Vol. 3, No. 6 — June 2026Independent since 2024

TheCompound Journal

Reporting on incretins, compounding & the peptide supply chain

A monthly journal of record.
30 issues · 32 contributors
Not medical advice. We sell nothing.

Integration

The impurity hiding underneath the parent peak

An orthogonal method separates on a different physical principle, so that species co-eluting in the first are likely to resolve in the second. Two runs of the same method at different speeds are not orthogonal.

The reason it matters is that co-elution is the failure mode a single method cannot detect. A chromatogram showing one sharp, symmetrical peak and a purity of 99.3 per cent is consistent with a clean preparation and equally consistent with a preparation in which a related species elutes under the parent. Peak-purity assessment from a diode-array detector helps and is not conclusive. A second separation on a different principle is the practical answer, and it is cheap: the sample is already in the vial, the second run costs instrument time.

The column: particle, pore and phase

Column choice sets the ceiling on what any gradient can achieve. Three parameters dominate. Particle size governs efficiency: reducing it narrows peaks, and the shift from five-micron to sub-two-micron packings over the past two decades is the reason a modern separation can resolve in ten minutes what once took forty, at the cost of much higher operating pressure and instruments built for it. Superficially porous or core-shell particles achieve much of the same benefit at moderate pressure by shortening the diffusion path.

Pore diameter governs access. The classical hundred-ångström pore was developed for small molecules and becomes restrictive as analyte size rises; for larger peptides a phase with pores in the region of three hundred ångströms allows the molecule to enter the particle and interact with the full bonded surface rather than only the exterior. Using a narrow-pore column for a large peptide produces broad, poorly shaped peaks that are frequently attributed to the sample.

Bonded phase chemistry governs selectivity. Octadecyl silica is the default and covers most peptide work; octyl phases retain less and can help with very hydrophobic sequences; phenyl and polar-embedded phases offer genuinely different selectivity and are therefore candidates for an orthogonal second method. Column dimensions matter too: at constant particle size a longer column gives more resolution and more pressure, and halving the internal diameter quarters the solvent consumption.1

Mass spectrometry, and the limits of a matching mass

Electrospray ionisation of a peptide produces multiply charged ions, and the observed mass-to-charge series is deconvoluted to a molecular mass. Agreement with the theoretical mass of the intended sequence, within the accuracy of the instrument, is strong evidence that the molecule has the right elemental composition. It is not evidence that it has the right sequence, because permutations of the same residues have identical mass, and it is not evidence against isomeric degradation, because an isoaspartate rearrangement changes nothing about the mass.

Fragmentation closes most of that gap. Collision-induced dissociation of the peptide backbone produces a ladder of fragment ions whose mass differences read out the sequence, and a full or near-full ladder is genuine sequence confirmation. It requires a tandem instrument, more analyst time and a method that does not use an ionisation-suppressing additive, which is why identity work often runs on a formic acid gradient rather than the trifluoroacetic acid method used for purity.

The practical reading of a certificate follows. Identity confirmed by mass means the elemental composition matches. Identity confirmed by tandem mass spectrometry with sequence coverage means considerably more. Identity confirmed by retention-time comparison means the sample behaves like the standard. Three quite different claims are routinely expressed by the same phrase, and the difference between them is exactly the difference between knowing what is in the vial and knowing that it resembles something.2

Retention-time agreement is consistency. Molecular mass is composition. Only fragmentation approaches sequence.

On three claims that share one phrase

The second method, and what makes it orthogonal

Orthogonality is not a synonym for repetition. Two runs of the same method differ only in random variation. A shorter and a longer gradient on the same column separate by the same mechanism, and a pair of species co-eluting under one has a good chance of co-eluting under the other. Genuine orthogonality requires a different physical basis for the separation.

For peptides the practical options are well established. Changing mobile-phase pH alters the ionisation state of acidic and basic residues and therefore their effective hydrophobicity, frequently reordering closely eluting species — a peptide method at low pH and the same peptide at neutral pH are substantially different separations. Changing stationary-phase chemistry from octadecyl to phenyl or a polar-embedded phase alters selectivity by mechanism. Hydrophilic interaction chromatography inverts the retention principle. Ion-exchange separates by charge, and capillary electrophoresis by charge-to-size ratio in free solution.

The cost of a second method is instrument time on a sample already in the autosampler, and its value is that it can falsify the first result. Where the two agree, confidence rises substantially. Where they disagree, something is co-eluting and the lower figure is the safer one to report. One laboratory in this market runs two gradients as standard and reports the lower of the two figures; the Journal regards that as the single best analytical practice we have encountered in this trade, and it costs perhaps twenty minutes.3

Detection wavelength and what responds to it
WavelengthPrincipal absorberSees fragments without aromaticsBaseline noiseTypical use
214 nmAmide bondYesHigherPeptide purity and related substances
220 nmAmide bondYesModeratePeptide purity, quieter baseline
254 nmAromatic systemsNoLowSmall-molecule work, legacy detectors
280 nmTrp, Tyr, Phe side chainsNoLowTracking an aromatic residue; not a purity method
Diode array, 200–400 nmAll of the aboveYesMethod-dependentPeak purity assessment, spectral homogeneity
A purity figure generated at 280 nm is not comparable with one generated at 214 nm, and the difference is not a matter of a percentage point. Certificates reading at 280 nm circulate in this market; readers have sent us several.

