A supplier suspends shipping to Argentina after 22 consecutive customs detentions
The route did not close because of a rule about peptides.
TheCompound Journal
Reporting on incretins, compounding & the peptide supply chain
Excursions
An in-use period is established by a dedicated study on a specific formulation in a specific container at a specific concentration. Borrowing one from a marketed product is not a study.
An in-use period is a specific piece of experimental work. It requires the actual formulation, at the actual reconstituted concentration, in the actual container, held at the intended storage temperature, sampled at intervals, and analysed by methods capable of detecting the relevant degradation products — which in practice means a chromatographic method for related substances and a size-based method for aggregates. The output is a period over which the material remains within specification. Numbers circulating in this trade are, in the Journal’s experience, borrowed from the labelling of marketed pens, which are different formulations in different containers with different preservative systems.
A lyophilisation cycle has three stages and the differences between them explain most of what can go wrong. Freezing solidifies the solution, converting bulk water into ice crystals and concentrating everything else into an interstitial amorphous phase. Primary drying holds the product below the temperature at which that amorphous phase would soften, reduces the chamber pressure, and sublimes the ice directly to vapour. Secondary drying raises the shelf temperature to desorb water that remains bound to the solid matrix.
The rate-limiting stage is primary drying, and it is the stage under commercial pressure, because sublimation is slow and freeze-dryer time is expensive. Raising the shelf temperature accelerates it and risks carrying the product above its collapse temperature; shortening it leaves ice in the cake, which then melts during secondary drying and produces a partially collapsed plug with elevated moisture.
Secondary drying is the stage most often truncated, and truncation is invisible in the finished appearance. A cake can look entirely correct and carry three or four per cent residual water because the final desorption step was cut by six hours. The only way to detect it is to measure the water, which is why residual moisture is a release test in regulated manufacture and why its absence from a certificate is a substantive omission rather than a formatting one.1
Two methods dominate. Karl Fischer titration determines water specifically, by a stoichiometric reaction with iodine, and is the reference method; the coulometric variant works on the small sample masses a single vial provides. Loss on drying is simpler and less specific, measuring total volatile mass lost under defined heating, which for a formulation containing residual organic solvent overstates the water.
Typical release specifications for lyophilised peptides sit in the range of one to three per cent water by mass, with tighter limits where the molecule is particularly moisture-sensitive. The relationship to stability is not linear. Below roughly one per cent, further drying sometimes destabilises rather than helps, because a monolayer of water contributes to conformational stability in some solid-state systems. Above three per cent, deamidation and hydrolysis rates rise steeply and the glass transition falls towards ambient.
Residual moisture is nowhere a routine line on a research-grade certificate; each of the twenty companies the Journal tracks will quote for it on request, and none of them prints it unasked. Two will provide a figure on request. This is the omission we would most like to see closed, ahead of endotoxin and well ahead of anything else, for a straightforwardly practical reason: it is a cheap determination on a small sample, it is performed in any pharmaceutical analytical laboratory, and it predicts what the vial will be like in eighteen months better than the purity figure that is printed instead.
Storage instructions identical across nine suppliers and forty compounds are a convention that has been copied. Copying is not measuring.
Noor Haddadin, Supply Chain EditorMethionine oxidises to the sulfoxide and, under harsher conditions, the sulfone. Tryptophan oxidises through a series of products including kynurenine derivatives. Histidine and tyrosine are susceptible under metal-catalysed conditions, and free cysteine oxidises readily to disulphide. Each of these products differs from the parent by a defined mass increment, which makes oxidation the pathway most reliably detected by mass spectrometry: the sulfoxide is sixteen mass units heavier and unmistakable.
The interesting question is usually where the oxidant came from, and the answers are mundane. Trace transition metals leached from glass, stainless steel or a stopper catalyse oxidation of several residues. Peroxides accumulate in polysorbate surfactants during storage and are a well-documented source of methionine oxidation in formulated products. Dissolved oxygen in the diluent contributes. Light drives it, particularly for tryptophan, and light exposure during handling is entirely undocumented in this trade.
