Product Overview

6-Hydroxycarboline Derivative (Synonyms: 6-Hydroxy-β-carboline; 6-Hydroxy-9H-pyrido[3,4-b]indole; β-Carboline alkaloid derivative; Harmala alkaloid analog; 6-OH-norharman; 6-Hydroxy-norharmane, CAS 54660-75-2, C11H8N2O, MW ~184 g/mol) is a β-carboline (9H-pyrido[3,4-b]indole) alkaloid derivative — a member of one of the most privileged scaffolds in medicinal chemistry. The β-carboline tricyclic system, comprising an indole (benzopyrrole) fused to a pyridine ring, is the core pharmacophore of over 100 naturally occurring alkaloids including harmine, harmaline, harmalol (from Peganum harmala / Syrian rue — the richest natural source at 3-4% total alkaloid content), and β-carboline-3-carboxylic acid which is endogenously synthesized in the human brain and present in cerebrospinal fluid (CSF) at nanomolar concentrations. The 6-hydroxy substitution transforms the parent β-carboline scaffold in four critical ways: (1) Hydrogen bond donor/acceptor site — the phenolic -OH at position 6 provides a well-positioned H-bond motif for target engagement with monoamine oxidase (MAO) active-site residues (Tyr407/Tyr444 in MAO-A, Tyr398/Tyr435 in MAO-B), benzodiazepine receptor binding pocket residues, and kinase ATP-binding sites, significantly enhancing binding affinity compared to unsubstituted β-carboline; (2) Prodrug derivatization handle — the 6-OH enables ester, ether, carbamate, phosphate, and sulfamate prodrug strategies, as well as metabolic Phase II conjugation (glucuronidation via UGT1A1/UGT1A9 and sulfation via SULT1A1/SULT1A3) for pharmacokinetic optimization; (3) Fluorescence enhancement — the 6-OH extends the indole chromophore conjugation through oxygen lone-pair participation, increasing the molar extinction coefficient and quantum yield (Φ) versus unsubstituted β-carboline — a critical property for the β-carboline scaffold’s established use as a fluorescent probe in cellular imaging, protein-ligand binding assays, and FRET-based screening platforms; (4) Metabolic handle — Phase II conjugation at the 6-OH provides a predictable clearance pathway for in vivo pharmacokinetic studies, enabling translational research from in vitro pharmacology to animal models. β-Carbolines are endogenous in humans: β-CCM (β-carboline-3-carboxylate methyl ester), norharman (β-carboline), and harman (1-methyl-β-carboline) are biosynthesized via the Pictet-Spengler condensation of indoleamines (tryptamine, 5-hydroxytryptamine/serotonin) with aldehydes or α-keto acids, and have been quantified in human CSF, plasma, platelets, and brain tissue. They function as endogenous inverse agonists at the benzodiazepine site of GABA-A receptors and as endogenous MAO inhibitors, positioning them at the intersection of neurotransmitter regulation, anxiety, cognition, and neuroprotection. The 6-hydroxy derivative’s enhanced pharmacological profile — combining the core β-carboline pharmacophore with a synthetically versatile phenolic handle — makes it an ideal scaffold for structure-activity relationship (SAR) studies, medicinal chemistry optimization programs, and chemical biology probe development targeting the GABA-A/MAO/neuroprotection axis.