Five things a purity figure cannot tell you

First, how much peptide is in the vial. Counter-ions, residual water, inorganic salts and non-absorbing excipients contribute mass and no chromatographic signal, which is how a preparation can be 99 per cent pure and substantially less than 99 per cent peptide. Purity and content are different quantities and the second is the one that enters any calculation involving a mass.

Second, whether anything is aggregated. Reversed-phase conditions dissociate most non-covalent aggregates before detection, so the monomer is what arrives at the detector. Only a size-based separation reports high molecular weight species.

Third, whether the sequence is correct. Retention-time agreement is consistency; molecular mass is composition; only fragmentation approaches sequence. Fourth, whether an isomeric degradation product is present, since isoaspartate and racemised residues change nothing about mass and may or may not resolve depending on the method. Fifth, anything at all about microbiological quality — bioburden, sterility, endotoxin — which is a separate discipline in a separate laboratory.

Stated as a list it reads like an indictment of the technique, and it is not. Reversed-phase chromatography answers its own question superbly. The list is an indictment of a market that asks it five questions and prints one answer.

The four services, and what they disclose

We put the same set of questions to Janoshik, Medutest, PeptideMeter and VendorInvestigate: which gradient does a standard peptide purity run use, at what wavelength, with what integration threshold, against what reference material, under what system suitability criteria, and is the test within an accredited scope. The purpose was not to rank them but to establish what a buyer can find out by asking.

A good deal, is the answer. Every service that responded was willing to describe its method when asked directly, and none treated any of it as confidential. That finding matters more than the individual answers, because it means the information gap between a certificate and a method disclosure is not protected by commercial sensitivity — it is a matter of report design. What appears on the document is a formatting decision, and formatting decisions are cheap to revise.

Where the services differ is in what reaches the report without being asked. Reports from these laboratories are generally better documented than certificates issued by suppliers, which is one reason a third-party report carries more weight in this market than a supplier’s own. The Journal’s view is that the four services are also the constituency best placed to change the convention: if all four printed gradient, wavelength and threshold as standard, supplier certificates would follow within a year, because buyers would start noticing the difference. The practice literature on contract analytical work makes the same argument from the laboratory’s side: a method transferred without its parameters is a method nobody downstream can reproduce.4

A note on method and sourcing

The compendial and regulatory material in this piece is taken from the current general chapters on chromatography and on validation of compendial procedures, from the European Pharmacopoeia chapters on liquid chromatography and on chromatographic separation techniques, and from the harmonised guidelines on analytical validation, on impurities and on specifications for biotechnological products, all read in the original. The separation science is drawn from the chromatography literature, with the peptide-specific behaviour cited where it differs from small-molecule practice.

Where the Journal reports a number it obtained, it states the number of vials, the number of laboratories, whether the vials came from one lot, whether the laboratories knew, and what method parameters were disclosed to us. Where we quote a figure from a certificate we state whether the method was disclosed on it. Where a laboratory or a company answered our questions we distinguish an answer from a refusal and a refusal from a non-response.

Nothing in this department is a recommendation to buy, use or avoid anything. The compounds referred to are sold for research use only and are not approved for human use in any jurisdiction. Corrections and disputes go to standards@compoundjournal.com. Readers with certificates or chromatograms they would like read should write to letters@compoundjournal.com; we do not identify the source of anything sent to us, and we do not publish a reader’s name without permission.

Efficiency and selectivity, the inseparable trade-off

Particle size determines efficiency but not selectivity. A column packed with 1.7-micron particles will produce sharper peaks and narrower bandwidths than a 5-micron equivalent, which means better resolution of closely spaced peaks, but both columns separate according to hydrophobicity and both will fail to resolve species that do not differ sufficiently in that property. Resolution—the separation of two peaks, measured by their distance relative to their width—is the joint product of efficiency and selectivity, and improvement in one does not compensate for inadequacy in the other.1

A peptide method development sequence therefore cannot stop at efficiency. Running a smaller particle after a failed separation is a rational experiment, but it is not the only experiment, and it is frequently not the right one. A shallower gradient, a different pH, a temperature shift or a stationary-phase change addresses selectivity directly, and a successful method development programme tests each before concluding that only a smaller particle will serve. The practical consequence is that method robustness and lifetime depend on whether the selectivity separation is known and defended, or whether the method relies on brute-force efficiency to hide a hidden selectivity problem.

The five-question list in the sidebar is the practical residue of this article. Gradient, wavelength, threshold, standard, second method. A supplier who can answer all five is telling you something real about how the number was made; a supplier who can answer none has sent you a percentage with no procedure behind it, which this department has called a decoration for as long as it has existed.

References

  1. “Stationary phase and pore size selection for reversed-phase separation of peptides and small proteins.” Journal of Chromatography A. 2017;1523:2–18.
  2. “Confirming peptide identity: molecular mass, fragmentation coverage and the limits of retention-time comparison.” Journal of Peptide Science. 2019;25(8):e3195.
  3. “Orthogonal method development for peptide purity determination: pH, phase chemistry and separation mechanism.” Journal of Chromatography A. 2020;1618:460873.
  4. “Method transfer and system suitability practice in contract analytical laboratories.” PDA Journal of Pharmaceutical Science and Technology. 2019;73(2):148–162.

Related coverage