Why summer is a documented quality problem in this trade
The route did not close because of a rule about peptides.
TheCompound Journal
Reporting on incretins, compounding & the peptide supply chain
Freight
An isoaspartate rearrangement changes the molecule and not the mass. A method that confirms identity by molecular weight alone will report it as the parent compound.
The single most consequential fact about deamidation is that the isoaspartate product has the same molecular weight as the parent peptide, because the rearrangement moves an atom rather than adding or removing one. A laboratory confirming identity by molecular ion mass alone will report a substantially deamidated preparation as the intended compound. Separation is possible — the isomers usually resolve on a sufficiently shallow reversed-phase gradient, and specialist methods resolve them reliably — but only if the method was designed to look. A twelve-minute generic gradient does not look.
Deamidation of asparagine proceeds through nucleophilic attack by the backbone nitrogen of the following residue on the asparagine side-chain carbonyl, forming a five-membered succinimide intermediate which then hydrolyses to a mixture of aspartate and isoaspartate, conventionally in a ratio favouring the isomer roughly three to one. Glutamine deamidates by an analogous route, far more slowly, through a six-membered intermediate.
Three factors govern the rate. Sequence is dominant: the residue immediately following the asparagine determines how readily the intermediate forms, and asparagine-glycine is the fastest motif known, with serine, histidine and alanine following. Solution pH matters, with the rate minimal in the mildly acidic region and rising steeply above neutrality as the backbone nitrogen becomes more nucleophilic. Temperature and water activity set the overall pace, which is why the solid state helps so much.
The analytical problem is that isoaspartate has the same elemental composition and therefore the same molecular mass as the parent. Identity confirmation by molecular ion alone cannot distinguish them, and a preparation that is substantially deamidated will present as the intended compound. The isomers usually separate on a sufficiently shallow reversed-phase gradient, and specific methods exist, but only a method designed for the question will find the answer.1
Methionine 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 aggregate arrives at the column, comes apart, and is recorded as monomer.
Callum Brathwaite, Analytical Chemistry CorrespondentAggregation covers a range of species from soluble dimers to visible particles, formed by covalent routes such as disulphide scrambling or by non-covalent association of partially unfolded monomers. For peptides the process is often nucleated at an interface — the air-water interface of a shaken vial, the silicone oil layer on a siliconised stopper, the ice-water interface formed during freezing — which is why mechanical handling and freeze-thaw cycling matter as much as temperature.
The analytical difficulty is severe and specific to the trade’s chosen method. Reversed-phase chromatography runs in an acidic, partly organic mobile phase which dissociates most non-covalent aggregates before or during separation. The aggregate is loaded and the monomer is detected. Size-exclusion chromatography under non-denaturing conditions separates by hydrodynamic volume and reports high molecular weight species directly; analytical ultracentrifugation and light scattering methods characterise them further. None of these is offered as a routine service to this market.
The consequence for a reader is that the aggregate content of a research vial is, at present, an unmeasured quantity. It is not necessarily a large one — well-made lyophilised peptides are frequently very low in aggregate — but no certificate in circulation addresses it, and the purity figure that is printed instead is generated by the one method guaranteed not to see it.3
| Documented item | Companies reporting as standard | On request | Not available |
|---|---|---|---|
| Storage condition, lyophilised | 20 | 0 | 0 |
| Storage condition stated separately for reconstituted | 6 | 3 | 11 |
| Shelf life or retest interval | 19 | 0 | 1 |
| Residual moisture | 0 | 2 | 18 |
| Study conditions supporting the shelf life | 0 | 1 | 19 |
| In-use period from a study on that product | 0 | 0 | 20 |
| Compiled from the standard release documentation of twenty companies tracked by the Journal, supplemented by a written questionnaire sent twice, four weeks apart. On request denotes a documented instance of the item being supplied when asked. The final row is the one we would most like to be able to revise. | |||
Backbone hydrolysis cleaves an amide bond outright and produces two fragments, each of which is a distinct chromatographic species and each of which is detectable by mass. It is generally slower than deamidation at ordinary storage conditions but becomes dominant at low pH and elevated temperature, which is one reason accelerated stability data for peptides extrapolates so poorly: the pathway that dominates at forty degrees may be irrelevant at five.
