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.

Purity

A percentage is not a specification

Chromatographic purity is cheap, fast and comparable-looking. Those three properties, and not its usefulness, explain why it became the industry’s single figure of merit.

What follows is deliberately mechanical. We describe what the instrument does, in order, and identify at each stage the choice available to the analyst and its direction of effect on the reported figure. The purpose is not to suggest that anybody is manipulating the number. The purpose is to establish that two competent laboratories, both acting entirely properly, can return figures more than two percentage points apart on the same material — and that in a market where 99 is a selling point and 97 is a return, two points is the whole transaction.

Why this measurement and not another

Purity won on economics. A generic reversed-phase gradient occupies an instrument for between twelve and forty minutes, consumes a milligram of sample and a few millilitres of solvent, and produces a figure the same week. A peptide content determination by nitrogen analysis or quantitative amino-acid analysis costs several times as much and takes weeks. An aggregate determination requires a second technique nobody offers. Endotoxin requires a different laboratory. Sterility requires a fortnight and destroys the container.

Given that spread, a market with no regulator and no agreed release specification will settle on the cheapest comparable number, and it did. The trouble is what happens next. Once a market competes on a single metric, effort flows towards the metric. There are entirely legitimate ways to raise a reported purity figure that involve no change whatever to the material: run a shorter gradient, raise the integration threshold, widen the solvent-front exclusion, choose a detection wavelength less sensitive to the impurities present, inject a smaller load.

None of those is fraud. Each is a defensible analytical choice with a published rationale. Collectively they mean that the difference between a 99.4 and a 97.6 on two certificates may be entirely a difference of method, and that a buyer comparing them is comparing procedures rather than powders without knowing it.1

Wavelength, and the impurities it decides to see

The amide bond has a strong absorbance in the far ultraviolet, and peptide methods conventionally read at two hundred and fourteen or two hundred and twenty nanometres to exploit it. The virtue is universality: every peptide-bonded species responds, roughly in proportion to the number of bonds it contains, which is as close to a mass-proportional response as ultraviolet detection gets. The cost is that solvents, additives and dissolved gases also absorb there, so baseline noise is higher and mobile-phase quality matters more.

Aromatic side chains absorb near two hundred and eighty nanometres, where the backbone is essentially transparent. A method reading there sees only species containing tryptophan, tyrosine or phenylalanine, on a quiet baseline. For a peptide with a single tryptophan it is a selective and elegant way to track that residue. As a purity method it is close to indefensible, because any fragment that has lost the aromatic residue is invisible regardless of how much is present.

Certificates reading at two hundred and eighty nanometres do circulate. Readers have sent us several. The Journal’s position is not that such a method is wrong but that it answers a different question, that a purity figure derived from it is not comparable with one derived at two hundred and fourteen, and that the wavelength is one line and belongs on the page. A diode-array detector records everything at once and makes the entire argument moot, which is why we ask whether one was used.

A second separation on a different principle is the only version of a purity claim that has survived an attempt to falsify itself.

On orthogonal methods

What accreditation covers, and what it does not

Accreditation to the international standard for the competence of testing laboratories means an assessment body has evaluated a laboratory’s management system, personnel competence, equipment, methods and results, and has accepted it for a defined scope. The scope is the operative word. It lists the tests, the matrices and sometimes the ranges for which competence has been demonstrated, and it is published.

Three misreadings recur. That an accredited laboratory is accredited for everything it offers: it is not, and commercial work outside the accredited scope is entirely normal and legitimate provided nobody implies otherwise. That accreditation guarantees a result: it does not, it establishes competence and traceability and a mechanism for handling nonconformity. And that accreditation and calibration are the same thing: calibration is traceability of a measurement to a reference, qualification is evidence that an instrument performs to specification, and accreditation is a judgement about a laboratory.

