Alprazolam
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🧬 Receptor activity
| Target | Action | Affinity | Source | |
|---|---|---|---|---|
| GABA A receptor alpha-2/beta-2/gamma-2 | — | Ki 0.6 nM | CHEMBL | TargetGABA A receptor alpha-2/beta-2/gamma-2 Action— AffinityKi 0.6 nM SourceCHEMBL |
| GABA-A receptor; alpha-1/beta-2/gamma-2 | — | Ki 0.8 nM | CHEMBL | TargetGABA-A receptor; alpha-1/beta-2/gamma-2 Action— AffinityKi 0.8 nM SourceCHEMBL |
| GABA A receptor alpha-3/beta-2/gamma-2 | — | Ki 1.4 nM | CHEMBL | TargetGABA A receptor alpha-3/beta-2/gamma-2 Action— AffinityKi 1.4 nM SourceCHEMBL |
| Gamma-aminobutyric acid receptor subunit alpha-5/beta-2/gamma-2 | — | Ki 1.5 nM | CHEMBL | TargetGamma-aminobutyric acid receptor subunit alpha-5/beta-2/gamma-2 Action— AffinityKi 1.5 nM SourceCHEMBL |
| GABA-A receptor; anion channel | — | Ki 3.3 nM | CHEMBL | TargetGABA-A receptor; anion channel Action— AffinityKi 3.3 nM SourceCHEMBL |
| Unchecked | — | Ki 13.5 nM | CHEMBL | TargetUnchecked Action— AffinityKi 13.5 nM SourceCHEMBL |
Mechanism of action
Neurotransmission relies on excitatory and inhibitory signalling. γ-aminobutyric acid (GABA) type-A receptors (GABA<sub>A</sub>Rs) are members of the pentameric ligand-gated ion channel (PLGIC) superfamily located synaptically and perisynaptically to mediate phasic inhibition and extrasynaptically to mediate tonic inhibition. GABA<sub>A</sub>Rs comprise a variety of subunits from a homologous family whose members are named based on sequence identity as one of α1-6, β1-3, γ1-3, δ, ε, θ, π, and ρ1-3. Each subunit possesses an extracellular (ECD), transmembrane (TMD), and intracellular (ICD) domain; inter-subunit interfaces are the primary points of neurotransmitter and modulator binding, described by coordination of the principal (+) and complementary (-) sites in each subunit. Binding of GABA to GABA<sub>A</sub>Rs induces pore opening, rapid flow of chloride ions, and synaptic hyperpolarization, which in turn manifests as an inhibitory signal. The most prevalent GABA<sub>A</sub>Rs _in vivo_ are the α1β2γ2 receptors, which contain both GABA (β+/α-) and benzodiazepine (BZD, α+/γ-) binding sites in the intersubunit interfaces of the relevant subunits. In general, any receptors containing an α<sub>x</sub>/γ<sub>z</sub> interface, where x = 1-3,5 and z = 1-3, have potential high-affinity BZD binding sites, although small sequence differences between subunits may alter binding affinity to individual molecules. The α4 and α6 subunits, in which an otherwise conserved histidine is replaced by arginine, do not bind traditional BZD ligands such as diazepam and hence are considered "diazepam-insensitive". GABA binding results in a series of conformational changes in the ECDs of GABA<sub>A</sub>R β subunits, "locking" each to its neighbouring α- interface. The binding of alprazolam in the high-affinity BZD site stabilizes the α+/γ- interface and facilitates the conformational changes that lead to pore opening, hence functioning as a positive allosteric modulator. The exact manner in which GABA<sub>A</sub>R allosteric modulation mediates the therapeutic and unwanted effects of benzodiazepines remains unclear. Earlier studies suggested that the primary factor was the α subunit composition, with α1-containing receptors mediating the sedative effects, α2/3-containing receptors the anxiolytic effects, and α5-containing receptors the memory effects of benzodiazepines. More recent studies suggest a more complex set of factors including subunit composition, physiological location, neuronal circuit, and nerve cell type. To further complicate matters, there may be up to five distinct BZD binding sites on GABA<sub>A</sub>Rs, with site 1 corresponding to the classical high-affinity α+/γ- interface. The effects of binding at sites 2-4 are not fully understood and likely impart greater complexity to benzodiazepine pharmacological action.
