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High-performance liquid chromatography (revision 9)

Old revision·03:21, 15 Sep 2024·Peptide_Pete

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High-performance liquid chromatography
048121620main peak 12.4 min · 98.7 area%mAUminutes
Detector response against time; peak area is proportional to the quantity of the eluting species.
AbbreviationHPLC
Separates byDifferential partition between stationary and mobile phases
Usual detector for peptidesUV absorbance at 214 nm
Key parameters
ColumnChemistry, particle size, length, internal diameter
Mobile phaseAqueous and organic components, modifier
GradientComposition change over time
Flow rateTypically 0.2–1.5 mL/min
Analytical method infobox · conventions

High-performance liquid chromatography (HPLC) separates the components of a mixture by passing a solution through a column packed with fine particles. Components that interact more strongly with the packing move more slowly and emerge later; the detector records what emerges against time, producing a chromatogram.[1]

For peptides the dominant mode is reverse phase, in which the stationary phase is hydrophobic and the mobile phase is a water–acetonitrile mixture whose organic content is increased during the run. Detection is usually by ultraviolet absorbance at 214 nm, where the amide bond absorbs, so response is broadly proportional to the number of peptide bonds rather than to any particular side chain.[2]

Almost every number on a peptide certificate of analysis originates here. Understanding what the technique measures — and what it cannot measure — is therefore the single most useful piece of analytical background for reading such a document.[2]

How the separation works

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A sample is injected into a stream of mobile phase and carried onto the column. Each component partitions continuously between the mobile phase, in which it moves, and the stationary phase, in which it does not. The fraction of time spent in each determines how long it takes to traverse the column — its retention time.[1]

In reverse-phase separation the stationary phase is a hydrocarbon chain, commonly C18, bonded to silica particles. Hydrophobic molecules are retained more strongly. Increasing the proportion of organic solvent in the mobile phase weakens that retention, so a gradient of increasing organic content elutes components in approximate order of hydrophobicity.

Resolution between two peaks depends on their retention difference, on peak width, and on the efficiency of the column. Efficiency improves with smaller particles and with longer columns, at the cost of higher back-pressure — the constraint that drove the development of sub-2-micron particles and the instruments capable of running them.[3]

References

  1. ^ a b United States Pharmacopeia, General Chapter <621>, Chromatography.
  2. ^ a b United States Pharmacopeia, General Chapter <1503>, Quality Attributes of Synthetic Peptide Drug Substances.
  3. ^ Snyder LR, Kirkland JJ, Dolan JW. Introduction to Modern Liquid Chromatography, 3rd edition (2010).