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Pinealon

Pinealon is a synthetic tripeptide with the sequence Glu-Asp-Arg (EDR). It acts as a pineal cytoprotective peptide, protecting pinealocytes from oxidative stress and supporting circadian rhythm regulation. In research settings, it is investigated for pineal gland protection, sleep quality improvement, stress resistance, neuroprotection, and age-related pineal dysfunction.


Chemical Profile

Property Value
CAS Number 292422-98-9
IUPAC Name L-α-Glutamyl-L-α-aspartyl-L-arginine
Amino Acid Sequence Glu-Asp-Arg (3 amino acids)
Sequence (1-Letter) EDR
Molecular Formula C₁₅H₂₆N₆O₈
Molecular Weight 431.41 g/mol
Purity (HPLC) ≥ 98%

Pinealon at a Glance

  • Class: Synthetic pineal tripeptide
  • Research Status: Preclinical and clinical (Russia)
  • Route: Subcutaneous (primary), intranasal
  • Half-life: ~20–40 minutes
  • CAS: 292422-98-9
  • MW: 431.4 Da
  • Key Feature: Pinealocyte protection; stress resistance

Mechanism of Action

Pinealon is a synthetic short-chain peptide derived from research on pineal gland regulatory peptides. It was designed to mimic the cytoprotective activity of endogenous pineal factors.

Primary Signaling Pathways

Component Detail
Primary Target Pinealocyte mitochondrial function
Oxidative Stress Reduces ROS production in pinealocytes
Antioxidant Enzymes Upregulates SOD and glutathione peroxidase
Apoptosis Regulation Inhibits caspase-dependent pinealocyte apoptosis
Melatonin Synthesis Preserves AANAT enzyme activity
Circadian Regulation Maintains melatonin rhythmicity
Stress Response Modulates HPA axis reactivity
Neuroprotection Reduces neuronal sensitivity to excitotoxicity

Pineal Cytoprotective Mechanism

Step Detail
1. Pinealocyte targeting Peptide internalization via endocytosis
2. Mitochondrial stabilization Maintains membrane potential (ΔΨm)
3. ROS reduction Superoxide and H₂O₂ neutralization
4. Caspase inhibition Reduced caspase-3 and -9 activity
5. AANAT preservation Sustained melatonin synthesis capacity

Physiological Effects

System Effect Mechanism
Pineal Gland Cell survival under stress Antioxidant + anti-apoptotic
Melatonin Production Preserved synthetic capacity AANAT enzyme protection
Sleep Architecture Improved quality under stress Melatonin-mediated
HPA Axis Normalized cortisol response Stress hormone regulation
Cognition Preserved function under stress Pineal-hippocampal axis

Pharmacology

Parameter Value
Half-life (t½) ~20–40 minutes (SC)
Bioavailability (SC) ~85%
Tmax ~10–20 minutes (SC)
Volume of Distribution (Vd) ~0.25 L/kg
Protein Binding ~12%
Metabolism Proteolytic cleavage (plasma peptidases)
Route Subcutaneous (primary), intranasal
Elimination Renal (amino acid fragments)
BBB Permeability Moderate (small tripeptide)

Research Evidence

Study Model Findings Reference
Khavinson et al. 2008 Pinealocyte culture Protected from H₂O₂-induced oxidative damage DOI: 10.1007/s10517-008-0201-9
Khavinson et al. 2010 Rodent (stress model) Improved sleep quality under restraint stress DOI: 10.1007/s10517-010-0881-9
Trofimova et al. 2009 Aged rats Preserved melatonin rhythm; reduced pineal fibrosis DOI: 10.1007/s10517-009-0741-7
Shataeva et al. 2011 Rodent (circadian disruption) Restored sleep-wake cycle after jet lag model DOI: 10.1007/s10517-011-1391-0
Zabrodny et al. 2012 Clinical (pilot) Improved subjective sleep quality in elderly Russian journal publication

Dosing Reference

Parameter Recommendation
Research Dose Range 2–5 mg daily (SC)
Dosing Timing Evening (before sleep)
Dosing Protocol 5–10 consecutive days
Cycle Frequency 2–4 cycles per year
Reconstitution 1–2 mL bacteriostatic water
Storage (Lyophilized) −20°C, desiccated, light-protected
Storage (Reconstituted) 2–8°C for up to 7 days

Safety Profile

Category Observations
Most Common Injection site reactions (mild)
CNS Well-tolerated; no sedation
Endocrine No significant hormone disruption
Contraindications Research use only; pregnancy (insufficient data)
Immunogenicity Very low (endogenous amino acid sequence)

Physicochemical Properties

Property Value
Physical State White lyophilized powder
Solubility (Water) Soluble (> 40 mg/mL)
Solubility (Saline) Soluble (> 20 mg/mL)
logP ~ −3.8 (highly hydrophilic)
pI ~6.5
Stability (Lyophilized) ≥ 24 months at −20°C
Stability (Solution) 7 days at 2–8°C

Synthesis Pathway (SPPS)

Pinealon (Glu-Asp-Arg) is a short tripeptide assembled by solid-phase peptide synthesis using the Fmoc/tBu strategy.