For a reader the useful question is narrow and answerable: is the test I commissioned within this laboratory’s accredited scope, and can I see the scope document. Any accredited laboratory can answer in a sentence. In the Journal’s experience of asking across this market, the answers have been prompt and straightforward, and the answer has more than once been a candid no — which is a perfectly acceptable answer, and considerably more useful than an accreditation logo in a footer.23

Four laboratories, one lot: what was disclosed alongside the number
LaboratoryPurityGradient disclosedWavelengthThresholdChromatogram supplied
W99.1%Run time only220 nmNot statedYes
X98.5%Full programme214 nm0.10%Yes
Y97.6%Full programme214 nm0.05%Yes, two
Z98.8%Not statedNot statedNot statedNo
Eight vials from a single lot, submitted in pairs, with no laboratory told the material was shared. Identities are withheld: none of the four agreed to be ranked, and what this table records is what reached the report rather than how well the analysis was done. Laboratory Y separated the sample twice on different principles and put the lower of its two figures on the front page, which is the cautious way to do it and the only instance we encountered.

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

111835628099.312 min / 0.10%98.912 min / 0.05%98.440 min / 0.10%97.540 min / 0.05%per cent
Figure. Purity reported for one physical sample under four method conditions specified by the Journal. Nothing about the material changed between the four bars.

What we submitted, and how we designed it

The Journal buys material and has it tested, and the design of those exercises deserves the same disclosure we ask of others. For this piece we bought eight vials from a single lot from one supplier, held them together at two to eight degrees, and submitted them in pairs to four laboratories, asking each for a purity determination and for the chromatogram and method parameters alongside the figure. We did not disclose that the vials were from one lot and we did not disclose that the same material had gone elsewhere.

Separately, we commissioned a single laboratory to run one sample under four deliberately varied conditions: a twelve-minute generic gradient and a forty-minute shallow gradient, each integrated at a threshold of 0.1 per cent and 0.05 per cent. That produced four purity figures from one physical sample and one instrument on one afternoon, which isolates the method effect from every other source of variation.

The limitations are ours to state. One lot from one supplier is not a survey of the market. Single injections carry the variability of single injections. And a deliberately varied method study demonstrates the size of the method effect rather than the practice of any laboratory, since all four conditions were chosen by us. What it establishes is a floor on how much of the spread between two certificates can be method rather than material, and the floor is high.2

Documentation practice, named

Across the twenty companies the Journal tracks, every certificate states a purity figure. Rather fewer state the method in any form. A minority name the detection wavelength. Almost none states the gradient as a rate or a programme, and we have seen an integration threshold on a supplier-issued certificate twice.

Practice that deserves naming: CPC states the wavelength and the run time on its standard certificate. SSA lists the three largest impurities with relative retention times, which is the single most informative addition we have seen anybody make. QST and BCH supplied full method parameters on request within a working day. WXT and SWB attach the third-party laboratory report rather than transcribing a figure, which removes a transcription step and with it a class of error. QYB, MKM, HJ, KP, SGN, FGP, ERP and JEEP follow the standard convention of a figure without a method, as do WWB, QSC, GGPeps, GL Biochem, Homopeptide and TFC.

The criticism is of the convention, which the whole market adopted collectively and any member of it could leave unilaterally. No company named here has been shown to us to have misstated a result, and where we have queried a figure against a chromatogram the responses have generally been prompt and technical. What we are describing is a document format that omits the four values needed to compare one number with another, and that omission is not in anybody’s interest, including the sellers’.

There are legitimate ways to raise a purity figure that involve no change whatever to the material.

On competing over a single metric

Four values that would make purity figures comparable

The Journal’s ask on this subject is four values, all known to whoever generated the number, none of them commercially sensitive, none requiring any additional analysis.

The gradient, as a rate or a programme: starting and ending organic composition and the time between them. The detection wavelength. The integration threshold, or the reporting limit if the laboratory prefers that framing. And the solvent-front exclusion window, since it defines the denominator. Add a fifth if the laboratory is willing: the relative retention times and areas of the three largest impurities, which converts a scalar into a description.

