Who signed this, and what did they undertake by signing it
A manufacturer’s certificate is a self-declaration. An accredited laboratory’s report is a third-party measurement. The trade prints both under one heading.
TheCompound Journal
Reporting on incretins, compounding & the peptide supply chain
Analytics
A brief and unromantic tour of the interface between a liquid sample and a vacuum.
A mass spectrometer cannot weigh a peptide. It can only measure the trajectory of a charged particle through electric and magnetic fields, from which a mass-to-charge ratio is calculated. Everything reported on a certificate as a molecular weight is therefore a two-step inference: an ion was observed at a particular mass-to-charge ratio, and a charge was assigned to it. Both steps can go wrong, and both are omitted from almost every identity statement circulating in this trade. The first question to ask of any mass figure is not whether it matches. It is how the molecule was charged.
It is worth being exact about what a mass spectrometer does, because the imprecision propagates. The instrument generates ions from a sample, separates them according to the ratio of their mass to their charge, and counts them at a detector. The horizontal axis of every spectrum is mass-to-charge, conventionally written m/z and expressed in thomsons or in dimensionless units depending on the vendor’s software. Nothing is weighed. Nothing is measured against a reference mass in the sense that a balance measures against a calibration weight.
What follows from this is that every molecular weight on every certificate of analysis in this market is a calculated quantity, derived from a measured m/z by assigning a charge and subtracting the mass contribution of whatever adducted to the molecule to give it that charge — usually protons, sometimes sodium, occasionally potassium or ammonium. The assignment is normally straightforward and normally correct. It is nonetheless an assignment, and when it goes wrong it goes wrong by an integer factor, which is the kind of error that produces confident nonsense rather than a plausible discrepancy.
The practical consequence for a reader is a habit: when a mass figure appears, ask what was observed and what was inferred. A report that gives both — the m/z, the charge, and the derived neutral mass — has answered the question before it was asked.
Electrospray ionisation works by pumping a solution of the analyte through a fine capillary held at a potential of a few kilovolts relative to the instrument’s entrance. The liquid emerging from the tip forms a cone and then a jet of charged droplets. As solvent evaporates the droplets shrink, the charge density on their surfaces rises, and at the point where electrostatic repulsion exceeds surface tension they fission into smaller droplets. Repeat this enough times and what is left is a bare, charged analyte ion in the gas phase.
Because the charge is acquired in solution and retained through desolvation, a peptide with several basic residues will carry several protons, and the population of ions reaching the analyser is distributed across charge states. This is the defining characteristic of electrospray spectra and the reason they look bewildering to a first-time reader: a single pure compound produces four or five prominent peaks, none of them at the molecular weight.
The distribution is not noise. It carries information about the number of accessible basic sites and about the conformational state of the molecule in solution, and it shifts predictably with mobile-phase composition and pH. It also has a practical advantage that matters for identity work: dividing the mass by three or four brings a large peptide into the range where instruments achieve their best resolving power and accuracy.1
Print the spectrum. It is the cheapest available improvement to identity reporting and it consists of reproducing a picture you already have.
The Journal’s request to laboratories, restated annuallyMatrix-assisted laser desorption ionisation takes a different route. The peptide is mixed with a large molar excess of a small organic compound that absorbs strongly at the laser wavelength — α-cyano-4-hydroxycinnamic acid and sinapinic acid are the usual choices for peptides and proteins respectively — and the mixture is dried on a metal target. A pulsed ultraviolet laser strikes the crystal, the matrix absorbs the energy, and a plume of matrix and analyte is ejected into the vacuum with the analyte largely intact and mostly singly protonated.
Two consequences follow. First, MALDI spectra are simple: one predominant ion per compound, at the molecular weight plus one proton, which makes them easy to read and easy to print on a certificate. Second, MALDI is markedly more tolerant of salts, buffers and heterogeneous samples than electrospray, which is why it survives in routine synthesis monitoring where electrospray would require a chromatographic clean-up first.