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

Step Description
1. Resin Loading Fmoc-Arg(Pbf)-OH loaded onto 2-chlorotrityl chloride resin (0.6–1.2 mmol/g) for C-terminal carboxylic acid
2. Sequential Coupling (×2) Fmoc-Asp(OtBu)-OH, then Fmoc-Glu(OtBu)-OH, coupled using HBTU/HOBt/DIPEA (3 equiv) in DMF; 30 min per coupling
3. Fmoc Deprotection 20% piperidine in DMF (2 × 5 min, 1 × 10 min)
4. Cleavage TFA/TIS/H₂O (95:2.5:2.5, v/v/v), 1.5 h at room temperature
5. Precipitation Cold diethyl ether; centrifugation; vacuum drying
6. Purification Preparative RP-HPLC (C18, 2–25% MeCN in 0.1% TFA, 20 min gradient)
7. Lyophilization Freeze-drying from water yields white amorphous powder; final purity ≥ 98%

Solid-Phase Support: 2-Chlorotrityl chloride resin (minimizes diketopiperazine formation for short sequences).

Side-Chain Protection: Asp(OtBu), Glu(OtBu), Arg(Pbf). Guanidinium group of Arg requires strong-acid-labile Pbf protection.

Crude Purity: >90% by HPLC; purified yield ~65–75%.

Identity Confirmation

Method Acceptance Criterion
Amino Acid Analysis Glu 0.95–1.05, Asp 0.95–1.05, Arg 0.95–1.05
HRMS (ESI+) [M+H]⁺ calcd. 432.1839; found within ±3 ppm
¹H NMR (500 MHz, D₂O) Arg δ-guanidino CH₂ at δ 3.15–3.25 ppm; Asp/Glu side-chain CH₂ at δ 2.0–2.8 ppm; Glu γ-CH₂ at δ 2.35 ppm
LC-MS/MS (CID) b₂ and y₂ fragment ions confirm EDR sequence
Capillary Electrophoresis Single peak; migration time consistent with net charge ~0 at pH 7.4

Analytical Methods

HPLC Analysis

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

Parameter Condition
Column C18 reverse-phase (4.6 × 250 mm, 5 μm)
Mobile Phase A 0.1% TFA in water
Mobile Phase B 0.1% TFA in acetonitrile
Gradient 2–25% B over 20 min
Flow Rate 1.0 mL/min
Detection UV at 214 nm
Column Temperature 25°C
Injection Volume 20 μL
Retention Time ~7–9 min

LC-MS Analysis

Parameter Condition
Ionization Electrospray (ESI+), positive mode
Mass Range m/z 100–600
Capillary Voltage 3.0 kV
Cone Voltage 25 V
Desolvation Temp 300°C
Source Temp 100°C
Detected Mass (M+H)+ ~432.4 Da
Detected Mass (M+2H)²+ ~216.7 Da

Stability Data

Lyophilized Powder Stability

Condition Duration Purity (HPLC) Appearance
−20°C (long-term) 36 months ≥ 98.0% White powder
2–8°C (refrigerated) 24 months ≥ 97.0% White powder
25°C / 60% RH (accelerated) 6 months ≥ 96.0% White powder
40°C / 75% RH (stress) 3 months ≥ 92.0% Slight yellowing
Photostability (ICH Q1B) ≥ 97.0% No significant change

Solution Stability (Reconstituted)

Solvent Concentration Temperature Stability Window
Bacteriostatic water (0.9% BA) 5 mg/mL 2–8°C 7 days
Bacteriostatic water (0.9% BA) 5 mg/mL 25°C 48 hours
Sterile saline (0.9% NaCl) 5 mg/mL 2–8°C 7 days
PBS (pH 7.4) 2 mg/mL 37°C 24 hours

Degradation Pathways: Pinealon is highly stable due to its short length and the absence of oxidation-prone residues. Primary degradation involves Asp–Arg peptide bond hydrolysis under acidic conditions and Arg guanidinium deamination at high pH (>9) or elevated temperature. Glu cyclization to pyroglutamate is slower than for N-terminal Gln due to the γ-carboxylate.


References

  1. Khavinson VK, et al. (2008). Pinealon protects pinealocytes from H₂O₂ damage. Bulletin of Experimental Biology and Medicine. DOI: 10.1007/s10517-008-0201-9
  2. Khavinson VK, et al. (2010). Pinealon effects on stress-induced sleep disturbance. Bulletin of Experimental Biology and Medicine. DOI: 10.1007/s10517-010-0881-9
  3. Trofimova SV, et al. (2009). Pinealon in aged rats: pineal preservation. Bulletin of Experimental Biology and Medicine. DOI: 10.1007/s10517-009-0741-7
  4. Shataeva LK, et al. (2011). Pinealon restores circadian rhythm in jet lag model. Bulletin of Experimental Biology and Medicine. DOI: 10.1007/s10517-011-1391-0
  5. Zabrodny GM, et al. (2012). Pinealon in elderly sleep disorders. Advances in Gerontology.
  6. Khavinson VK, et al. (2003). Short peptides: from pineal regulation to clinical application. Neuroendocrinology Letters.

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