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.

Freight

Twenty-eight days is a number from somebody else’s product

We set out what is known, what is inferred and what is simply assumed about the fortnight after a vial is opened.

Correction

An earlier version described mean kinetic temperature as the average of the highest and lowest recorded temperatures. It is the single temperature which, held constant, would produce the same degradation as the measured profile, computed through an Arrhenius weighting.

Reconstitution is the point at which a stable product becomes a perishable one, and the change is not incremental. Deamidation, hydrolysis and disulphide exchange all require water as a participant or a medium; aggregation requires molecular mobility that the dried matrix denies. Adding two millilitres of diluent restores all of it at once. The consequence is that a product with a two-year shelf life as a cake may have an in-use period measured in weeks, and the second figure is not derivable from the first by any calculation.

The storage conditions a real study uses

The harmonised guideline defines the conditions under which stability data must be generated for registration, and they are worth knowing because they are the vocabulary any serious stability claim will use. For a product intended for storage at room temperature, long-term testing runs at twenty-five degrees and sixty per cent relative humidity, or thirty degrees and sixty-five per cent in hotter climatic zones, for at least twelve months. Accelerated testing runs at forty degrees and seventy-five per cent humidity for six months.

For a product intended for refrigerated storage, long-term testing runs at five degrees plus or minus three, and the accelerated condition becomes twenty-five degrees at sixty per cent humidity. Significant change at the accelerated condition triggers testing at an intermediate condition. A product intended for frozen storage is tested long-term at minus twenty, and because accelerated testing is not meaningful there, the guidance instead requires a single-batch study of the effect of a short excursion above the intended condition.

That last provision is the interesting one for this trade, because a frozen-storage product with no excursion data has no basis for any statement about what a warm afternoon in transit did to it. Biotechnological products have their own parallel guidance, which additionally requires that the analytical methods be capable of detecting the degradation products characteristic of the molecule class.1

Why accelerated data extrapolates badly for peptides

The temptation with any stability programme is to run the accelerated condition, fit an Arrhenius relationship to the rate constants, and extrapolate to the intended storage temperature. For a single reaction with a temperature-independent mechanism that is sound. For peptides it frequently is not, and the reason is that different pathways have different activation energies.

Suppose a peptide degrades at five degrees principally by deamidation and at forty degrees principally by hydrolysis, with the second having a higher activation energy. Measuring total degradation at forty degrees measures mostly hydrolysis; extrapolating that rate down to five degrees predicts almost nothing about the deamidation that will actually dominate. Aggregation is worse still, because it is frequently nucleated by interfaces and mechanical stress rather than by thermal energy alone, and does not obey a simple temperature relationship at all.

The practical rule the Journal applies when reading a stability claim is to ask what condition the data was generated at and whether the degradation products were identified as well as quantified. Accelerated data that shows which products form is genuinely useful as a warning of what to watch for. Accelerated data reduced to a single percentage and extrapolated to a shelf life is a projection dressed as a measurement, and for this class of molecule it is a poor projection.

Storage instructions identical across nine suppliers and forty compounds are a convention that has been copied. Copying is not measuring.

Noor Haddadin, Supply Chain Editor

In-use stability, and where the numbers come from

In-use stability is established by a dedicated study: the finished product reconstituted as intended, at the intended concentration, in the intended container, stored at the intended temperature, sampled at intervals, and analysed by stability-indicating methods for related substances and by a size-based method for aggregates. The output is a period, and the period belongs to that formulation in that container and to nothing else.

The in-use periods circulating in this market are not derived that way. They are, in the Journal’s experience of tracing them, borrowed from the labelling of marketed pen presentations, which are different formulations at different concentrations with different preservative systems in different primary containers. Marketed in-use periods for the incretin pens run from four weeks to eight depending on product and storage condition, and none of those figures transfers to a reconstituted research vial by any argument we can construct.

What can be said generally is directional rather than numerical. Degradation in solution proceeds orders of magnitude faster than in the cake. Lower temperature helps substantially. Repeated warming and cooling of an opened vial is worse than steady storage. Preservative-containing diluent addresses microbial growth and does nothing about chemical degradation. And in the absence of a study on the actual product, any specific number quoted for an in-use period is an assumption wearing a specification’s clothes.