In animals, benzodiazepines protect against seizures induced by electrical stimulation and by pentylenetetrazol; benzodiazepines appear to act, at least partly, by augmenting presynaptic inhibition. The drugs suppress the spread of seizure activity but do not abolish the abnormal discharge from a focus in experimental models of epilepsy. In usual doses, benzodiazepines appear to have very little effect on the autonomic nervous system, respiration, or the cardiovascular system. /Benzodiazepines/
CNS agents of the 1,4 benzodiazepine class presumably exert their effects by binding at stereo specific receptors at several sites within the central nervous system. Their exact mechanism of action is unknown. Clinically, all benzodiazepines cause a dose-related central nervous system depressant activity varying from mild impairment of task performance to hypnosis.
Anxiolytic and possibly paradoxical CNS stimulatory effects of benzodiazepines are postulated to result from release of previously suppressed responses (disinhibition). After usual doses of benzodiazepines for several days, the drugs cause a moderate decrease in rapid eye movement (REM) sleep. REM rebound does not occur when the drugs are withdrawn. Stage 3 and 4 sleep are markedly reduced by usual doses of the drugs; the clinical importance of these sleep stage alterations has not been established. /Benzodiazepines/
Benzodiazepines appear to produce skeletal muscle relaxation predominantly by inhibiting spinal polysynaptic afferent pathways, but the drugs may also inhibit monosynaptic afferent pathways. The drugs may inhibit monosynaptic and polysynaptic reflexes by acting as inhibitory neuronal transmitters or by blocking exitatory synaptic transmission. The drugs may also directly depress motor nerve and muscle function. /Benzodiazepines/
Pharmacodynamics
Alprazolam is a benzodiazepine that binds γ-aminobutyric acid (GABA) type-A receptors (GABA<sub>A</sub>Rs) to enhance their inhibitory effect on neurotransmission, specifically in the brain. Concomitant use with opioids may result in profound sedation, respiratory depression, coma, and death; patients taking benzodiazepines and opioids concurrently may require lower doses of one or both medications, depending on their clinical situation. Patients with pre-existing impaired respiratory function are at increased risk of adverse effects including death during treatment with benzodiazepines. In addition, due to its CNS depressant effects, patients taking alprazolam should avoid operating heavy machinery or driving and should avoid other CNS depressants such as alcohol. As with other benzodiazepines, alprazolam carries a risk of abuse, misuse, and addiction, which is higher in predisposed individuals and may require strict monitoring. Cessation of therapy may result in acute or protracted withdrawal symptoms, which may be life-threatening; the patient dose should be gradually tapered whenever discontinuation or reduced dosage are necessary. Newborns born to mothers using alprazolam later in pregnancy may suffer from sedation and withdrawal symptoms. As CYP3A is required for the initial step in alprazolam metabolism, alprazolam is contraindicated in patients taking strong CYP3A inhibitors, such as ketoconazole and itraconazole; milder CYP3A inhibitors still necessitate alprazolam dosage adjustments. Lastly, benzodiazepines may have negative effects, such as panic disorders, increased suicide incidence, and episodes of mania/hypomania, in patients suffering from depression.
Pharmacokinetics
Half-life
Alprazolam has a mean plasma elimination half-life of 11.2 hours in healthy patients (range 6.3-26.9 hours). The mean half-life is 16.3 hours (range 9.0-26.9 hours) in the elderly, 21.8 hours (range 9.9-40.4 hours) in obese patients, and 19.7 hours (range 5.8-65.3 hours) in patients with alcoholic liver disease. The half-life is 25% higher in Asian patients compared to Caucasians. Other studies have shown the half-life to be 9-16h. The extended-release formulation has a half-life of 10.7-15.8 hours in healthy adult patients.
Using a specific assay methodology, the mean plasma elimination half-life of alprazolam has been found to be about 11.2 hours (range: 6.3-26.9 hours) in healthy adults.