As a specialized supplier of β-carboline derivatives and research chemicals, UPOR Biotech provides high-purity 6-Hydroxycarboline Derivative for academic neuroscience laboratories, pharmaceutical R&D teams, contract research organizations (CROs), medicinal chemistry groups, and natural product synthesis programs worldwide. The β-carboline scaffold sits at the convergence of several high-impact neuroscience research areas: MAO inhibitor development (harmine-derived reversible MAO-A inhibitors for depression and Parkinson’s disease, with the β-carboline scaffold offering the highest MAO-A selectivity index of any natural product class — harmine IC50 ~0.002 μM for MAO-A with ~25,000-fold selectivity over MAO-B), GABA-A benzodiazepine receptor pharmacology (β-carbolines as the prototypical inverse agonists — the pharmacological opposite of classical benzodiazepines — enabling dissection of GABA-A receptor subtype function in anxiety, learning, memory, and addiction), neuroprotection and neurodegeneration (the β-carboline scaffold’s multi-mechanism neuroprotective profile encompassing MAO inhibition, oxidative stress attenuation via Nrf2/ARE activation, iron chelation, and mitochondrial protection), and chemical biology probe development (the intrinsic fluorescence of the β-carboline chromophore — enhanced by the 6-OH substitution — enables real-time visualization of compound distribution, target engagement, and cellular pharmacokinetics without external fluorophore conjugation). OEM and custom synthesis capabilities available for modified β-carboline scaffolds with different substitution patterns, N-alkylation, and C-1/C-3 functional group variation, with flexible MOQ starting at 100 mg for Research Grade. Free sample available for qualified academic and industry researchers.

6-Hydroxycarboline vs Unsubstituted β-Carboline — The 6-OH Advantage: Why Hydroxylation Transforms Target Engagement, Fluorescence, and Synthetic Versatility

The β-carboline (9H-pyrido[3,4-b]indole) scaffold is a privileged structure in medicinal chemistry — but the 6-hydroxy substitution fundamentally transforms its pharmacological and physicochemical profile. Unsubstituted β-carboline (norharman) binds the benzodiazepine site of GABA-A receptors as an inverse agonist and inhibits MAO, but its utility in SAR studies is limited by: (1) relatively featureless molecular recognition — only aromatic π-stacking and weak N-H hydrogen bonding with receptor pockets, (2) moderate fluorescence with suboptimal quantum yield for imaging applications, and (3) no synthetic handle for further derivatization. 6-Hydroxycarboline overcomes all three limitations: (1) Enhanced target engagement — the 6-OH forms hydrogen bonds with key active-site residues in MAO-A (Tyr407, Tyr444) and MAO-B (Tyr398, Tyr435), contributing 2-5 kcal/mol additional binding energy and improving IC50 values by 3- to 10-fold in head-to-head enzyme assays compared to the 6-unsubstituted parent; the OH also engages the benzodiazepine binding pocket’s hydrogen bond network (analogous to the 4′-Cl in diazepam or the 2′-F in flunitrazepam that hydrogen-bond to Ser204/Thr206), converting a purely π-stacking recognition mode into a directional, enthalpically favorable binding interaction; (2) Improved fluorescence — the 6-OH oxygen lone-pair orbital extends the indole π-system, resulting in a bathochromic shift (excitation ~320-340 nm, emission ~420-460 nm compared to ~300/400 nm for the parent), increased molar absorptivity (ε), and 2- to 5-fold higher quantum yield (Φ) — pushing it into a practical range for confocal microscopy, flow cytometry, and high-throughput fluorescence polarization assays without the need for external fluorophore conjugation; (3) Synthetic versatility — the phenolic -OH is the most synthetically enabling functional group on an aromatic scaffold, allowing direct etherification (Williamson, Mitsunobu), esterification, carbamate formation, sulfonation, phosphorylation, O-alkylation for SAR exploration, and click chemistry via propargyl ether tethering — transforming the β-carboline core from a “dead-end” natural product into a modular scaffold for combinatorial library synthesis. For neuroscience research groups, this means 6-hydroxycarboline is not merely a “hydroxylated β-carboline” but a functionalized privileged scaffold that simultaneously serves as a pharmacological probe, fluorescent reporter, and synthetic building block — three tools in one molecule.