Practical consequences follow that are not obvious. A formulation containing a surfactant that has itself been stored warm for a year may oxidise a peptide that would have been perfectly stable in a plain aqueous vehicle. Headspace composition matters: vials backfilled with nitrogen behave differently from vials sealed under air, and the difference is a manufacturing choice recorded nowhere on the label.2
The documentation stops at the moment before the diluent goes in, and every practical question a buyer has begins at the moment after. In-use stability is where the losses happen and where there is least published data, for any supplier in this market.
| Pathway | Residues at risk | Accelerated by | Mass change | Detected by |
|---|---|---|---|---|
| Deamidation | Asn (fast at Asn-Gly), Gln | Water, pH above neutral, heat | None (isoAsp) or +1 Da | Shallow RP gradient; isoAsp-specific methods |
| Oxidation | Met, Trp, His, Cys, Tyr | Peroxides, trace metals, light, oxygen | +16 Da and multiples | LC–MS; RP shift |
| Aggregation | Sequence-dependent | Interfaces, shaking, freeze-thaw | Multiples of monomer | Size-exclusion; light scattering |
| Hydrolysis | Asp-Pro, Asp-Gly, N-terminal Gln | Low pH, heat, water | Fragments | RP-HPLC and MS on fragments |
| Racemisation | Asp, Ser, Cys | Heat, extremes of pH | None | Chiral or highly discriminating RP methods |
| Sequence dependence is the rule. This table describes tendencies across peptides, not the behaviour of any particular molecule, and the mass-change column is the reason identity confirmation by molecular ion alone is insufficient for stability purposes. | ||||
A stability study is only as good as the analytical method behind it, and the requirement has a name: the method must be stability-indicating, meaning it must resolve the parent compound from its degradation products and quantify the change. Establishing that is done by forced degradation — deliberately stressing the material with acid, base, oxidant, heat and light — and demonstrating that the resulting products are separated from the parent and from each other with adequate peak purity.
Almost nothing sold as a purity determination in this market has been validated that way. A generic peptide gradient run for twelve minutes may perfectly well resolve the parent from its two largest process impurities and entirely fail to resolve it from its isoaspartate isomer or a closely related oxidation product. The number it returns is a purity figure, not a stability measurement, and using a series of such figures to argue that a product has not degraded is a category error.
The compendial guidance on analytical validation is explicit about specificity, and about demonstrating it against the degradation products the molecule can actually form. The gap between that expectation and practice in this trade is not a matter of dishonesty. It is that the method being sold was designed for a different purpose and is being asked a question it was not built to answer.3
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.4
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.5
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.
Almost every temperature excursion this desk has logged has occurred in the final forty-eight hours of a journey. The long international leg is engineered and monitored; the last mile is improvised, and the pack was specified for the route somebody planned.
Beyond about forty-eight hours the gel pack is a delay, not a control. After that the shipment is relying on the material.
On the coolant arithmeticThe 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.
Selected from correspondence received on this article. Writers are identified by initial, surname and city, verified before printing. Replies are from the desk that filed the piece or from the standards editor. Write to letters@compoundjournal.com.
Nobody measures what they have after storage, which is the only way any of this would be settled. A determination on a solution held for four weeks would produce more information than every discussion thread on the subject combined.
— M. Tsvangirai, Bulawayo
Adsorption to the vial wall is the loss mechanism nobody thinks about, and it matters most at exactly the low concentrations people prepare. Material can leave a solution without degrading at all.
— K. Sivertsen, Bergen
Surface adsorption is a real and measurable loss at low concentration, and it is invisible to any test that examines what remains in solution rather than what was put in.
A general point about rate. Everything here is kinetics, not thresholds, and the popular framing of a material being fine until it suddenly is not has no basis in the chemistry. Loss is continuous and the question is how much.
— D. Sakamoto, Kobe
Continuous loss against a cliff edge is the single most useful correction to the way this subject is usually discussed, and it changes what a storage question even means.
Seasonal variation makes a single documented shipment close to meaningless. A supplier’s packing that performs well in March may not in July, and any claim about cold-chain performance should be dated.
— C. Adeoti, Ibadan
Dated and seasoned. A cold-chain record from the wrong month is a record of a different problem.
The route did not close because of a rule about peptides.
The Journal submitted split samples from single lots to three assay services, under names unconnected to this publication, and published each method alongside each result.
Reported from the analysis, not from a warning notice.
The route did not close because of a rule about peptides.
Reversed-phase chromatography runs in an organic, acidic mobile phase that dissociates most non-covalent aggregates on the way to the detector.
The result is unremarkable. What the report states alongside it is not.