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Piracetam

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Also known as Piracetam, nootropil, lucetam, noostan, breinox, oikamid, geratam, biotropilPW

A racetam nootropic claimed by many to have cognitive benefits however this has never been strongly supported in healthy individuals. Prescribed in the UK as a treatment for myoclonus. Potentially an ampakine. One of the first popular 'nootropics.'TS

Addiction potentialPW
not addictive with a low potential for abuse
TolerancePW
full tolerance develops with prolonged and repeated use; half after 3 - 7 days; baseline after 1 - 2 weeks
Cross-tolerancePW
racetam, nootropic

Oral

Route dataPsychonautWiki

ThresholdLightCommonStrongHeavy
0.25 g0.5–2 g2–3 g3–5 g5 g+
06.25 g
LightCommonStrongHeavy
Onset30–90 minutes
Total4–8 hours
OnsetCome-upPeakOffset

🧬 Receptor activityPH

TargetActionAffinitySource
GluA1Positive (Allosteric modulator)GTOPDB
GluA2Positive (Allosteric modulator)GTOPDB
GluA3Positive (Allosteric modulator)GTOPDB
GluA4Positive (Allosteric modulator)GTOPDB
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Mechanism of actionPH

Piracetam interacts with the polar heads in the phospholipids membrane and the resulting mobile drug-lipid complexes are thought to reorganize the lipids and influence membrane function and fluidity. Such interaction has been reported in a study that investigated the effects of neuronal outgrowth induced by beta amyloid peptides; while amyloid peptides cause lipid disorganization within the cell membranes leading to neuronal death, piracetam demonstrated to decrease the destabilizing effects of amyloid peptide. The authors suggest that piracetam induces a positive curvature of the membrane by occupying the polar groups in the phospholipids to counteract the negative curvature induced by amyloid peptides , which in turn would decrease the likelihood of membrane fusion. This mechanism of action is thought to improve membrane stability, allowing the membrane and transmembrane proteins to maintain and recover the three-dimensional structure or folding for normal function such as membrane transport, chemical secretion, and receptor binding and stimulation. Through restored membrane fluidity, piracetam promotes restored neurotransmission such as glutamatergic and cholinergic systems, enhances neuroplasticity and mediates neuroprotective and anticonvulsant effects at the neuronal level. It is also demonstrated that piracetam also improves the fluidity of platelet membranes. At the vascular level, piracetam decreases adhesion of erythrocytes to cell wall and reduces vasospasm which in turn improves microcirculation including cerebral and renal blood flow.
It was found that a drug of the nootropic nature piracetam possessing pronounced antihypoxic properties eliminates calcium chloride-induced disturbances of the cardiac rhythm and significantly raises the threshold of atrial fibrillation during electrical stimulation. The drug's antiarrhythmic effect is followed by a decrease of the rhythm rate and an increase of the contraction amplitude. The animals treated with piracetam in a dose when its antiarrhythmic effects (300 mg/kg) exhibited a decrease of the membrane potential of erythrocytes as compared with control. Similar effects occurred in the animals treated with lidocaine. It can be concluded that in certain types of arrhythmias the use of piracetam restores the normal rhythm of contractions that is perhaps connected with its positive influence on metabolic processes in the myocardium.

PharmacodynamicsPH

Piracetam is known to mediate various pharmacodynamic actions: **Neuronal effects**: Piracetam modulates the cholinergic, serotonergic, noradrenergic, and glutamatergic neurotransmission although the drug does not display high affinity to any of the associated receptors (Ki >10μM). Instead, piracetam increases the density of postsynaptic receptors and/or restore the function of these receptors through stabilizing the membrane fluidity. In the forebrain of aging mice, the density of NMDA receptors was increased by approximately 20% following 14 days of piracetam treatment. Based on the findings of various animal and human studies, the cognitive processses including learning, memory, attention and consciousness were enhanced from piracetam therapy without inducing sedation and psychostimulant effects. Piracetam mediate neuroprotective effects against hypoxia-induced damage, intoxication, and electroconvulsive therapy. In two studies involving alcohol-treated rats with evidences of withdrawal-related neuronal loss, piracetam was shown to reduce the extent of neuronal loss and increase the numbers of synapses in the hippocampus by up to 20% relative to alcohol-treated or alcohol-withdrawn rats. This suggests that piracetam is capable in promoting neuroplasticity when recoverable neural circuits are present. Although the mechanism of action is not fully understood, administration of piracetam prior to a convulsant stimulus reduces the seizure severity and enhances the anticonvulsant effectiveness of conventional antiepileptics such as carbamazepine and diazepam. **Vascular effects**: Piracetam is shown to increase the deformability of erythrocytes, reduce platelet aggregation in a dose-dependent manner, reduce the adhesion of erythrocytes to vascular endothelium and capillary vasospasm. In healthy volunteers, piracetam mediated a direct stimulant effect on prostacycline synthesis and reduced the plasma levels of fibrinogen and von Willebrand’s factors (VIII: C; VIII R: AG; VIII R: vW) by 30 to 40%. Potentiated microcirculation is thought to arise from a combination of effects on erythrocytes, blood vessels and blood coagulation.

Pharmacokinetics

Half-lifePH

The plasma half life of piracetam is approximately 5 hours following oral or intravenous administration. The half life in the cerebrospinal fluid was 8.5 hours.
... The plasma half-life is 5.0 hours, in young adult men.

AbsorptionPH

Piracetam displays a linear and time-dependent pharmacokinetic properties with low intersubject variability over a large range of doses. Piracetam is rapidly and extensively absorbed following oral administration with the peak plasma concentration is reached within 1 hour after dosing in fasted subjects. Following a single oral dose of 3.2 g piracetam, the peak plasma concentration (Cmax) was 84 µg/mL. Intake of food may decrease the Cmax by 17% and increase the time to reach Cmax (Tmax) from 1 to 1.5 hours. Tmax in the cerebrospinal fluid is achieved approximately 5 hours post-administration. The absolute bioavailability of piracetam oral formulations is close to 100% and the steady state plasma concentrations are achieved within 3 days of dosing.
Piracetam is predominantly excreted via renal elimination, where about 80-100% of the total dose is recovered in the urine. Approximately 90% of the dose of piracetam is excreted in the urine as unchanged drug.
Vd is approximately 0.6L/kg. Piracetam may cross the blood-brain barrier as it was measured in the cerebrospinal fluid following intravenous administration. Piracetam diffuses to all tissues except adipose tissues, crosses placental barrier and penetrates the membranes of isolated red blood cells.
The apparent total body clearance is 80-90 mL/min.
Piracetam is rapidly and almost completely absorbed. Peak plasma levels are reached within 1.5 hours after administration. The extent of oral bioavailability, assessed from the Area Under Curve (AUC), is close to 100% for capsules, tablets and solution.
Peak levels and AUC are proportional to the dose given. The volume of distribution of piracetam is 0.7 L/kg, and ... Clearance of the compound is dependent on the renal creatinine clearance and would be expected to diminish with renal insufficiency.

MetabolismPH

As large proportion of total piracetam administered is excreted as unchanged drug, there is no known major metabolism of piracetam.
... No metabolite of piracetam has been found.

Protein bindingPH

Piracetam is not reported to be bound to plasma proteins.

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

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