Technical Specifications

PropertySpecification
Product Name6-Hydroxycarboline Derivative — Research Grade (≥98% HPLC) / Standard Grade (≥95%)
Common Name / Synonyms6-Hydroxy-β-carboline; 6-Hydroxy-9H-pyrido[3,4-b]indole; β-Carboline alkaloid derivative; Harmala alkaloid analog; 6-OH-norharman; 6-Hydroxy-norharmane; 6-Hydroxy-2,9-diazafluorene; 3,6-Dihydro-2H-pyrido[3,4-b]indol-6-ol
CAS Number54660-75-2
Molecular FormulaC11H8N2O
Molecular Weight~184.19 g/mol (anhydrous); 184.20 g/mol (monoisotopic)
Scaffold Classβ-Carboline alkaloid — 9H-pyrido[3,4-b]indole (privileged structure in medicinal chemistry, >100 naturally occurring alkaloids share this core)
Key Pharmacophore FeaturesIndole (benzopyrrole) fused to pyridine — planar aromatic tricyclic system; 6-OH phenolic hydrogen bond donor/acceptor; N-9 indole NH (pKa ~13-14); N-2 pyridine nitrogen (pKa ~5-6 of conjugate acid); endocyclic C=N imine character at 3,4-position
Biological RelevanceMonoamine oxidase (MAO) inhibitor pharmacophore; GABA-A benzodiazepine receptor inverse agonist scaffold; endogenous human brain metabolite (norharman/harman at nanomolar concentrations in CSF); fluorescent indole chromophore
AppearanceOff-white to pale yellow crystalline powder (free base); hydrochloride salt — white to off-white crystalline powder
Assay — Research Grade≥98.0% (HPLC, 254 nm, area normalization, on anhydrous basis)
Assay — Standard Grade≥95.0% (HPLC, 254 nm, area normalization, on anhydrous basis)
Identification — 1H-NMR (400 MHz)Characteristic aromatic proton pattern: indole C-5 (d, J~8.5 Hz), C-7 (dd, J~8.5, 2.0 Hz), C-8 (d, J~2.0 Hz) meta-coupled to 6-OH; pyridine C-1 (s), C-3 (d), C-4 (d); indole NH (br s, ~11-12 ppm); phenolic OH (br s, ~9-10 ppm, exchangeable with D2O). Research Grade — 1H-NMR spectrum provided.
Identification — LC-MS/HRMS[M+H]+ = 185.0715 (calculated for C11H9N2O+); [M-H]- = 183.0558 (calculated for C11H7N2O-). High-resolution mass spectrum with ±3 ppm mass accuracy (Research Grade).
Identification — UV-Visλ-max (MeOH) ~245, 290, 340 nm (characteristic β-carboline chromophore with 6-OH bathochromic shift relative to unsubstituted β-carboline)
Fluorescence Propertiesλ-ex ~320-340 nm; λ-em ~420-460 nm; Stokes shift ~80-120 nm; quantum yield (Φ) enhanced 2-5x vs unsubstituted β-carboline due to 6-OH p-orbital conjugation extending the indole chromophore. Suitable for confocal microscopy (DAPI filter set), flow cytometry (UV/violet laser), and fluorescence polarization assays.
Melting Point>250°C (decomposition, free base); hydrochloride salt — >220°C (decomposition)
Loss on Drying≤1.0% (105°C, 2 hours)
Residue on Ignition≤0.2% (sulfated ash)
SolubilitySoluble in DMSO (≥20 mg/mL), DMF, methanol, ethanol; sparingly soluble in water (<0.5 mg/mL free base; enhanced solubility in acidic aqueous solution as hydrochloride salt); insoluble in hexane, chloroform (limited). For biological assays: prepare stock solution in DMSO (10-50 mM), dilute into aqueous buffer (final DMSO ≤1% v/v).
pKa (Predicted)Phenolic 6-OH: pKa ~9.5-10.0; Pyridine N-2 conjugate acid: pKa ~5.0-6.0; Indole N-9: pKa >13 (not significantly deprotonated under physiological conditions)
Heavy Metals (Total)≤20 ppm (as Pb)
Elemental ImpuritiesPb ≤10 ppm; As ≤2 ppm; Hg ≤2 ppm; Cd ≤2 ppm (ICH Q3D compliant — Research Grade)
Residual SolventsICH Q3C Class 3 compliant; analyzed by GC headspace. Typical residual solvents from synthesis (methanol, ethanol, ethyl acetate, acetone) each ≤5000 ppm.
Storage Condition2-8°C (refrigerated, short-term <1 month); -20°C (long-term >1 month); tightly sealed in amber glass vial under inert atmosphere (argon or nitrogen); protect from light (β-carboline chromophore is photolabile — extended UV exposure causes photodegradation via singlet oxygen-mediated oxidation of the indole ring) and moisture
Shelf Life2 years from date of manufacture under recommended storage conditions (-20°C, protected from light and moisture, in unopened original container)
Grade / StandardsResearch Grade (≥98% HPLC, with full characterization package) / Standard Grade (≥95% HPLC, routine use). Research Use Only (RUO) — not for human diagnostic or therapeutic use.
CertificationsISO 9001:2015 (Quality Management System); Certificate of Analysis (COA) with every lot; MSDS/SDS provided; TSE/BSE-Free Statement
Packaging100 mg / 250 mg / 500 mg / 1 g in amber glass vial with PTFE-lined screw cap, sealed under argon (Research Grade); 1 g / 5 g / 10 g in amber glass bottle with PTFE-lined cap (Standard Grade). Custom packaging and aliquoting available on request.
MOQResearch Grade: 100 mg; Standard Grade: 1 g

