Experimental Neurology
February 14, 2020
Sándor Nardai, Marcell László, Attila Szabo et al.
91 citations
A single intraperitoneal dose of DMT (1 mg/kg) followed by a 24-hour infusion (2 mg/kg/h) reduced ischemic brain lesion volume and improved functional recovery in male Wistar rats after 60 minutes of transient middle cerebral artery occlusion. The neuroprotective effect was blocked by a Sigma-1 receptor antagonist, indicating a Sigma-1 receptor-dependent mechanism. DMT treatment lowered expression of the pro-apoptotic protein APAF1, increased brain-derived neurotrophic factor (BDNF), and shifted the inflammatory cytokine profile toward an anti-inflammatory state (decreased TNF-α, IL-1β, IL-6; increased IL-10). The findings suggest DMT protects against ischemic injury through combined anti-apoptotic, pro-neurotrophic, and anti-inflammatory actions.
Science advances
August 15, 2025
Marcell J László, Judit P Vigh, Anna E Kocsis et al.
9 citations
In a rat stroke model, DMT reduces brain damage by decreasing swelling, restoring the blood-brain barrier, and shifting the body toward an anti-inflammatory state. DMT also suppresses inflammatory signals from brain and immune cells via the sigma-1 receptor. These effects suggest DMT could complement existing stroke therapies.
European Stroke Journal
May 1, 2026
Anna Zsigmond, Rita Frank, Botond Eröss et al.
In acute ischemic stroke, spreading depolarizations worsen neuronal injury. The sigma-1 receptor agonist dimethyltryptamine (DMT) reduced the cortical area affected by spreading depolarizations in both wild-type and sigma-1 receptor knockout mice (53.3% vs. 65.7% in wild-type, 42.1% vs. 61.0% in knockout). In knockout animals only, DMT also reduced the area under the curve of depolarizations (299.9 vs. 543.3 mV·s) and their propagation velocity (2.6 vs. 3.8 mm/min). NeuN-positive cell numbers tended to increase with DMT. Surprisingly, DMT was more effective in knockout mice, indicating its neuroprotective effects involve aminergic receptors alongside sigma-1 receptor activation, supporting potential adjuvant use in stroke treatment.