01 Identity and provenance
- Accepted binomial
- Peganum harmala
- Common names
- Syrian Rue
- Family (APG IV)
- Nitrariaceae
- Part used
- Seed
- Verification tier
- Tier 2 · Verified Clinical columns reviewed and a source is on record.
- Reviewer note (2026 audit)
- Herraiz T et al. Food Chem Toxicol 2010;48:839-45 (MAO IC50 data) | Berdai MA et al. Case Rep Emerg Med 2014;2014:783236 (pregnancy) | PMC4075715 | VERIFIED 2026 (batch 3) - synthetic analogue, application, interactions, side effects and references populated from retrieved primary/regulatory sources. Interactions labelled CLINICAL vs THEORETICAL. Marketed-formulation column intentionally blank. | INTERACTION
02 Constituent chemistry
| Chemical class | Marker compound | Synthetic analogue in use |
|---|---|---|
| beta-Carboline alkaloids | Harmine, Harmaline
Seed
|
MAO-A inhibitors - moclobemide (reversible, competitive), phenelzine (irreversible). Harmine and harmaline are reversible competitive MAO-A inhibitors. |
The analogue column is what makes the interaction reasoning tractable: where a constituent has a marketed structural counterpart, the counterpart's interaction profile is the starting hypothesis for the plant.
03 Stated application
- Reported activity
- Traditional use as emmenagogue, galactagogue, digestive and antipyretic; seeds burnt as incense (espand). Increasingly ingested recreationally as an ayahuasca analogue.
- Reported adverse effects
- Dose-dependent and potentially life-threatening, though most patients recover with supportive care. Neurological: tremor, convulsion, visual disturbance, delirium, hallucination, ataxia, paralysis, CNS depression, respiratory paralysis, hypothermia. Alkaloid load is high and concentrated in seed and root - dry seeds carry roughly 4.3% harmine and 5.6% harmaline. Quinazoline alkaloids contribute abortifacient action; a poisoning case in pregnancy is reported. Flowers contain essentially none.
04 Interaction matrix
Source column, verbatim: MAJOR - TREAT AS AN MAO-A INHIBITOR. Seed extract inhibits human MAO-A with IC50 27 ug/L (root 159 ug/L), with negligible MAO-B effect. Anticipate the full MAOI interaction set: SSRIs, SNRIs, TCAs, triptans, tramadol, pethidine, sympathomimetics, and tyramine-rich foods. Tetrahydroharmine also inhibits serotonin uptake, compounding serotonergic risk.
Normalised onto 3 canonical drug classes below.
Curated from the reviewed source
| Drug class | Severity | Mechanism type | Provenance | Expected effect | |
|---|---|---|---|---|---|
|
Monoamine oxidase inhibitors
CNS
|
4Contraindicated | PD-additive | curated A | Hypertensive crisis, hyperpyrexia, serotonin syndrome, intracranial haemo… | why ▾ |
Chemistry of this pair. Indole and beta-carboline alkaloids act on monoamine storage, reuptake and oxidation, and several are tubulin poisons. Class mechanism. Beta-carboline (harmine, harmaline) and related botanical alkaloids are themselves reversible MAO-A inhibitors. Combined with a prescribed MAOI, or with tyramine-rich food or sympathomimetics, the pressor and serotonergic reserve is abolished.
| |||||
|
CNS stimulants and sympathomimetics
CNS
|
3Major | PD-additive | curated A | Tachycardia, hypertension, arrhythmia, insomnia, anxiety, stroke and myoc… | why ▾ |
Class mechanism. Ephedrine, pseudoephedrine, caffeine, synephrine and cathine-type constituents add to prescribed stimulant and decongestant sympathomimetic drive.
| |||||
|
Opioid analgesics
CNS
|
3Major | PD-additive + PK-CYP2D6/3A4 | curated A | Respiratory depression, over-sedation, constipation, ileus; unpredictable… | why ▾ |
Class mechanism. Botanical mu-agonists and CNS depressants add to opioid respiratory and sedative effect; CYP2D6 and CYP3A4 modulation alters the conversion of codeine and tramadol to active metabolites.
| |||||
Predicted from constituent chemistry
| Drug class | Severity | Mechanism type | Provenance | Expected effect | |
|---|---|---|---|---|---|
|
Antidepressants (SSRI, SNRI, TCA)
CNS
|
4Contraindicated | PD-additive serotonergic + PK-CYP2D6 | predicted D | Serotonin syndrome (agitation, clonus, hyperthermia, autonomic instabilit… | why ▾ |
Chemistry of this pair. Indole and beta-carboline alkaloids act on monoamine storage, reuptake and oxidation, and several are tubulin poisons. Class mechanism. Hypericin- and hyperforin-type constituents inhibit monoamine reuptake and induce CYP3A4/2C19 and P-glycoprotein; others inhibit CYP2D6, raising tricyclic and SSRI concentrations.
