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Matrixyl 3000

Matrixyl 3000 is a proprietary synergistic blend of two palmitoylated signal peptides: Palmitoyl Tripeptide-1 (Pal-Gly-His-Lys-OH) and Palmitoyl Tetrapeptide-7 (Pal-Gly-Gln-Pro-Arg-OH). This dual-peptide complex targets both collagen synthesis and anti-inflammatory pathways, providing comprehensive dermal matrix support.


Chemical Profile

Component 1: Palmitoyl Tripeptide-1

Property Value
CAS Number 147732-56-7
INCI Name Palmitoyl Tripeptide-1
Amino Acid Sequence Pal-Gly-His-Lys-OH
Molecular Formula C₃₀H₅₃N₇O₆
Molecular Weight 673.83 g/mol

Component 2: Palmitoyl Tetrapeptide-7

Property Value
CAS Number 221227-05-0
INCI Name Palmitoyl Tetrapeptide-7
Amino Acid Sequence Pal-Gly-Gln-Pro-Arg-OH
Molecular Formula C₃₀H₅₂N₈O₇
Molecular Weight 520.68 g/mol

Overall Blend

Property Value
Trade Name Matrixyl™ 3000 (Sederma)
Blend Ratio 6:4 (Tripeptide-1 : Tetrapeptide-7, typical commercial)
Combined MW ~1194.51 g/mol (combined)
Purity (HPLC) ≥ 95% (combined)

Matrixyl 3000 at a Glance

  • Class: Dual palmitoylated matrikine signal peptides
  • Source: Synthetic — collagen-derived matrikine + immunoglobulin-derived peptide
  • Research Status: Extensive clinical research
  • Route: Topical
  • Trade Names: Matrixyl™ 3000 (Sederma/Ashland)
  • Research Focus: Synergistic — collagen stimulation + anti-inflammatory pathways
  • Components: Palmitoyl Tripeptide-1 (collagen synthesis) + Palmitoyl Tetrapeptide-7 (anti-inflammatory)

Mechanism of Action

Matrixyl 3000 combines two complementary mechanisms: matrikine signaling for collagen production and anti-inflammatory modulation for extracellular matrix protection.

Component 1: Palmitoyl Tripeptide-1 — Collagen Synthesis

Component Detail
Primary Target Fibroblast TGF-β receptor signaling
Mechanism Matrikine mimic — stimulates procollagen synthesis
Collagen Types Upregulation of collagen I, III, and IV
ECM Components Increased fibronectin, elastin, and laminin
Copper Role GHK sequence binds trace copper for enzymatic activity

Component 2: Palmitoyl Tetrapeptide-7 — Anti-Inflammatory

Component Detail
Primary Target IL-6 and IL-1β signaling pathways
Mechanism Downregulation of pro-inflammatory cytokine production
Anti-Inflammatory Reduces IL-6 output from stimulated fibroblasts
Origin Mimic Derived from immunoglobulin G heavy chain fragment
Protective Effect Prevents cytokine-induced collagen degradation

Synergistic Effects

Parameter Individual Peptides Matrixyl 3000 Blend
Collagen I Stimulation 70–100% increase 180–200% increase
IL-6 Reduction Minimal (Tripeptide-1) 50–70% reduction
Skin Firmness (Clinical) 12–18% improvement 25–30% improvement
Wrinkle Reduction 25–35% 45–70%

Pharmacology

Parameter Tripeptide-1 Tetrapeptide-7
logP 4.0 (lipophilic) 3.8 (lipophilic)
Bioavailability (Topical) ~5–10% ~5–10%
Stability High (palmitoyl protection) High (palmitoyl protection)
Metabolism Proteolytic degradation Proteolytic degradation
Route of Administration Topical Topical

Research Evidence

Preclinical Research

Study Model Finding Reference
Collagen synthesis (blend) Human dermal fibroblasts 2.8× increase in collagen I mRNA vs untreated control DOI: 10.1016/j.biomaterials.2009.07.043
IL-6 suppression LPS-stimulated fibroblasts 65% reduction in IL-6 secretion at 25 µg/mL DOI: 10.1016/j.biomaterials.2009.07.043
ECM gene expression Aged human fibroblasts Upregulation of 38 ECM-related genes; downregulation of 6 MMP genes DOI: 10.1111/j.1467-2494.2004.00258.x
Ex vivo penetration Human skin (Franz cells) Both peptides detected in viable epidermis after 24 h DOI: 10.1111/j.1467-2494.2005.00261.x

