 ng\*h/mL.
Data regarding the route of elimination of trihexyphenidyl are not readily available. However, it is likely eliminated predominantly in the urine.
Using a sensitive radioreceptor assay for anticholinergic drugs, trihexyphenidyl /was assayed/ in human serum and ... its pharmacokinetics following short-term and long-term administration to patients with dystonia /was studied/. Previously untreated patients had a biphasic semilogarithmic plot of serum concentration-time consisting of an initial rapid distribution phase and a later slower elimination phase. Patients on long-term treatment showed only the slower elimination phase. Elimination followed first-order kinetics and was rapid, with a half-life of 3.7 + or - 0.4 (SEM) hours. There was no relationship between half-life and peak serum level, age, duration of therapy, or etiology or severity of dystonia. Although acute anticholinergic side effects paralleled the rise and fall of serum anticholinergic levels, the response of dystonia did not.
Trihexyphenidyl is rapidly absorbed from the GI tract. Following oral administration of trihexyphenidyl hydrochloride tablets, the onset of action occurs within 1 hour, peak effects last 2-3 hours, and the duration of action is 6-12 hours. The metabolic fate of trihexyphenidyl has not been determined; the drug is excreted in the urine, probably as unchanged drug. /Trihexylphenidyl hydrochloride/
The subcellular distribution of biperiden (BP), trihexyphenidyl (TP) and (-)-quinuclidinyl benzylate (QNB) in brain, heart and lung following high dose (3.2 mg/kg) iv administration was investigated in rats. The subcellular distribution of BP or TP used clinically conformed with that of QNB, a typical potent central muscarinic antagonist. The concentration-time courses of the brain subcellular fractions for these drugs were of two types which decreased slowly and in parallel to the plasma concentration. The subcellular distribution in the brain and heart was dependent on the protein amount of each fraction. The percent post-nuclear fraction (P2) of the total concentration in the lung was characteristically about 3-5 times larger than that in the heart. It was elucidated that the distribution in the lung differs from that in the brain and heart, with high affinity which is not dependent on the protein amount in the P2 fraction containing lysosomes. On the other hand, at a low dose (650 ng/kg) of 3H-QNB, each fraction as a percentage of the total concentration in the brain increased in synaptic membrane and synaptic vesicles and decreased in nuclei and cytosol as compared with the high dose. These results show that although the tissue concentration-time courses of anticholinergic drugs appear to decrease simply in parallel to plasma concentration, the subcellular distribution exhibits a variety of patterns among various tissues.
Twenty-four male subjects were randomized to receive two oral dosage forms of trihexyphenidyl HCl (alpha-cyclohexyl-alpha-phenyl-1-piperidinepropanol HCl). The dosage regimens were (1) a 5-mg immediate release (IR) tablet given twice daily at time zero and 12 hr later, and (2) two 5-mg sustained-release (SR) capsule formulations given daily. The number of adverse experiences following the SR formulation were approximately 50% of those for the IR formulation, the peak concentration (Cmax) after the SR formulation was significantly lower (p less than 0.05) than that after the first dose of the IR formulation, and the time to reach Cmax (tmax) was significantly longer after the SR formulation (p less than 0.05). The SR formulation maintained serum concentrations above 50, 60, and 70% of Cmax values for average time periods of 11.7, 9.4, and 5.9 hr, respectively, compared with values of 1.8, 1.2, and 0.9 hr after the IR formulation; the differences were all significant (p less than 0.05). The mean elimination half-life (t1/2) was similar (p greater than 0.05) after the SR (10.1 hr) and IR (8.7 hr) formulations. The statistical power of the study was 98.1% to detect a 20% difference in the area under the curve from time zero to time infinity (AUC0----infinity) between formulations. Although the AUC0----infinity after the SR formulation was statistically smaller (p less than 0.05) than after the IR tablet, the difference was less than 20%. Therefore, the SR formulation was bioequivalent to the IR tablet formulation of trihexyphenidyl. /Trihexylphenidyl hydrochloride/
MetabolismPH
Data regarding the metabolism of trihexyphenidyl are not readily available. However, it is likely not heavily metabolized.
Benzhexol and three of its metabolites excreted in urine in man have been investigated by glc.--mass spectrometry. Three isomeric hydroxylated metabolites were identified as the 1-(hydroxycyclohexyl)-1-phenyl-3-piperidinopropan-1-ols. 3. The amounts of benzhexol and its identified metabolites have been semiquantitatively determined after a single oral dose in two healthy adults. Approx. 56% of the dose was excreted as the hydroxylated metabolites. The levels of benzhexol excreted were too low to be measured by the techniques used.
Half Life: 3.3-4.1 hours
Protein bindingPH
Data regarding the extent of trihexyphenidyl protein binding in plasma are not readily available. Trihexyphenidyl is 36.13-41.92% bound to albumin under controlled conditions in a dialysis bag.
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