Key Benefits — 6-Hydroxycarboline Derivative

Privileged β-Carboline Scaffold — Clinically Validated Pharmacophore for Neuroscience Research

The 9H-pyrido[3,4-b]indole core is one of the most privileged structures in medicinal chemistry, found in over 100 naturally occurring alkaloids and endogenously present in human brain and CSF at nanomolar concentrations. β-Carbolines are the pharmacophore of harmine — the most MAO-A-selective natural product known (IC50 ~0.002 μM, 25,000-fold selectivity over MAO-B). The scaffold simultaneously engages MAO, GABA-A benzodiazepine receptors, and multiple neuroprotective pathways.

Privileged Scaffold

Enhanced Target Engagement — 6-OH Hydrogen Bond Donor/Acceptor for Improved Binding Affinity

The phenolic 6-OH substitution provides a directional hydrogen bond donor/acceptor site that engages MAO active-site tyrosine residues (Tyr407/Tyr444 in MAO-A, Tyr398/Tyr435 in MAO-B) and benzodiazepine receptor pocket residues, contributing 2-5 kcal/mol additional binding energy and improving IC50 values by 3- to 10-fold versus unsubstituted β-carboline in enzyme inhibition assays.

Enhanced Binding

Fluorescent Probe Capability — 6-OH Extends Conjugation for Higher Quantum Yield in Bioimaging

The 6-OH oxygen lone-pair orbital extends the indole π-system, producing a bathochromic shift (ex ~320-340 nm, em ~420-460 nm) and 2- to 5-fold higher quantum yield (Φ) compared to unsubstituted β-carboline. This intrinsic fluorescence — compatible with DAPI filter sets and UV/violet laser lines — enables real-time compound visualization, target engagement monitoring, and cellular pharmacokinetic tracking without external fluorophore conjugation.

Fluorescent Probe

Synthetic Versatility — Phenolic Handle for Prodrug Design, SAR Exploration, and Bioconjugation

The 6-OH position is the most synthetically enabling functional group on an aromatic scaffold, supporting etherification, esterification, carbamate formation, sulfonation, phosphorylation, and click chemistry (propargyl ether) tethering. This converts the β-carboline core from a “dead-end” natural product into a modular scaffold for combinatorial library synthesis, prodrug design, and bioconjugate development.

Synthetic Handle

Applications

Monoamine Oxidase (MAO) Inhibitor Research — Reversible MAO-A / MAO-B SAR Studies

6-Hydroxycarboline as the core scaffold for structure-activity relationship (SAR) studies on reversible MAO-A and MAO-B inhibitors. The β-carboline scaffold provides the highest MAO-A selectivity index of any natural product class. Standard usage: prepare 10-50 mM DMSO stock, dilute into enzyme assay buffer, measure IC50 via fluorometric or luminometric MAO activity assay (Amplex Red or equivalent) at 0.1 nM to 100 μM.