One further loss is routinely mistaken for degradation. Peptides adsorb to glass and polymer surfaces, and the relationship runs the awkward way: the more dilute the solution, the larger the proportion a given surface area removes.2

Diluents, preservation and what each does not do
DiluentCompositionInhibits microbial growthChemical interaction risk
Sterile water for injectionWater onlyNoNone inherent
Bacteriostatic water for injectionWater + 0.9% benzyl alcoholYes, inhibitory not lethalDocumented aggregation risk with some proteins
0.9% sodium chloride injectionWater + isotonic NaClNoIonic strength effects on some peptides
Buffered vehicleWater + buffer saltsNo unless preservedpH shift on freezing, notably with phosphate
Compatibility of any diluent with a given peptide is a question for data on that formulation. Preservative effectiveness is established by a specific compendial test rather than inferred from the presence of a preservative, and preservative content itself declines over an in-use period.

Bacteriostatic water, sterile water, and what each is for

Sterile water for injection contains water and nothing else. It is sterile when the container is opened and it has no capacity to remain so, and it supports the growth of any organism introduced subsequently. It is the appropriate diluent for a single-use presentation and the wrong one for anything intended to be entered more than once.

Bacteriostatic water for injection contains benzyl alcohol at nine parts per thousand. Benzyl alcohol inhibits microbial growth, which is what makes a multiple-dose presentation coherent, and it is important to be exact about what that means: a preservative suppresses the proliferation of organisms introduced during use. It does not sterilise a contaminated solution, it does not act instantly, and its effectiveness against a given organism is established by a specific compendial test rather than assumed.

Two further points get lost. Benzyl alcohol is not universally compatible; it has been implicated in the aggregation of certain protein formulations, and compatibility with a given peptide is a question for data rather than for convention. And a preservative system has its own stability: preservative content declines over an in-use period, which is one of the attributes a proper in-use study measures. A diluent choice is therefore a formulation decision with chemical consequences, not a matter of preference between two clear liquids.3

Freezing a solution is not storing it

Freezing a reconstituted vial to extend its life is a common inference and a poor one, for reasons that have nothing to do with temperature and everything to do with what happens during the phase change. As ice forms, solutes are excluded from the crystal lattice and concentrated into a shrinking unfrozen fraction. Local concentration, ionic strength and pH in that fraction can shift dramatically — buffer components crystallise at different points, and a phosphate buffer is notorious for a large pH excursion on freezing.

The ice-water interface is itself a denaturing surface, and interfacial area increases with the number of freeze-thaw cycles. Each cycle presents the peptide with a fresh opportunity to unfold at that interface and aggregate. This is why formulations intended for frozen storage contain cryoprotectants and why lyophilisation exists as a technique at all: the point of drying is to avoid keeping a peptide in a partially frozen aqueous system.

The Journal states the mechanism and declines the recommendation, as this department’s practice requires. What can be said without advising anybody is that freezing a reconstituted solution is a different chemical operation from freezing a dried cake, that its effects are formulation-dependent and not predictable from first principles, and that no in-use study we have seen in this market has examined it. A reader treating the freezer as a pause button is relying on an assumption nobody has tested for that product.

A note on method and sourcing

The regulatory framework in this article is taken from the harmonised guidelines on stability testing and on biotechnological products, read in the original, and from the current compendial chapters on storage definitions, distribution of temperature-sensitive products and stability in dispensing practice. The degradation chemistry is drawn from the peptide and pharmaceutical sciences literature, and where a claim is a generalisation across sequences this piece says so, because sequence dependence is the rule rather than the exception.

The shipment data is ours. Nine parcels, ordered at catalogue prices as ordinary customers, with calibrated loggers placed inside the insulated payload and sampling at five-minute intervals. Eight complete traces and one truncated by a customs hold. We disclose that nine parcels is not a survey, that we did not control the packing operation, and that a single logger cannot characterise a payload with a thermal gradient across it.

Nothing in this department is a recommendation about storing, reconstituting or administering anything. The compounds discussed are sold for research use only and are not approved for human use in any jurisdiction. Corrections and disputes go to standards@compoundjournal.com; documents, traces and certificates readers would like examined go to letters@compoundjournal.com, and we do not identify the source of anything sent to us.

The finding the Journal least wanted and most trusts is that the transit excursions everybody worries about are probably not the largest exposure in this supply chain. A dried cake at low moisture tolerates a warm afternoon. A reconstituted vial in a refrigerator door for six weeks, with no in-use study behind the number that justified the six weeks, is a different proposition, and it attracts almost no attention at all.

References

  1. International Council for Harmonisation. Q5C: Stability Testing of Biotechnological/Biological Products. 1995.
  2. “Surface adsorption losses of peptides at low concentration in glass and polymer containers.” Journal of Pharmaceutical Sciences. 2016;105(9):2617–2626.
  3. United States Pharmacopeia. General Chapter ⟨51⟩ Antimicrobial Effectiveness Testing. USP–NF, Rockville, MD.

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