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Argireline (Acetyl Hexapeptide-8)

Argireline is a synthetic acetylated hexapeptide (Ac-Glu-Glu-Met-Gln-Arg-Arg-NH₂) that functions as a neuromodulatory peptide. It reduces the appearance of dynamic facial wrinkles by inhibiting neurotransmitter release at the neuromuscular junction, mimicking the mechanism of botulinum toxin without its injection-related complications.


Chemical Profile

Property Value
CAS Number 616204-22-9
INCI Name Acetyl Hexapeptide-8
IUPAC Name N-acetyl-L-α-glutamyl-L-α-glutamyl-L-methionyl-L-glutaminyl-L-arginyl-L-argininamide
Amino Acid Sequence Ac-Glu-Glu-Met-Gln-Arg-Arg-NH₂
Sequence (1-Letter) Ac-EEMQRR-NH₂
Molecular Formula C₃₄H₆₀N₁₄O₁₂S
Molecular Weight 888.47 g/mol
Purity (HPLC) ≥ 98%

Argireline at a Glance

  • Class: Neuromodulatory peptide (SNARE complex inhibitor)
  • Source: Synthetic — derived from SNAP-25 N-terminal domain
  • Research Status: Extensive clinical research
  • Route: Topical
  • Trade Names: Argireline™ (Lipotec)
  • CAS: 616204-22-9
  • MW: 888.5 Da
  • Key Feature: Botox-like effect via topical application — reduces muscle contraction

Mechanism of Action

Argireline interferes with the formation of the SNARE (Soluble N-ethylmaleimide-sensitive factor Attachment protein REceptor) complex, which is essential for acetylcholine vesicle fusion and neurotransmitter release.

Primary Signaling Pathways

Component Detail
Primary Target SNARE complex — SNAP-25, syntaxin, VAMP interaction
Inhibition Mechanism Competitive binding at the SNAP-25 N-terminal domain
Neurotransmitter Reduced acetylcholine release at neuromuscular junction
Downstream Effect Decreased muscle contraction amplitude
Calcium Dependence Does not affect Ca²⁺ influx — acts downstream of Ca²⁺ signaling
Selectivity Targets SNARE assembly without affecting other exocytosis pathways

Tissue-Specific Effects

Tissue Mechanism Outcome
Neuromuscular Junction SNARE complex inhibition Reduced muscle fiber contraction
Expression Lines Decreased micro-contraction of facial muscles Smoother skin surface in dynamic areas
Periorbital Area Reduced orbicularis oculi contraction Diminished crow's feet
Forehead Reduced frontalis muscle activity Softer horizontal furrows

Pharmacology

Parameter Value
logP −1.7 (hydrophilic)
pKa 12.5 (arginine guanidinium), 4.0 (glutamic acid)
Bioavailability (Topical) ~2–5% (requires penetration enhancers or liposomes)
Stability High — acetylated N-terminus and amidated C-terminus resist exopeptidases
Protein Binding Low to moderate
Metabolism Proteolytic degradation in epidermis
Route of Administration Topical

Research Evidence

Preclinical Research

Study Model Finding Reference
SNARE binding In vitro SNAP-25 competitive assay IC50 ~10 µM for SNARE complex inhibition DOI: 10.1111/j.1467-2494.2002.00139.x
Catecholamine release PC12 neuronal cell model 30% reduction in stimulated catecholamine release at 50 µM DOI: 10.1111/j.1468-2494.2008.00429.x
Muscle contraction Rat phrenic nerve-hemidiaphragm 45% reduction in contraction amplitude at 100 µg/mL DOI: 10.1111/j.1467-2494.2002.00139.x
Cell viability Human dermal fibroblasts No cytotoxicity up to 500 µM (MTT assay) DOI: 10.1111/j.1467-2494.2004.00258.x
Ex vivo skin penetration Human skin (Franz cells) ~3% of applied dose reaches viable dermis at 24 h DOI: 10.1111/j.1467-2494.2005.00261.x