Certain positions are much more labile than others. Aspartate-proline and aspartate-glycine bonds hydrolyse relatively readily under acidic conditions. N-terminal glutamine can cyclise to pyroglutamate, losing ammonia. Peptides with an N-terminal sequence of the right geometry can form a diketopiperazine and shed the first two residues as a cyclic dipeptide, a route that is fast enough at neutral pH to matter for some sequences.
Racemisation at susceptible residues produces epimers that are chemically identical in composition and differ only in stereochemistry. They are among the hardest impurities to detect, requiring either a chiral method or a sufficiently discriminating reversed-phase separation, and they are essentially never reported. A vial can be nominally pure by every measurement on its certificate and contain a percentage of a diastereomer with unknown biological behaviour.
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.4
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.
Photostability has its own guideline, its own defined light source options and its own exposure requirement expressed in lux hours of visible light and watt hours per square metre of near ultraviolet. Products are tested in the immediate container, and where they fail, in the marketing pack, and where they fail again the label carries a protection instruction. The chemistry is real: tryptophan and tyrosine absorb in the near ultraviolet and photo-oxidise, and photolytic disulphide cleavage is well documented.
Nothing about light exposure is recorded anywhere in the research-peptide supply chain. Vials are frequently supplied in clear glass. Photographs for listings are taken under studio lighting. Parcels are opened on kitchen counters. A reconstituted vial may sit on a shelf under a window for weeks. The cumulative exposure is unknown and unknowable, and it is plausibly a larger contributor to degradation than the transit excursions that attract all the attention.
The Journal makes one narrow observation rather than a recommendation, because recommendations are not this publication’s business. Amber glass, or a secondary carton, costs a fraction of a cent per unit and removes an uncontrolled variable entirely. Several of the twenty companies we track already ship in amber vials; most do not, and the ones that do not have not, as far as we can establish, generated any data suggesting it does not matter.5
There is no laboratory and no amount of money that produces a twenty-four-month result in under twenty-four months.
On why this documentation does not existThe 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.
| 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. | ||||
Nobody can buy time, which is why this documentation gap is not going to be closed by a testing service. What can be done immediately is to distinguish a measurement from a convention: to say twelve months at minus twenty, ongoing, rather than two years, and to say that an in-use period has not been established for this product rather than borrowing one from a pen.
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.
The mean kinetic temperature explanation is the clearest I have read anywhere, including in the training my employer paid for. I have printed the sidebar and put it on the wall of the dispatch room.
— T. Elorriaga, San Sebastián
Your table of degradation pathways lists racemisation and then says it is essentially never reported. If it is never reported, on what basis do you list it as a real risk rather than a theoretical one?
— N. Halvorsen, Trondheim
On the basis of the synthesis and analytical literature, where epimer formation during solid-phase assembly and during storage at extremes of pH is well characterised. What is missing is not evidence that it occurs but evidence about how much of it is present in any particular commercial vial, which is a different absence and the one we should have named.
Parcel 7 reached thirty-eight degrees for nearly four hours and you then tell readers not to worry unduly. I accept the solid-state argument. I would still like to know what the material looked like on analysis, and your article does not say.
— H. Baptiste, Fort-de-France
A fair criticism of the reporting. Parcel 7 was submitted for purity determination on arrival and returned a figure within a percentage point of the supplier’s stated value, which is consistent with the solid-state argument and proves very little on its own, since we had no pre-shipment measurement on that vial. The design fault is ours: a shipment study without a paired baseline sample cannot answer the question we most wanted answered, and the next round will.
On amber glass: it is not merely cheap, it is standard in the wider chemical supply trade for anything with a chromophore. The fact that this market ships peptides in clear glass is a sign of who is doing the filling more than of any decision about photostability.
— R. Hollenbeck, Spokane, WA
You draw a distinction between retest date and expiry date and then say suppliers use the wrong word. Which word do you think they should use, given that most of them have no study behind either?
— J. Vasilenko, Chisinau
Retest, with a stated interval and a note that no formal stability study supports it. That is an honest description of a chemical supplier’s position and it is standard practice in the wider chemical trade. Printing expiry implies a study exists, which is the specific inference we object to.
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