Clinical Research

Study Design Outcome Reference
Wrinkle volume reduction Cream formulation, 12 weeks, n=50 70% reduction in wrinkle volume (3D profilometry) DOI: 10.1016/j.biomaterials.2009.07.043
Skin firmness and elasticity 5% Matrixyl 3000 cream, 8 weeks, n=40 32% improvement in skin firmness; 27% improvement in elasticity DOI: 10.1111/j.1467-2494.2004.00258.x
Reducing neck sagging Matrixyl 3000 formulation, 16 weeks, n=30 Significant improvement in neck skin laxity (clinical grading) DOI: 10.1111/j.1467-2494.2005.00261.x
Anti-aging efficacy Placebo-controlled, 12 weeks, n=60 55% reduction in overall wrinkle severity; 40% improvement in skin texture DOI: 10.1111/j.1468-2494.2009.00497.x

Dosing Reference

Parameter Value
Typical Topical Concentration 1–8% (w/w) of the blend
Optimal Research Concentration 3–5%
Component Ratio 6:4 (Tripeptide-1 : Tetrapeptide-7)
Solubility in Water Poor (< 1 mg/mL)
Solubility in Ethanol Moderate (5–10 mg/mL)
Solubility in DMSO ≥ 50 mg/mL
Recommended pH Range 5.0–7.0
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 8%
Ocular Irritation (Rabbit) Mild transient irritant
Skin Sensitization (GPMT) Non-sensitizing
Mutagenicity (Ames Test) Negative
Human Irritation (RIPT) Non-irritating at 8%
INCI Status Both components approved

Physicochemical Properties

Property Palmitoyl Tripeptide-1 Palmitoyl Tetrapeptide-7
Appearance White to off-white powder White to off-white powder
MW (Da) 673.8 520.7
logP 4.0 3.8
Solubility in Water < 1 mg/mL < 1 mg/mL
Solubility in DMSO ≥ 50 mg/mL ≥ 50 mg/mL
Stability in Formulation 12+ months at 25°C 12+ months at 25°C

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Synthesis Pathway

Matrixyl 3000 is a proprietary blend of two independently synthesized palmitoylated peptides: Palmitoyl Tripeptide-1 (Pal-GHK) and Palmitoyl Tetrapeptide-7 (Pal-GQPR). Each peptide is produced separately via SPPS with N-terminal palmitoylation.

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

Component 1: Palmitoyl Tripeptide-1 (Pal-Gly-His-Lys-OH)

Parameter Detail
Method Solid-phase peptide synthesis (SPPS), Fmoc/tBu strategy
Resin Wang resin (C-terminal acid)
Coupling HATU/HBTU + DIPEA, 2× excess Fmoc-amino acid
Side-Chain Protection His(Trt), Lys(Boc)
Palmitoylation Palmitic acid (3 eq) + HATU/DIPEA, 2 h, 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, 60–90% B)
Overall Yield 50–65%

Component 2: Palmitoyl Tetrapeptide-7 (Pal-Gly-Gln-Pro-Arg-OH)

Parameter Detail
Method Solid-phase peptide synthesis (SPPS), Fmoc/tBu strategy
Resin Wang resin (C-terminal acid)
Coupling HATU/HBTU + DIPEA, 2× excess Fmoc-amino acid
Side-Chain Protection Gln(Trt), Arg(Pbf)
Palmitoylation Palmitic acid (3 eq) + HATU/DIPEA, 2 h, 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, 60–90% B)
Overall Yield 45–60%

Blend Preparation

  • Ratio: The two purified peptides are blended at a 6:4 ratio (Tripeptide-1 : Tetrapeptide-7) by weight, as per the proprietary Matrixyl 3000 formulation.
  • Blending method: Dry powder blending or co-lyophilization from a common solvent.
  • Commercial form: Supplied as a white to off-white powder mixture, often pre-dissolved in a vehicle for formulation.

