PeptidePedia The community reference

Liquid chromatography-mass spectrometry (revision 12)

Old revision·23:15, 26 Mar 2025·LabRangeLindy

This is an old revision of this page, as it stood at 23:15, 26 Mar 2025, saved by LabRangeLindy with the summary add the reference standard and its traceability. It may differ substantially from the current revision, and any error it contains may since have been corrected.
Liquid chromatography-mass spectrometryHyphenated technique
AbbreviationLC-MS
CombinesChromatographic separation and mass detection
InterfaceUsually electrospray
AddsIdentity to a retention-based separation
Analytical method infobox · conventions

Liquid chromatography-mass spectrometry couples a chromatographic separation to a mass spectrometer, so that each eluting peak is characterised by both its retention time and its mass. It converts a weak identification into a strong one.[1]

The interface is almost always electrospray, which works directly from flowing solution. This compatibility is what made the technique routine, and it constrains the chromatography: mobile phases must be volatile and free of non-volatile buffers.[2]

For peptide work its principal use is identity confirmation — establishing that the peak dominating a chromatogram has the expected mass — and characterisation of impurities, since each minor peak carries a mass that often identifies what it is.[3]

What it adds over either alone

[edit]

Chromatography alone establishes that one species dominates; mass spectrometry alone establishes that a species of the expected mass is present. Together they establish that the dominant species has the expected mass, which is a materially stronger statement than either.[1]

Impurity identification is where the combination is most valuable. A deletion sequence appears as a peak of lower mass by one residue; an oxidised species by 16 Da more; an incompletely deprotected species by the mass of the retained group. See Resin cleavage and Solid-phase peptide synthesis.[3]

Tandem operation — selecting a precursor, fragmenting it, and measuring the fragments — adds sequence information and can locate a modification to a residue rather than merely detecting it.[1]

Quantification

[edit]

LC-MS is not inherently quantitative: ionisation efficiency varies by orders of magnitude between species and with what else is eluting. Quantification requires calibration against a standard of the same substance, ideally with an isotopically labelled internal standard.[1]

This is why a purity figure is normally reported from ultraviolet detection rather than from mass detection: ultraviolet response at 214 nm is roughly proportional to the number of peptide bonds and is therefore a reasonable proxy for mass across related peptides, whereas mass-spectrometric response is not.[3]

A certificate reporting purity "by LC-MS" without saying which detector produced the figure is ambiguous on this point.[4]

See also

References

  1. ^ a b c d Aebersold R, Mann M. "Mass spectrometry-based proteomics." Nature 422(6928):198–207 (2003). PMID 12634793.
  2. ^ Fenn JB, Mann M, Meng CK, Wong SF, Whitehouse CM. "Electrospray ionization for mass spectrometry of large biomolecules." Science 246(4926):64–71 (1989). PMID 2675315.
  3. ^ a b c United States Pharmacopeia, General Chapter <1503>, Quality Attributes of Synthetic Peptide Drug Substances.
  4. ^ PeptidePedia Wiki community test-report tally, 2024–2026 (self-reported; see Project:Sourcing guidelines).