GABA-A Benzodiazepine Receptor Ligand Pharmacology & Subtype Selectivity Profiling

β-Carboline-based benzodiazepine site ligands for electrophysiology (patch-clamp, two-electrode voltage clamp in Xenopus oocytes expressing recombinant GABA-A receptor subunits) and radioligand binding displacement assays ([3H]-flunitrazepam, [3H]-Ro15-1788/flumazenil). Inverse agonist, antagonist, and partial agonist SAR exploration across α1β2γ2, α2β2γ2, α3β2γ2, and α5β2γ2 receptor subtypes.

Neuroprotection & Neurodegeneration Research — Multi-Mechanism Compound Development

6-Hydroxycarboline scaffold for neuroprotection studies targeting MAO inhibition (reducing H2O2 from dopamine oxidative deamination), oxidative stress attenuation (Nrf2/ARE pathway activation, direct radical scavenging via indole + phenolic OH), iron chelation (pyrido nitrogen + 6-OH catechol-like motif), and mitochondrial protection (mPTP modulation). For Parkinson’s disease, Alzheimer’s disease, and cerebral ischemia research programs at 1-50 μM in cell-based neuroprotection assays.

Fluorescent Probe & Chemical Biology Tool Development — Label-Free Target Engagement

Intrinsic β-carboline fluorescence (ex 320-340 nm, em 420-460 nm) for label-free cellular imaging, protein-ligand binding assays (fluorescence polarization / FRET-based displacement), subcellular localization studies via confocal microscopy (DAPI/UV filter set), and high-throughput screening (HTS) compatible fluorescent readout. Enables real-time visualization of compound distribution without external fluorophore conjugation.

Natural Product Synthesis & Alkaloid Total Synthesis Intermediate

6-Hydroxycarboline as a key synthetic intermediate for the total synthesis of harmala alkaloids (harmine, harmaline, harmalol), β-carboline-3-carboxylic acid derivatives, eudistomin marine alkaloids, and complex polycyclic β-carboline natural products. The 6-OH provides a regioselective functionalization point for late-stage diversification in total synthesis campaigns at 100 mg to multi-gram scale.

Endogenous β-Carboline Research — CNS Metabolite Quantification & Physiological Role Studies

6-Hydroxycarboline as an analytical reference standard and chemical probe for investigating the physiological roles of endogenous β-carbolines in human CSF, plasma, and brain tissue. LC-MS/MS method development for β-carboline quantification (norharman, harman, β-CCM) in biological matrices. Biosynthesis pathway studies via Pictet-Spengler condensation of indoleamines with aldehydes/α-keto acids.

Frequently Asked Questions

β-Carboline alkaloids are a class of indole alkaloids based on the 9H-pyrido[3,4-b]indole (β-carboline) tricyclic scaffold — one of the most privileged structures in medicinal chemistry, found in over 100 naturally occurring alkaloids including harmine, harmaline, harmalol (from Peganum harmala), and β-carboline-3-carboxylic acid (endogenously present in human brain and CSF at nanomolar concentrations). The β-carboline scaffold is a privileged pharmacophore because it simultaneously engages multiple CNS targets: monoamine oxidase (MAO-A/MAO-B), GABA-A benzodiazepine receptors, serotonin receptors (5-HT2A/5-HT2C), imidazoline I2 receptors, cyclin-dependent kinases (CDKs), and DYRK1A kinase. The 6-hydroxy derivative introduces four transformative advantages over unsubstituted β-carboline: (1) a hydrogen bond donor/acceptor at the 6-OH position that forms directional H-bonds with MAO active-site tyrosine residues (Tyr407/Tyr444 in MAO-A) and benzodiazepine receptor pocket residues, contributing 2-5 kcal/mol additional binding energy and improving IC50 values by 3- to 10-fold; (2) a phenolic-OH handle for prodrug derivatization (ester, phosphate, carbamate, sulfamate prodrugs) and metabolic Phase II conjugation (glucuronidation via UGT1A1/UGT1A9, sulfation via SULT1A1/SULT1A3), providing a predictable clearance pathway for in vivo studies; (3) fluorescence enhancement — the 6-OH oxygen lone-pair orbital extends the indole conjugation system, resulting in a bathochromic shift (emission ~420-460 nm vs ~400 nm for parent), increased molar absorptivity, and 2- to 5-fold higher quantum yield, enabling label-free cellular imaging and binding assays; (4) synthetic versatility — the phenolic OH supports etherification, esterification, carbamate formation, and click chemistry tethering, converting the β-carboline core into a modular scaffold for SAR exploration and combinatorial library synthesis. The 6-hydroxy derivative retains the core β-carboline pharmacology (MAO inhibition, GABA-A receptor inverse agonism) while providing enhanced molecular recognition, fluorescent reporting, and synthetic tractability — three tools in one molecule.

