PeptideMeter result on a Tianjin mazdutide lot lands 4.3 points below the supplier’s figure
The supplier has not disputed the finding. It has not explained the gap either.
TheCompound Journal
Reporting on incretins, compounding & the peptide supply chain
Mass spectrometry
What would be needed to catch each of these, and what it would cost.
Deamidation is the difficult case. It is the commonest chemical degradation pathway for peptides containing asparagine or glutamine, it proceeds through a cyclic intermediate at a rate that depends strongly on pH and on the identity of the following residue, and it produces both the aspartate and the isoaspartate forms. The mass penalty is under one dalton. On a peptide of four thousand daltons that is two hundred and forty parts per million, which is comfortably resolvable on an orbital trap and entirely invisible on a linear time-of-flight instrument. Whether a certificate would have caught deamidation is therefore a question about the instrument, not about the laboratory’s diligence.
Two species are isobaric if their masses are identical to the precision of the measurement, and the term covers two quite different situations. True isobars have identical elemental compositions: leucine and isoleucine are structural isomers of one another, as are the aspartate and isoaspartate products of deamidation, and no mass measurement at any resolving power will separate them. Near-isobars have different compositions that happen to give similar masses, and these are resolvable given sufficient performance.
The canonical near-isobaric pair in peptide work is glutamine against lysine, differing by 0.036 daltons — nine parts per million on a four-thousand-dalton peptide, and therefore a discrimination that requires an orbital trap or better. A second is the classic composition ambiguity in which a combination of light elements substitutes for a heavier one at nearly the same nominal mass; the mass defect of hydrogen relative to the heavier elements is what makes these separable at high resolving power and indistinguishable at low.1
The reason this matters commercially is narrow but real. A synthesis error that substitutes one residue for another may be invisible on a low-resolution instrument, present at a few per cent, and chromatographically unresolved from the parent under a fast gradient. The combination of a twelve-minute purity method and a unit-resolution identity check is not a conspiracy; it is simply a pair of tests neither of which is looking in that direction.
Deamidation of asparagine proceeds through a five-membered succinimide intermediate formed by nucleophilic attack of the following residue’s backbone nitrogen on the asparagine side-chain carbonyl. Hydrolysis of the intermediate yields aspartate or isoaspartate, in a ratio typically favouring the isoaspartate form. Glutamine deamidates by an analogous but slower route. The rate depends strongly on pH, temperature, and the identity of the residue immediately following the asparagine, with glycine and serine accelerating it markedly.2
The analytical difficulty is threefold. The mass increase is 0.984 daltons, which requires only modest resolving power to see at low molecular weight and becomes demanding as the peptide gets larger. The aspartate and isoaspartate products are exactly isobaric with one another, so distinguishing them requires either a chromatographic separation that happens to resolve them or a specific enzymatic assay. And deamidated species often elute close to the parent under reversed-phase conditions, so a fast gradient may not separate them either.
The result is a degradation product that is common, that has real consequences for biological activity, that accumulates in storage, and that a certificate produced by a unit-resolution instrument on a twelve-minute gradient is structurally unable to detect. When the Journal describes a certificate as silent on stability, this is a large part of what is meant.
A D-amino acid substitution changes the molecule, changes its biology, and changes its mass by exactly nothing.
On what mass spectrometry is structurally unable to detectMethionine oxidises to the sulphoxide with a mass increase of 15.995 daltons, and on to the sulphone at a further 15.995. Tryptophan and histidine oxidise by related routes. The chemistry is driven by dissolved oxygen, by trace peroxides in excipients and in some grades of polysorbate, by light, and by transition-metal contamination, and it proceeds in lyophilised material as well as in solution, though more slowly.
Analytically this is the easy case, and it deserves to be described as such in an article otherwise concerned with what cannot be seen. A sixteen-dalton shift is resolvable on essentially any instrument, and the oxidised species is usually chromatographically distinct enough to appear as a separate peak under a reasonably shallow gradient. A spectrum showing a plus-sixteen satellite at a few per cent of the parent intensity is unambiguous evidence of oxidation, and its absence is meaningful evidence of the opposite.
