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Purification

TL;DR

Preparative HPLC is the standard method for peptide purification to ≥98% purity. Method development focuses on gradient selection, column choice, and fraction screening by analytical HPLC.

Why Peptides Need Purification

Crude peptide from SPPS typically contains: - Target peptide (60–85%) - Deletion sequences (missing one or more amino acids) - Truncated sequences (incomplete synthesis) - Scavenger residues from cleavage - Salts and organic impurities


Preparative HPLC Method

Column Selection

Parameter Research Scale Process Scale
Column ID 10–30 mm 50–200 mm
Particle size 5–10 μm 10–30 μm
Stationary phase C18 (most common), C8, C4 C18
Length 150–250 mm 250–300 mm

Mobile Phase

Phase Typical Composition
A (aqueous) 0.05–0.1% TFA in water
B (organic) 0.05–0.1% TFA in acetonitrile
Alternative A 0.1% formic acid or 20 mM NH₄HCO₃
Alternative B Methanol or isopropanol

Gradient Profile (Typical)

Time %B Event
0–5 min 5–10% Equilibration/loading
5–30 min 10–50% Linear gradient
30–35 min 50–95% Column wash
35–45 min 95–5% Re-equilibration

Purification Process

flowchart LR
    A[Crude Peptide] --> B[Dissolve in<br/>Mobile Phase A];
    B --> C[Filter<br/>0.45 μm];
    C --> D[Inject onto<br/>Prep Column];
    D --> E[Gradient Elution];
    E --> F[UV Detection<br/>214/254 nm];
    F --> G[Fraction Collection];
    G --> H[Analytical QC<br/>of Fractions];
    H --> I{>98% Purity?};
    I -->|Yes| J[Pool & Lyophilize];
    I -->|No| K[Re-purify or Discard];

Key Parameters

Loading Capacity

Column Size Maximum Load (crude)
10 mm ID 5–20 mg
20 mm ID 20–100 mg
30 mm ID 100–500 mg
50 mm ID 0.5–2 g
100 mm ID 2–10 g

Detection Wavelengths

  • 214 nm: Peptide bond absorption (most sensitive)
  • 254 nm: Aromatic residues (Phe, Tyr, Trp)
  • 280 nm: Tyr and Trp

Flow Rate

Column ID Flow Rate
10 mm 3–5 mL/min
20 mm 10–20 mL/min
30 mm 20–40 mL/min
50 mm 60–120 mL/min

Common Challenges

Issue Cause Solution
Poor resolution Shallow gradient too fast Extend gradient or adjust slope
Peak tailing Column overload Reduce load or use larger column
Multiple peaks Deletion sequences Optimize SPPS synthesis
Low recovery Peptide precipitation Add co-solvent or adjust pH

Alternative Purification Methods

Method Use Case
Ion exchange Charged peptides, removal of TFA counter-ion
Size exclusion Desalting, buffer exchange
Flash C18 Fast initial purification
Reversed-phase Industry standard for most peptides
  • Preparative HPLC for Peptide Purification — Review the section above for key parameters, methods, and quality criteria.
  • Why Peptides Need Purification — See the section for detailed parameters and specifications.
  • Preparative HPLC Method — Review the section above for key parameters, methods, and quality criteria.
  • Purification Process — Review the section above for key parameters, methods, and quality criteria.

🔗 Related: SPPS Process | Preparative HPLC System | HPLC Analysis | LC-MS Testing | Peptide Quality Control Guide


Key Takeaways

  • Why Peptides Need Purification — See the section above for detailed parameters and specifications.
  • Preparative HPLC Method — Review the section above for key parameters, methods, and quality criteria.
  • Purification Process — Review the section above for key parameters, methods, and quality criteria.
  • Key Parameters — Review the section above for key parameters, methods, and quality criteria.