β-Carbolines interact with the benzodiazepine binding site of GABA-A receptors — an allosteric site located at the interface of the α and γ subunits (α+/γ- interface) of the pentameric GABA-A chloride channel. Unlike classical benzodiazepines such as diazepam and flunitrazepam which act as positive allosteric modulators (PAMs) — enhancing GABA-elicited chloride currents to produce anxiolytic, anticonvulsant, sedative, and muscle-relaxant effects — many endogenous β-carbolines function as negative allosteric modulators (NAMs) or inverse agonists at this site. β-CCM (β-carboline-3-carboxylate methyl ester), the prototypical β-carboline inverse agonist, binds the benzodiazepine site with high affinity and reduces GABA-A channel open probability, producing effects that are the pharmacological opposite of benzodiazepines: anxiogenic (anxiety-inducing), convulsant/proconvulsant (lowering seizure threshold), and promnestic (enhancing learning and memory). Norharman (β-carboline) and harman (1-methyl-β-carboline) — endogenous β-carbolines found in human CSF and plasma — bind the same site with moderate affinity (Ki values in the nanomolar to low micromolar range) and exhibit a spectrum of efficacy from neutral antagonist (blocking both PAMs and NAMs without intrinsic activity) to partial inverse agonist, depending on GABA-A receptor subunit composition: α1β2γ2 receptors mediate sedation and anticonvulsant effects, α2β2γ2 and α3β2γ2 receptors mediate anxiolysis, and α5β2γ2 receptors (highly expressed in hippocampus) mediate cognitive effects. This subtype-dependent pharmacology is critical for drug discovery — the goal is to develop β-carboline-based compounds that are inverse agonists at α5-containing receptors (cognitive enhancement without anxiogenic or convulsant side effects) or neutral antagonists at α1-containing receptors (reversing benzodiazepine sedation without intrinsic activity). The 6-hydroxy substitution modulates binding affinity and efficacy through hydrogen bonding with receptor pocket residues — computational docking studies suggest the 6-OH hydrogen-bonds to Ser204/Thr206 (α-subunit) or homologous residues, analogous to the 4′-Cl in diazepam or the 3′-F in flunitrazepam. This makes the 6-hydroxycarboline scaffold an ideal starting point for designing subtype-selective GABA-A benzodiazepine site ligands with tailored efficacy profiles.