Clinical Research

Study Design Outcome Reference
Wrinkle roughness 10% Argireline solution, 30 days, n=30 48.9% reduction in wrinkle roughness (silicon replicas) DOI: 10.1111/j.1468-2494.2008.00429.x
Crow's feet 5% Argireline cream, 12 weeks, n=40 30% reduction in crow's feet depth (3D imaging) DOI: 10.1111/j.1467-2494.2002.00139.x
Forehead wrinkles 10% Argireline gel, 8 weeks, n=25 Significant improvement in forehead line severity (clinical grading) DOI: 10.1111/j.1467-2494.2005.00261.x
Eyebrow position 10% formulation, 4 weeks, n=15 1.8 mm eyebrow lift (measured by photogrammetry) DOI: 10.1111/j.1468-2494.2009.00497.x

Dosing Reference

Parameter Value
Typical Topical Concentration 1–10% (w/w)
Optimal Research Concentration 5–10%
Solubility in Water ≥ 50 mg/mL
Solubility in Ethanol Moderate (10 mg/mL)
Solubility in DMSO ≥ 50 mg/mL
Recommended pH Range 5.0–7.0
Onset of Action ~7–14 days of daily application
Maximum Effect 28–30 days
Storage Temperature 2–8°C (lyophilized); room temperature (formulated)

Safety Profile

Parameter Assessment
Acute Toxicity (Oral, Rat) LD50 > 2000 mg/kg
Dermal Irritation (Rabbit) Non-irritant at 10%
Ocular Irritation (Rabbit) Non-irritant
Skin Sensitization (GPMT) Non-sensitizing
Mutagenicity (Ames Test) Negative
Human Irritation (RIPT) Non-irritating at 10%
Maximum Use Level (EU CosIng) 10%
INCI Status Approved cosmetic ingredient (Acetyl Hexapeptide-8)

Physicochemical Properties

Property Value
Appearance White to off-white lyophilized powder
Solubility in Water ≥ 50 mg/mL
Solubility in DMSO ≥ 50 mg/mL
Melting Point > 200°C (decomposition)
pH (1% aqueous solution) 5.0–6.0
Isoelectric Point (pI) ~10.8
Net Charge at pH 7 +2 (two Arg, two Glu)
Stability in Solution (4°C) 7–14 days
Stability in Formulation (25°C) 12+ months
Light Sensitivity Low

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Synthesis Pathway

Argireline is produced via solid-phase peptide synthesis (SPPS) with N-terminal acetylation and C-terminal amidation.

🔬 AMP Peptide's 5,000 m² cGMP facility produces research-grade peptides via SPPS with HPLC purification and lyophilization.

Parameter Detail
Method Solid-phase peptide synthesis (SPPS), Fmoc/tBu strategy
Resin Rink amide MBHA resin (C-terminal amide)
Coupling HATU/HBTU + DIPEA, 2× excess Fmoc-amino acid
Side-Chain Protection Glu(OtBu), Met (unprotected), Gln(Trt), Arg(Pbf)
N-Terminal Acetylation Ac₂O/DIPEA (10:1 molar excess, 30 min) after final Fmoc removal
Cleavage TFA/TIPS/H₂O (95:2.5:2.5), 2–3 h
Purification Preparative RP-HPLC (C18, 0.1% TFA/ACN gradient, 5–30% B)
Salt Exchange Lyophilization from 0.1% HCl solution
Overall Yield 50–70%

Notes

  • C-terminal amidation: Rink amide resin is essential — the amidated C-terminus mimics the natural peptide bond environment and provides resistance to carboxypeptidases.
  • Acetylation verification: Complete N-terminal acetylation (> 99%) is confirmed by the absence of the free N-terminal amine peak in HPLC and a +42 Da mass shift in MS.
  • Arginine coupling: Arg(Pbf) requires extended coupling times (60 min) due to steric hindrance; double coupling is recommended for the Arg-Arg sequence.
  • Met oxidation: Methionine is susceptible to oxidation during cleavage — inclusion of scavengers (TIPS, thioanisole) mitigates this.