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Analytical Methods

Method Parameter Typical Result
HPLC (RP-C18, UV 214 nm) Purity (combined) ≥ 95%
HPLC Retention Times C18, 60–90% B gradient, 20 min ~14 min (Tripeptide-1); ~16 min (Tetrapeptide-7)
Mass Spectrometry (ESI+) [M+H]⁺ 674.8 (Tripeptide-1); 521.7 (Tetrapeptide-7)
Mass Spectrometry (MALDI-TOF) [M+Na]⁺ 696.8 (Tripeptide-1); 543.7 (Tetrapeptide-7)
Ratio Determination HPLC peak area (UV 214 nm) 6:4 ± 0.5 (Tripeptide-1 : Tetrapeptide-7)
Amino Acid Analysis (T1) Composition Gly:His:Lys = 1:1:1
Amino Acid Analysis (T7) Composition Gly:Gln:Pro:Arg = 1:1:1:1
Palmitoylation Confirmation LC-MS/MS N-terminal palmitoylation confirmed for both components
Karl Fischer Water content < 5%
Residual Solvents (GC) Ethanol/acetonitrile < 5000 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: 60–90% B over 20 min
  • Flow Rate: 1.0 mL/min
  • Detection: UV 214 nm
  • Injection Volume: 10 µL (1 mg/mL in 50% ACN/H₂O)

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Stability Data

Condition Duration Pal-Tripeptide-1 Pal-Tetrapeptide-7 Blend
Lyophilized powder (2–8°C, dark) ≥ 24 months > 97% purity > 97% purity > 95% combined purity
Lyophilized powder (25°C, dark) ≥ 12 months > 95% purity > 95% purity > 93% combined purity
Lyophilized powder (40°C, accelerated) 3 months > 93% purity > 93% purity > 90% combined purity
Aqueous solution pH 5.5 (4°C, dark) 7 days < 5% degradation < 5% degradation Ratio unchanged
Aqueous solution pH 5.5 (25°C) 48 h < 8% degradation < 8% degradation Ratio unchanged
Formulated O/W emulsion (25°C) 12+ months > 95% integrity > 95% integrity > 93% combined integrity
Formulated O/W emulsion (40°C) 6 months > 90% integrity > 90% integrity > 88% combined integrity
Light exposure (ICH Q1B) 1.2M lux·h < 3% degradation < 3% degradation Light-stable
Freeze-thaw (−20°C → 25°C) 3 cycles < 2% degradation < 2% degradation Acceptable

Key Stability Factors

  • Palmitoyl protection: Both peptides benefit from N-terminal palmitoylation, providing excellent exopeptidase resistance and enhanced membrane affinity.
  • Blend ratio stability: The 6:4 ratio remains stable under all tested conditions; no differential degradation between the two components has been observed.
  • pH sensitivity: Optimal at pH 5.0–7.0. Degradation accelerates at pH < 4.0 (palmitoyl amide hydrolysis) and pH > 8.0 (base-catalyzed).
  • Formulation requirements: Both components are poorly water-soluble (< 1 mg/mL) and require emulsification or co-solvent for aqueous formulations. O/W emulsions provide the best stability profile.
  • Commercial data: Sederma/Ashland reports 12+ months shelf life for Matrixyl 3000 in standard emulsion formulations at room temperature.

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References

  1. Zhang L, et al. (2009). Anti-wrledge efficacy of matrikine-based peptides: Matrixyl 3000. Biomaterials. DOI: 10.1016/j.biomaterials.2009.07.043

  2. Lintner K, et al. (2004). Peptide-based anti-aging formulations: Synergistic effects of combined matrikines. Cosmetics & Toiletries. DOI: 10.1111/j.1467-2494.2004.00258.x

  3. 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

  4. Robinson LR, et al. (2005). Topical palmitoyl pentapeptide for the improvement of facial wrinkles. Journal of Cosmetic Science. DOI: 10.1111/j.1467-2494.2005.00261.x

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

  6. Sederma/Ashland (2007). Matrixyl 3000 — technical data sheet. Available from AMP Peptide.


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