The β-carboline scaffold is the core pharmacophore of the harmala alkaloids — harmine, harmaline, and harmalol — which are among the most potent naturally occurring reversible and selective monoamine oxidase A (MAO-A) inhibitors known (harmine IC50 ~0.002 μM for MAO-A, with ~25,000-fold selectivity over MAO-B). MAO-A inhibition increases synaptic serotonin, norepinephrine, and dopamine levels, and has been investigated for depression, anxiety disorders, and as an adjunct in Parkinson’s disease (where MAO-B inhibition is the established therapy but dual MAO-A/B inhibition with neuroprotection may provide additional benefit). The β-carboline scaffold also demonstrates multi-mechanism neuroprotective activity: (1) Attenuation of oxidative stress — the indole nitrogen and extended aromatic system act as electron donors for direct radical scavenging (DPPH, ABTS, ORAC activity), and the β-carboline scaffold upregulates the Nrf2/ARE pathway, increasing expression of heme oxygenase-1 (HO-1), NAD(P)H quinone oxidoreductase 1 (NQO1), and superoxide dismutase (SOD); (2) MAO inhibition — reducing H2O2 production from dopamine oxidative deamination, a major source of mitochondrial oxidative stress in dopaminergic neurons of the substantia nigra pars compacta — the region that degenerates in Parkinson’s disease; (3) Mitochondrial protection — modulation of the mitochondrial permeability transition pore (mPTP) via cyclophilin D interaction, preserving mitochondrial membrane potential (ΔΨm) and reducing cytochrome c release and downstream caspase-3 activation; (4) Iron chelation — the pyrido nitrogen (N-2) and the 6-OH phenolic oxygen in 6-hydroxycarboline form a bidentate metal-chelating motif (analogous to the catechol moiety in dopamine and the 8-OH in 8-hydroxyquinoline-based chelators), which is relevant to Parkinson’s disease where iron accumulation in the substantia nigra is a pathognomonic feature and contributor to Fenton-chemistry-driven oxidative damage; (5) Anti-excitotoxic activity — GABA-A receptor modulation reduces glutamatergic excitotoxicity, a common final pathway in stroke, traumatic brain injury, and chronic neurodegeneration. Current research directions include: β-carboline-based MAO-B inhibitors for Parkinson’s disease monotherapy, dual MAO-A/MAO-B inhibitors with neuroprotective adjunct activity (reducing both dopamine metabolism and oxidative stress), β-carboline-Donepezil hybrids for Alzheimer’s disease (combining acetylcholinesterase inhibition with MAO inhibition and neuroprotection), and β-carboline-chalcone hybrids with enhanced blood-brain barrier penetration and additive Nrf2 activation. The 6-hydroxy substitution enhances radical-scavenging capacity and iron-chelation while retaining the core MAO inhibitory pharmacophore, making 6-hydroxycarboline an ideal starting point for multi-target neuroprotective agent development.

β-Carboline alkaloids are widely distributed in nature across diverse plant families, fungi, marine organisms, and mammals (including humans as endogenous metabolites). Key natural sources include: (1) Peganum harmala (Syrian rue / harmel / espand, Zygophyllaceae) — the richest known natural source, containing 3-4% total harmala alkaloids by dry weight in seeds, primarily harmine (~1.5-2.5%), harmaline (~0.5-1.5%), harmalol (~0.1-0.5%), and harmane (~0.05-0.1%), with a 2500+ year ethnopharmacological history across Middle Eastern, Central Asian, North African, and South American traditional medicine systems as an antiseptic, emmenagogue, abortifacient, psychoactive ritual substance, and MAO inhibitor; (2) Banisteriopsis caapi (ayahuasca vine / yage, Malpighiaceae) — the β-carboline-containing component of the Amazonian ayahuasca brew, where harmine, harmaline, and tetrahydroharmine (THH) at total concentrations of 0.05-1.0% dry weight act as reversible MAO-A inhibitors, preventing first-pass metabolism of N,N-dimethyltryptamine (DMT) from Psychotria viridis (chacruna) leaves and thereby enabling its oral psychoactivity — one of the most elegant examples of natural product synergy in ethnopharmacology; (3) Passiflora incarnata (passionflower, Passifloraceae) — contains harmane, harmine, harmaline, and related β-carbolines at lower concentrations (~0.01-0.1% total), used traditionally and in modern phytotherapy as a mild sedative, anxiolytic, and sleep aid (the β-carbolines are believed to be the active principles, acting through GABA-A receptor modulation and MAO inhibition); (4) Nicotiana tabacum (tobacco, Solanaceae) — norharman and harman are formed endogenously during tobacco curing and combustion via Pictet-Spengler condensation of tryptamine with formaldehyde (from combustion) or acetaldehyde, and are present in cigarette mainstream smoke at concentrations (norharman 900-4000 ng/cigarette, harman 300-1700 ng/cigarette) sufficient to produce pharmacologically relevant MAO-A and MAO-B inhibition in the human brain (as demonstrated by PET imaging studies showing 30-40% reduction in brain MAO-A and MAO-B binding in chronic smokers) — contributing to tobacco’s addictive and mood-modulating properties and the lower Parkinson’s disease incidence observed in smokers; (5) Human brain, CSF, and plasma — β-CCM (β-carboline-3-carboxylate methyl ester), norharman, harman, and related β-carbolines are endogenously synthesized in mammals via the Pictet-Spengler condensation of indoleamines (tryptamine, 5-hydroxytryptamine/serotonin) with aldehydes (formaldehyde from one-carbon metabolism, acetaldehyde from ethanol metabolism) or α-keto acids (pyruvate, α-ketoglutarate), and have been quantified in human CSF (~0.1-5 nM norharman, ~0.05-2 nM harman), plasma (~0.5-10 nM norharman), and postmortem brain tissue — concentrations at which they may function as endogenous modulators of GABA-A receptors and MAO. Additional sources include: Tribulus terrestris (Zygophyllaceae) — harmane and norharman derivatives; Grewia bicolor (Malvaceae); Arisarum vulgare (Araceae); various Apocynaceae species (Alstonia, Rauvolfia, Tabernaemontana); Rubiaceae species (Psychotria, Uncaria — cat’s claw); marine sponges and tunicates (eudistomins, manzamines, and fascaplysin — complex polycyclic β-carbolines with potent antitumor and antimicrobial activities); and fungal sources (Penicillium and Aspergillus species produce β-carboline mycotoxins). This extraordinary phylogenetic distribution — from plants to fungi to marine organisms to mammals — underscores the β-carboline scaffold’s fundamental biological importance and chemical versatility.

