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.

Method

Resolution, tailing, repeatability: the arithmetic before the result

Matching a retention time against a standard is evidence of consistency, not proof of identity. Two different species can elute at the same time on one method.

Accreditation is the third word routinely used loosely. A laboratory accredited to the international standard for testing competence has demonstrated, to an assessment body, competence in a defined scope of methods. It does not follow that every test the laboratory offers falls inside that scope, and it certainly does not follow that a particular result was produced under it. The correct question is not whether a laboratory is accredited but whether the test you commissioned is within its accredited scope, and that is a question with a documentary answer.

Reporting, identification and qualification thresholds

Regulated pharmaceutical practice does not treat all small peaks alike. It defines three thresholds. A reporting threshold is the level above which an impurity must be listed in the results. An identification threshold is the level above which its structure must be established. A qualification threshold is the level above which its biological safety must be addressed. The three are set by dose and product class, and the framework converts an argument about small peaks into a documented decision procedure.

The trade has no equivalent. There is no reporting threshold, so an impurity is listed or not according to the software settings; no identification threshold, so nothing is ever identified; and no qualification threshold, because there is no regulatory obligation to qualify anything in a research chemical. The practical consequence is that a certificate reporting 98.6 per cent purity conveys nothing about whether the missing 1.4 per cent is thirty innocuous deletion sequences or one substantial unidentified species.

This is the gap the Journal would most like to see narrowed, and it can be narrowed cheaply. Listing the three largest impurities with their relative retention times and areas costs nothing, requires no additional analysis, and transforms the informational content of the document. One of the twenty companies we track does it. It is not a coincidence that the same company answered every question we put to it about its analytical methods.1

Reference standards, and what a retention time proves

A reference standard is material of established identity, purity and content against which an analysis is calibrated. Compendial standards are characterised by collaborative study and supplied with a certificate stating their assigned content. In-house standards are qualified against a compendial standard where one exists, or characterised by a battery of orthogonal methods where one does not. For most research peptides there is no compendial standard, which means every claim of identity or assay in this market ultimately rests on somebody’s in-house material.

What a matched retention time supports is worth stating precisely: it supports the inference that the sample and the standard behave identically in this separation. That is real evidence of consistency between two materials. It is not identification, because retention time is not unique — deletion sequences, epimers and unrelated compounds of similar hydrophobicity can share a retention window, and the peak width of a peptide separation is wide enough to hide a great deal.

Two consequences follow for reading a certificate. A report stating that identity was confirmed by comparison of retention time with a reference standard has told you about consistency, not identity. And a purity figure quoted as an assay — a percentage of label claim — requires a quantitative standard of known content, which is a much stronger claim than area per cent and should be labelled differently. The two are routinely printed in the same field.2

A gradient is a rate, not a duration. Three numbers, and nobody prints them.

Callum Brathwaite, Analytical Chemistry Correspondent

System suitability, the record nobody shows you

Before a laboratory accepts results from a run, it demonstrates that the system was performing. The checks are standard and their names are worth knowing. Resolution between a defined critical pair confirms the separation still separates. Tailing factor confirms peak symmetry within limits, typically not exceeding two. Relative standard deviation of replicate standard injections confirms injection and detection repeatability, commonly required below one or two per cent for an assay. Signal-to-noise at the reporting threshold confirms that small peaks can actually be measured. Theoretical plate count confirms the column has not deteriorated.

A run failing system suitability is discarded, not reported. This is entirely routine, entirely documented, and completely invisible to the recipient of a certificate in this trade. The consequence is that a purity figure arrives with no evidence that the instrument producing it was performing adequately at the time — not because the laboratory has anything to hide, but because the report format never had a field for it.

The Journal asked the four independent services which suitability criteria they apply to a standard peptide purity run. All four apply criteria. Two supplied them in writing. What none of them prints on the report is whether the criteria were met on the specific run that produced your number, which is the only question a reader actually has. A single line reading that system suitability criteria were met would close it.3

The economics deserve restating, because they explain the convention rather than excusing it. A generic gradient occupies an instrument for under an hour and returns a number the same week. Every one of the determinations that would qualify that number costs several times as much and takes several times as long.

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.

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.45

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.6

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.3 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.

Where two figures on the same lot disagree, the useful first question is not which laboratory is right but which gradient was shorter. In every disagreement this desk has been able to decompose, the faster method returned the higher number, and the difference was reconstructible from the methods alone.

We will keep buying material, submitting it, and printing the method alongside the number, including on the occasions when our own design turns out to have been inadequate. Two of the exercises reported in this department have had their limitations pointed out by readers before we noticed them ourselves, and both corrections are in the log.

References

  1. International Council for Harmonisation. Q3A(R2): Impurities in New Drug Substances. 2006.
  2. United States Pharmacopeia. General Chapter ⟨1225⟩ Validation of Compendial Procedures. USP–NF, Rockville, MD.
  3. International Council for Harmonisation. Q2(R2): Validation of Analytical Procedures. 2023.
  4. International Organization for Standardization. ISO/IEC 17025:2017 — General requirements for the competence of testing and calibration laboratories. Geneva, 2017.
  5. United States Pharmacopeia. General Chapter ⟨1058⟩ Analytical Instrument Qualification. USP–NF, Rockville, MD.
  6. “Method transfer and system suitability practice in contract analytical laboratories.” PDA Journal of Pharmaceutical Science and Technology. 2019;73(2):148–162.

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