The trade-offs are equally real. The matrix produces intense chemical background below roughly a thousand daltons, which obscures small fragments. Ion yield varies between compounds and between spots on the same target, making MALDI a poor quantitative technique. And the achievable mass accuracy on a linear instrument at peptide molecular weights is measured in hundreds of parts per million unless a reflectron and delayed extraction are in use.2
| Change | Mass shift (Da) | Shift (ppm at 4000 Da) | Resolving power required |
|---|---|---|---|
| Oxidation (one O added) | +15.995 | 3999 | ~250 |
| Deamidation of Asn or Gln | +0.984 | 246 | ~4100 |
| Disulphide formation | −2.016 | 504 | ~2000 |
| Pyroglutamate formation | −18.011 | 4503 | ~220 |
| TFA adduct | +113.993 | 28498 | ~35 |
| Gln replaced by Lys | −0.036 | 9 | ~110000 |
| Leu replaced by Ile | 0.000 | 0 | not resolvable |
| L to D inversion | 0.000 | 0 | not resolvable |
| Required resolving power estimated as the parent mass divided by the mass shift, which is the minimum needed to present the two species as separate peaks; in practice a factor of two above this figure is needed for reliable quantitation of the minor species. | |||
The choice between the two techniques is not a matter of quality but of question. A synthesis chemist watching a coupling proceed wants a fast, salt-tolerant check that the chain has grown by the expected residue, and MALDI on a bench instrument answers that in minutes. An analytical laboratory asked whether a submitted vial contains the labelled compound and nothing closely related to it needs the resolving power and the accuracy that electrospray into a high-field analyser provides, coupled to a chromatographic separation so that species which co-elute can at least be assigned to retention times.
Both appear in this market, and reports rarely distinguish them. That matters because the two techniques have different blind spots. MALDI can induce loss of labile modifications during desorption, so a phosphorylated or otherwise fragile species may be under-represented. Electrospray suppresses ionisation of some analytes in the presence of others, so a minor component of a mixture may be absent from a spectrum in which it is genuinely present.
A certificate stating the source therefore tells a reader which class of error to consider. The Journal has stopped asking suppliers for more testing and started asking them for this line instead, on the grounds that it costs nothing and changes what the existing test can be said to support.
This publication applies one rule to every identity claim it reports, and it is worth stating in isolation because it governs the rest. A mass measurement supports a statement about composition. Only a fragmentation or mapping experiment supports a statement about sequence. Where a source says identity was confirmed, we report that a mass was measured, unless we have seen evidence of the second kind.
The rule has consequences we accept. It makes our coverage read as more sceptical than the underlying documents, because the documents claim more than they establish. It occasionally irritates laboratories which have in fact done sequence-level work and have simply not printed it, and the remedy there is a two-line email which we are glad to receive. And it means we cannot describe any research-grade vial in this market as sequence-confirmed, because on the evidence available to us almost none are.
What the rule is not is an accusation. Nothing in this article suggests that vendors are selling material other than what they label, and the Journal has no evidence of that in respect of any company it covers. The claim is narrower and, we think, harder to argue with: the documentation in general circulation does not have the discriminating power that the language on it implies, and the gap between the two is where every avoidable dispute in this market begins.
What remains genuinely open is stereochemistry. Racemisation during synthesis is a well-described chemical risk, it is invisible to every routine test sold to private buyers in this market, and the Journal has no basis for estimating how common it is. We would rather say that plainly than fill the gap with an inference. If any of the four independent services begins offering chiral amino-acid analysis at a price a private buyer would pay, this department will report the results.
A manufacturer’s certificate is a self-declaration. An accredited laboratory’s report is a third-party measurement. The trade prints both under one heading.
Reported from the analysis, not from a warning notice.
The Journal’s standing position: a mass that matches is necessary evidence of identity and nowhere near sufficient.
A badge asserts that something was tested. It does not assert what, when, on whose sample, by what method, or whether the lot on sale is the lot that was tested.
A flag is a probability statement about a population. It is not a statement about the person holding the printout.
Deamidation adds 0.98 daltons. On a low-resolution instrument at incretin molecular weights, that is inside the noise.