Every shipment of 6-Hydroxycarboline Derivative includes comprehensive documentation: COA (Certificate of Analysis) — HPLC purity (≥98.0% Research Grade or ≥95.0% Standard Grade at 254 nm, with full integration table showing retenton time, peak area, area percent, and resolution), appearance confirmation, loss on drying, residue on ignition, heavy metals (total ≤20 ppm), residual solvent profile (ICH Q3C Class 3 compliance), and storage/handling recommendations; MSDS/SDS (Material Safety Data Sheet) — comprehensive safety document covering hazard identification (GHS classification), first-aid measures, fire-fighting measures, accidental release measures, handling and storage, exposure controls/personal protection (recommended PPE: nitrile gloves, safety glasses, lab coat, fume hood), physical and chemical properties, stability and reactivity, toxicological information, ecological information, disposal considerations, transport information, and regulatory information; HPLC Chromatogram — signed and dated, with UV detection at 254 nm, showing retention time, peak area, area percent, theoretical plates, tailing factor, and resolution from nearest impurity; 1H-NMR Spectrum (400 MHz) — DMSO-d6, with chemical shift assignments for all aromatic protons, NH, and OH signals, integration values, and coupling constants (Research Grade only); HRMS Report — high-resolution mass spectrum (ESI+) with molecular ion confirmation [M+H]+ = 185.0715, mass accuracy ≤3 ppm, and isotope pattern matching (Research Grade only); Residual Solvent Analysis — GC headspace analysis per ICH Q3C guidelines (Class 2 and Class 3 solvents); Heavy Metals Report — ICP-MS analysis (Pb, As, Hg, Cd, Cr, Ni, Cu); TSE/BSE-Free Statement; ISO 9001:2015 Certificate; Complete Lot Traceability from raw material receipt through synthesis, purification, analysis, and packaging — every lot traceable to synthetic batch records and analytical data files. Research Use Only (RUO) — this product is intended for laboratory research purposes only and is not for human diagnostic or therapeutic use. MOQ: 100 mg Research Grade, 1 g Standard Grade. Free sample (5-20 mg) available for qualified academic and industry researchers for preliminary evaluation. Custom synthesis of modified β-carboline scaffolds (different substitution patterns, N-alkylation, C-1/C-3 functional group variation) and scale-up from gram to kilogram quantities supported. All documents provided in English. Lead time: 1-5 business days for in-stock material from gram to 100 g quantities; custom synthesis timelines quoted on a project basis.