| |||||
|
Antihypertensives
Cardiovascular
|
4Contraindicated | PD-additive | predicted D | Orthostatic hypotension, dizziness, syncope and falls; or loss of blood-p… | why ▾ |
Chemistry of this pair. Indole and beta-carboline alkaloids act on monoamine storage, reuptake and oxidation, and several are tubulin poisons. Class mechanism. Vasodilator, diuretic, ACE-inhibitory and calcium-antagonist activity in botanical extracts adds to prescribed blood-pressure lowering. A minority (ephedrine-, glycyrrhizin- and caffeine-bearing) act in the opposite direction and antagonise control.
| |||||
|
Cytotoxic and targeted anticancer drugs
Oncology
|
4Contraindicated | PK-CYP3A4/UGT + PD-antagonistic | predicted D | Neutropenic sepsis and severe diarrhoea from over-exposure, or reduced an… | why ▾ |
Chemistry of this pair. Indole and beta-carboline alkaloids act on monoamine storage, reuptake and oxidation, and several are tubulin poisons. Class mechanism. Botanical CYP3A4 and UGT1A1 modulation alters exposure to irinotecan, taxanes, vinca alkaloids and kinase inhibitors. High-dose antioxidant botanicals may also oppose the oxidative mechanism of some cytotoxics and of proteasome inhibitors.
| |||||
|
Narrow-therapeutic-index CYP3A4 substrates
Pharmacokinetic
|
4Contraindicated | PK-CYP3A4 | predicted D | Toxic accumulation or subtherapeutic failure of the co-prescribed drug, s… | why ▾ |
Chemistry of this pair. Alkaloidal bases have pH-dependent absorption and commonly interact with hepatic CYP isoenzymes and efflux transporters. Class mechanism. Furanocoumarins, bergamottin, piperine, glabridin and berberine inhibit CYP3A4; hyperforin, andrographolide and several diterpenes induce it through PXR. Because CYP3A4 handles roughly half of marketed drugs, the affected list is broad and the direction is product-specific.
| |||||
|
Antacids, PPIs and H2 blockers
Gastrointestinal
|
2Moderate | PK-absorption | predicted D | Reduced or erratic absorption of alkaloids; heartburn and reflux from pre… | why ▾ |
Chemistry of this pair. Alkaloidal bases have pH-dependent absorption and commonly interact with hepatic CYP isoenzymes and efflux transporters. Class mechanism. Gastric pH elevation alters the dissolution and ionisation of alkaloidal and enteric-coated botanical products; menthol- and peppermint-oil products lose their enteric protection at high pH and can be released prematurely.
| |||||
05 Hazard register
06 Confusable material
No same-genus or shared-common-name entry in the corpus.
07 Mechanism map
Chemistry sorts to the left, pharmacology to the right. Dashed edges are predicted. Drag nodes, scroll to zoom, export at 3× for a figure.
08 Open literature
Abstract-scoped query built from this binomial, its common names and its marker compounds, run live against Europe PMC, PubMed and OpenAlex, then ranked locally against an evidence hierarchy.
09 Isomechanistic neighbours
Species whose interaction profile overlaps this one, ranked by shared severity weight rather than by count — a shared contraindication counts for more than a shared minor signal. Practical use: these are the plants you should not stack with this one, because the mechanisms summate.
| Species | Family | Shared classes | Weight | Jaccard |
|---|---|---|---|---|
| Strychnos nux-vomica
Nux Vomica |
Loganiaceae | 7 | 0.70 | |
| Mitragyna speciosa
Kratom |
Rubiaceae | 7 | 0.70 | |
| Rauvolfia serpentina
Sarpagandha |
Apocynaceae | 6 | 0.75 | |
| Catharanthus roseus
Periwinkle |
Apocynaceae | 6 | 0.75 | |
| Alstonia scholaris
Saptaparna |
Apocynaceae | 6 | 0.75 | |
| Physostigma venenosum
Calabar Bean |
Fabaceae | 6 | 0.60 |
10 References and notes
Source column: Frison G et al. Forensic Sci Int 2008;179:e37-43
Frison G et al. Forensic Sci Int 2008
179:e37-43
BibTeX for all 2 records
@article{FrisonGet2008,
title = {Frison G et al. Forensic Sci Int 2008},
author = {Frison G et al.},
journal = {Forensic Sci Int},
year = {2008},
}
@article{anon,
title = {179:e37-43},
}
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