Absorption
Alprazolam administered orally is rapidly absorbed in the gastrointestinal tract, reaching Cmax in about 1.8 (1-2) hours. Absorption is high, resulting in an oral bioavailability of 84-91%. A 1 mg oral dose results in a Cmax of 12-22 μg/L. The extended-release formulation of alprazolam (XANAX XR) has similar absorption, bioavailability, and pharmacokinetics as the standard release, with the exception that the Tmax is ~10 hours compared to 1-2 hours. Temporal dosing alters these parameters, with Cmax increasing by 30% and Tmax decreasing by one hour when dosed at night as opposed to in the morning. Food has an effect on alprazolam absorption; a high-fat meal up to two hours before dosing increases the Cmax by ~25% and either a reduction (food consumed immediately prior to dosing) or increase (food consumed after dosing) of ~1/3 in Tmax. Neither the AUC nor half-life are appreciably affected by eating.
Alprazolam is mainly eliminated in the urine. A large portion of the dose is eliminated as unmetabolized alprazolam. <10% of the dose is eliminated as alpha-hydroxy-alprazolam and 4-hydroxy-alprazolam.
Alprazolam has a volume of distribution following oral administration of 0.8-1.3L/kg. Alprazolam crosses the blood-brain barrier.
A 0.8 mg oral dose of alprazolam had a clearance of 0.90 ± 0.21 mL/min/kg, which increased to 2.13 ± 0.54 mL/min/kg when coadministered with the strong CYP3A4 inducer carbamazepine. Other studies have demonstrated a clearance of 0.70-1.5mL/min/kg.
In vitro, alprazolam is bound (80 percent) to human serum protein. Serum albumin accounts for the majority of the binding.
Alprazolam and its metabolites are excreted primarily in the urine.
Metabolism
Alprazolam is metabolized to less effective metabolites by various CYPs including CYP3A4, CYP3A5, CYP3A7, and CYP2C9. The majority of alprazolam metabolism is mediated by hydroxylation via CYP3As. 4-hydroxyalprazolam has 20% the binding affinity of the parent drug, alpha-hydroxyalprazolam has 66% the affinity, and the benzophenone metabolite has <1% the affinity.
Alprazolam, an anti-anxiety agent, is metabolized in rat and human liver by P4503A1 and P4503A4 respectively, to 4-hydroxy alprazolam (4-OHALP, pharmacologically less active) and alpha-hydroxy alprazolam (alpha-OHALP, pharmacologically more active). We examined P450 mediated metabolism of alprazolam by rat and human brain microsomes and observed that the relative amount of alpha-OHALP formed in brain was higher than liver. This biotransformation was mediated by a P450 isoform belonging to P4503A subfamily, which is constitutively expressed in neuronal cells in rat and human brain. The formation of larger amounts of alpha-OHALP in neurons points to local modulation of pharmacological activity in brain, at the site of action of the anti-anxiety drug. Since hydroxy metabolites of alprazolam are hydrophilic and not easily cleared through blood-CSF barrier, alpha-OHALP would potentially have a longer half-life in brain.
Alprazolam is extensively metabolized in humans, primarily by cytochrome P450 3A4 (CYP3A4), to two major metabolites in the plasma: 4-hydroxyalprazolam and a-hydroxyalprazolam. A benzophenone derived from alprazolam is also found in humans. Their half-lives appear to be similar to that of alprazolam. The plasma concentrations of 4-hydroxyalprazolam and a-hydroxyalprazolam relative to unchanged alprazolam concentration were always less than 4%. The reported relative potencies in benzodiazepine receptor binding experiments and in animal models of induced seizure inhibition are 0.20 and 0.66, respectively, for 4-hydroxyalprazolam and a-hydroxyalprazolam. Such low concentrations and the lesser potencies of 4-hydroxyalprazolam and a-hydroxyalprazolam suggest that they are unlikely to contribute much to the pharmacological effects of alprazolam. The benzophenone metabolite is essentially inactive.
Alprazolam has known human metabolites that include 4-Hydroxyalprazolam and Beta-Hydroxyalprazolam.
Hepatic. Hydroxylated in the liver to α-hydroxyalprazolam, which is also active. This and other metabolites are later excreted in urine as glucuronides.
Route of Elimination: Alprazolam and its metabolites are excreted primarily in the urine.
Half Life: 6.3-26.9 hours
Protein binding
Alprazolam is ~80% protein-bound in serum. The majority of this protein binding is to serum albumin. Alprazolam is also bound to alpha1-acid glycoprotein with low frequency.
External links
Fact-sheets from PsychonautWiki. Harm-reduction reference only — not medical advice.