Which is why the Journal’s standing request to laboratories in this market is for the spectrum rather than the verdict. A reproduced spectrum, even at the modest resolution of a routine instrument, allows a reader to look for the plus-sixteen satellite themselves. A conformance statement does not, and cannot be made to. This is the cheapest available improvement to identity reporting in the trade and it consists of printing a picture the laboratory has already produced.
| Charge (z) | Observed m/z | Isotope spacing | Typical relative intensity |
|---|---|---|---|
| 1+ | 4114.59 | 1.000 | weak |
| 2+ | 2057.80 | 0.500 | moderate |
| 3+ | 1372.20 | 0.333 | strong |
| 4+ | 1029.40 | 0.250 | strong |
| 5+ | 823.72 | 0.200 | moderate |
| Calculated for protonated ions using a proton mass of 1.00728 Da. Relative intensities are indicative for electrospray from an acidified mobile phase and vary with solution composition and instrument tuning. A reader shown only the 4+ figure without a charge assignment would infer a peptide of about a thousand daltons. | |||
Amino acids other than glycine are chiral, and peptide synthesis is performed with L-configured building blocks. Racemisation during synthesis — most commonly at cysteine, histidine and aspartate residues, and promoted by prolonged base exposure during coupling and deprotection — produces a peptide containing one or more D residues. The resulting molecule has the same elemental composition, the same monoisotopic mass, the same average mass, and the same fragmentation masses as the intended product.
Mass spectrometry cannot detect it. This is not a limitation of any particular instrument; it is a consequence of what the technique measures. Reversed-phase chromatography sometimes separates diastereomeric peptides, and where it does the epimer appears as a shoulder or a satellite peak of unassigned identity — which is one reason a chromatogram with an unexplained minor peak deserves more attention than a purity percentage does. Where the epimer co-elutes, no routine analysis in this market would find it.
Deliberate detection requires chiral amino-acid analysis after total hydrolysis, or digestion with a stereospecific protease that fails to cleave across a D residue, or in some cases ion-mobility separation. None of these is offered as a standard service to private buyers by any of the four testing services this market relies on, and the Journal’s position is that this is a genuine gap rather than a failing on their part: nobody has ever been asked to price it.
A fair question, and the Journal’s answer has changed. Our first instinct was to argue for sequence confirmation on every lot, and the arithmetic does not support it: peptide mapping on every batch would raise the analytical cost per vial by a multiple, and the failure mode it protects against — a wholly substituted or permuted sequence — is not the one we see evidence of.
The better allocation, on our present assessment, is orthogonal. Identity by high-resolution intact mass on every lot, at a resolving power sufficient to resolve a one-dalton shift at the parent mass, with the spectrum reproduced. Sequence confirmation once per synthesis campaign rather than once per lot, on the reasoning that the sequence is a property of the process and the lot-to-lot risk is degradation rather than misconstruction. And a chromatographic method shallow enough to separate the deamidated form, because that is the change most likely to have occurred between the certificate and the buyer.
That package is not expensive. Two of the twenty companies in our dossier programme already do something close to the first item, and one has told us it is costed for the second. Whether any of it happens depends on whether buyers ever ask, which is a market question rather than a scientific one and is therefore the harder of the two.
The next piece in this department takes the document rather than the instrument as its subject: what a certificate of analysis contains, what it systematically omits, and how to check one in the time it takes to drink a coffee. Identity is one line on that page, and by the standards of the rest of it, one of the better-behaved ones.
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.
On your point about D-amino acids: chiral amino-acid analysis after hydrolysis is not exotic and several contract laboratories offer it. The obstacle is that hydrolysis itself racemises a few per cent of most residues, so the method has a blank problem, and interpreting a low-level D content is genuinely difficult rather than merely expensive.
— T. Wexford, Louisville, KY
An important qualification and we are glad to have it. The article implied the barrier was commercial when a substantial part of it is methodological. Recorded, and the section has been rewritten accordingly.
You state that fourteen of twenty suppliers report an MS identity test. Does that count reports supplied to you on request, or only what appears on the certificate a customer receives?
— D. Lockridge, Tulsa, OK
The former, which the table note now says explicitly. The count for what appears on a customer-facing certificate is lower in at least four cases, and we should have separated the two columns rather than merging them.
Sixteen years in a peptide plant and I have never once been asked by a customer which ionisation source we used. I have been asked hundreds of times for a purity figure to one more decimal place.
— M. Tsvangirai, Bulawayo
The claim that a reproduced spectrum is worth more than any number in the document seems overstated. Most buyers cannot read a spectrum, and a printed image invites false confidence rather than scrutiny.
— Y. Sasaki, Sapporo
Partly conceded. A spectrum is worth more to a reader who can read one, and this department exists partly to increase that number. But it is also an artefact that can be checked by a third party later, which a bare verdict is not, and that alone justifies printing it.
The supplier has not disputed the finding. It has not explained the gap either.
Follow the resin, not the catalogue.
We work through a single chromatogram twice, under two integration conventions, and show where the difference comes from.
Duplicate submissions under different names test within-laboratory repeatability, which is a different quantity from between-laboratory reproducibility.
The evidence base here is the insulin injection-technique literature, which is large and transfers well on tissue questions.
Concentrations fall by half a week, so a month away leaves a small fraction of steady state. Resuming at the previous dose presents the receptor with a step it has not seen…