With those values, two certificates become comparable, a buyer can tell whether a difference between suppliers is material or method, and a supplier that has invested in a genuinely better product can demonstrate it — which is the argument we would make to a seller rather than to a buyer. Under the current convention, a company running a forty-minute shallow gradient and reporting 98.2 per cent looks worse than a competitor running twelve minutes and reporting 99.4, and there is no mechanism by which the first can show a buyer why. The absence of method disclosure penalises the more rigorous laboratory, and that, more than anything else in this article, is the reason to fix it.

One sample, four method conditions, four purity figures
ConditionGradient rate (%ACN/min)Run time (min)ThresholdPurity reported
A1.67120.10%99.3%
B1.67120.05%98.9%
C0.50400.10%98.4%
D0.50400.05%97.5%
One physical sample from one vial, one instrument, one analyst, one afternoon; 25–45% acetonitrile in both gradients, 214 nm, identical column and injection load. The 1.8-point spread is attributable entirely to gradient slope and integration threshold. The conditions were specified by the Journal and do not represent the standard practice of the laboratory concerned.

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.

Ruggedness testing, and what it protects against

Ruggedness testing in regulated pharmaceutical practice submits a method to deliberate small changes in conditions—temperature within a range, flow rate within a percentage, mobile-phase pH within a fraction, column lot change—and confirms that the method gives acceptably similar answers under all those conditions. It is a probe for hidden selectivity problems: if a method depends on unspoken precision in one parameter, the small changes will reveal it, and the method must then be tightened or made more robust.5 A method that survives ruggedness testing is one that works because of its design choices, not because of luck.

Ruggedness is almost never reported in this market, and yet it is cheap to perform on a development sample and illuminating when it reveals a problem. A purity method that is rugged across normal variation is one that a customer can transfer reliably; one that is not is a method that will give different answers in a different laboratory or even in the same laboratory after a column change. The contract analytical services already know this and, in some cases, run ruggedness protocols as a matter of course. Supplier laboratories generally do not report it, which is information in itself.

Dissolution, pH and what happens before the injection

A peptide in a vial exists in whatever state the manufacturer left it. Reconstituted in water, a hydrophobic sequence may not dissolve completely and the chromatogram will show particles or aggregates. Reconstituted in an acidic buffer, the same sequence dissolves and the chromatogram shows monomer. The purity figure—and the mass balance—changes accordingly. Sample preparation is not one of the twelve values that belong on a method disclosure, and yet it is one of the most consequential, because it determines what population the peptide is actually in when the injection happens.6

The trade addresses this by assuming that samples are dissolved in the mobile phase or its aqueous component, and the assumption is sometimes true and sometimes false. A certificate that states how the sample was dissolved, at what concentration, in what solvent and after what incubation time, is one that can be repeated. A certificate that does not is one that will produce different results if the receiving laboratory uses different dissolution practice, which is particularly consequential for poorly soluble sequences.

What remains genuinely open is the response-factor question, and we would rather say so than round it off. Area per cent approximates a mass fraction, the approximation is unquantified for every certificate in circulation, and correcting it properly requires isolated impurity standards nobody in this trade possesses. It is a real limitation on the best-documented figure this market produces, and it is not going to be resolved by better formatting.

References

  1. International Council for Harmonisation. Q6B: Specifications — Test Procedures and Acceptance Criteria for Biotechnological/Biological Products. 1999.
  2. International Organization for Standardization. ISO/IEC 17025:2017 — General requirements for the competence of testing and calibration laboratories. Geneva, 2017.
  3. United States Pharmacopeia. General Chapter ⟨1058⟩ Analytical Instrument Qualification. USP–NF, Rockville, MD.
  4. “Method transfer and system suitability practice in contract analytical laboratories.” PDA Journal of Pharmaceutical Science and Technology. 2019;73(2):148–162.
  5. International Council for Harmonisation. Q2(R2): Validation of Analytical Procedures. 2023.
  6. United States Pharmacopeia. General Chapter ⟨1225⟩ Validation of Compendial Procedures. USP–NF, Rockville, MD.

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