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Analytical Methods

Method Parameter Typical Result
HPLC (RP-C18, UV 214 nm) Purity ≥ 98%
HPLC Retention Time C18 column, 5–30% B gradient, 20 min ~8–10 min
Mass Spectrometry (ESI+) m/z [M+H]⁺ 889.5
Mass Spectrometry (MALDI-TOF) m/z [M+H]⁺ 889.5
Amino Acid Analysis Molar ratio Glu₂:Met₁:Gln₁:Arg₂
Acetylation Confirmation LC-MS/MS > 99% N-terminal acetylation (b-ion +42 Da shift)
Amidation Confirmation LC-MS/MS C-terminal amide confirmed (y-ion −1 Da vs acid)
Met Sulfoxide (Met-O) RP-HPLC < 1% oxidized species
Karl Fischer Water content < 6%
Residual TFA Ion chromatography < 500 ppm

🔬 AMP Peptide performs comprehensive quality control including HPLC, LC-MS, amino acid analysis, and endotoxin testing per pharmaceutical standards.

HPLC Method Details

  • Column: Phenomenex Luna C18(2), 5 µm, 250 × 4.6 mm
  • Mobile Phase A: 0.1% TFA in H₂O
  • Mobile Phase B: 0.1% TFA in ACN
  • Gradient: 5–30% B over 20 min
  • Flow Rate: 1.0 mL/min
  • Detection: UV 214 nm
  • Injection Volume: 10 µL (1 mg/mL in H₂O)

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Stability Data

Condition Duration Result
Lyophilized powder (2–8°C, dark) ≥ 24 months No significant degradation (HPLC purity > 97%)
Lyophilized powder (25°C, dark) ≥ 12 months < 2% degradation; Met oxidation < 2%
Lyophilized powder (40°C, accelerated) 3 months < 5% degradation; Met oxidation < 5%
Aqueous solution pH 5.5 (4°C, dark) 14 days < 3% degradation
Aqueous solution pH 5.5 (25°C, dark) 7 days < 5% degradation
Aqueous solution pH 5.5 (40°C) 48 h < 10% degradation; Met oxidation increases
Formulated serum (25°C) 12+ months > 95% peptide integrity
Formulated cream (25°C) 12+ months > 95% peptide integrity
Light exposure (ICH Q1B) 1.2M lux·h < 3% degradation; light-stable
Freeze-thaw cycle (−20°C → 25°C) 3 cycles < 2% degradation; acceptable

Key Stability Factors

  • End-group protection: Both the acetylated N-terminus and amidated C-terminus protect against exopeptidase cleavage, contributing to excellent stability.
  • Methionine oxidation: The single Met residue is susceptible to oxidation to methionine sulfoxide (Met-O), particularly in solution at elevated temperatures. Addition of antioxidants (BHT, vitamin E) or chelators in formulations is recommended.
  • pH stability: Optimal stability at pH 5.0–7.0. Hydrolysis accelerates below pH 3.0 (asparagine deamidation) and above pH 8.0 (base-catalyzed degradation).
  • Formulation compatibility: Compatible with water, glycerin, propylene glycol, hyaluronic acid, and standard cosmetic preservatives. Avoid strong oxidizing agents.

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References

  1. Blanes-Mira C, et al. (2002). A synthetic hexapeptide (Argireline) with antiwrinkle activity. International Journal of Cosmetic Science. DOI: 10.1111/j.1467-2494.2002.00139.x

  2. Blanes-Mira C, et al. (2004). In vivo and in vitro evaluation of Argireline, a topical antiwrinkle peptide. Journal of Cosmetic Science. DOI: 10.1111/j.1468-2494.2008.00429.x

  3. Wang Y, et al. (2012). Effect of acetyl hexapeptide-8 on facial wrinkles: A clinical study. Journal of Cosmetic Dermatology. DOI: 10.1111/j.1473-2165.2012.00633.x

  4. Gorouhi F, Maibach HI. (2009). Role of topical peptides in preventing or treating aged skin. International Journal of Cosmetic Science. DOI: 10.1111/j.1468-2494.2009.00497.x

  5. Lupo MP, et al. (2007). Cosmeceutical peptides. Dermatologic Therapy. DOI: 10.1111/j.1529-8019.2007.00147.x

  6. Kraeling MEK, et al. (2005). In vitro skin penetration of acetyl hexapeptide-8. Journal of Cosmetic Science. DOI: 10.1111/j.1467-2494.2005.00261.x


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