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.

Instrumentation

What a mass spectrometer does to a peptide before it measures anything

The ionisation method determines the charge states you see, the adducts you must account for, and the modifications you might destroy in the process.

Ask a laboratory which ionisation source produced a spectrum and you learn a great deal about the spectrum before you have looked at it. Electrospray on a modern instrument will give a peptide of four thousand daltons a family of multiply charged ions and a mass accuracy in the low parts per million. A linear MALDI time-of-flight will give a single predominantly singly charged ion and an accuracy measured in hundreds of parts per million. Both can answer the question, is this the right compound. Only one of them can answer the question, is this the right compound and nothing very close to it.

The instrument does not weigh anything

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, and why it produces a family of ions

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

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 detect

MALDI, the matrix, and the singly charged ion

Matrix-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

Instrument classes and what each can be asked to support
AnalyserTypical resolving powerTypical mass accuracyCan assign charge from isotope spacing?
Single quadrupole~1,000 (unit)100–500 ppmNo
Linear ion trap2,000–4,00050–200 ppmAt low m/z only
Linear MALDI-TOF500–1,500200–1,000 ppmNo
Reflectron MALDI-TOF10,000–20,0005–50 ppmYes
Quadrupole time-of-flight30,000–60,0001–5 ppmYes
Orbital trap60,000–500,000<1–3 ppmYes
FT-ICR>1,000,000<1 ppmYes
Figures are representative of instruments in general service and are quoted by manufacturers at favourable m/z values; performance at peptide molecular weights is generally lower. Accuracy figures assume routine calibration, and the better end of each range generally requires an internal calibrant.

Which source a laboratory chooses, and why it should say so

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.

Monoisotopic against average mass, with the numbers

The monoisotopic mass of a molecule is calculated using the exact mass of the most abundant stable isotope of each element: carbon-12 at exactly 12, hydrogen-1 at 1.00783, nitrogen-14 at 14.00307, oxygen-16 at 15.99491. The average mass uses the standard atomic weights, which are abundance-weighted means over the natural isotopic distribution: carbon at 12.011, nitrogen at 14.007, and so on. For a small molecule the two differ negligibly. For a peptide of four thousand daltons containing roughly one hundred and ninety carbon atoms, the difference is on the order of two and a half daltons.

Which one a laboratory should quote depends on what it measured. If the instrument resolved the isotopic envelope, the monoisotopic peak is identifiable and monoisotopic mass is the correct quantity to report. If the envelope was not resolved — which is the ordinary situation on a linear time-of-flight instrument at this molecular weight — the centroid of the unresolved cluster approximates the average mass, and that is what should be quoted.

The error is not in choosing one convention. It is in comparing across them. An observed monoisotopic value set against a theoretical average value will disagree by two to three daltons at incretin molecular weights, and the resulting apparent discrepancy has the size and shape of a real analytical finding. Any identity statement that does not name its convention is one step removed from being uncheckable.3

4.83.62.41.200.85BPC-1573.15Liraglutide2.46Semaglutide2.88Retatrutide2.98Tirzepatide4.27Tesamorelindaltons
Figure. The gap between average and monoisotopic mass, in daltons, for six peptides. Any comparison across the two conventions carries an error of this size before the measurement has begun.

The charge-state arithmetic, worked

For a peptide of neutral monoisotopic mass M observed as a protonated ion carrying z protons, the mass-to-charge ratio is (M + z × 1.00728) divided by z, where 1.00728 is the mass of a proton — the mass of a hydrogen atom less the mass of an electron, a distinction that matters at parts-per-million accuracy and not at all below it.

Run this for a peptide of average mass 4113.58. The singly protonated ion appears at 4114.59. The doubly protonated ion appears at 2057.80, the triply at 1372.20, the quadruply at 1029.40 and the quintuply at 823.72. All five describe the same molecule. A reader shown only the fourth of those figures, without a charge assignment, would reasonably conclude the vial contained a peptide of about a thousand daltons.

Inverting the calculation is how the neutral mass is recovered: multiply the observed m/z by the charge and subtract z proton masses. Doing this for two or three charge states from the same spectrum and finding agreement to within the instrument’s stated accuracy is the standard internal consistency check, and it is the check that catches a misassigned charge. A single m/z with a single assumed charge has no such redundancy, which is one reason electrospray with a visible charge-state envelope is more informative than a single MALDI peak even when both instruments are equally well calibrated.

Mass accuracy, and what a tolerance ought to be

Mass accuracy is the difference between the measured mass and the true mass, expressed in parts per million of the measured value. It depends on calibration, on the stability of the instrument’s electronics and temperature, on the number of ions arriving at the detector, and on whether an internal calibrant was co-analysed with the sample. It is not a fixed property of an instrument; it is a property of a measurement made on an instrument on a particular day.

Certificates in this market seldom state a tolerance at all. Where they do, the figure is usually expressed in daltons rather than parts per million and is generous: ±0.5 or ±1.0 dalton is common, which at incretin molecular weights corresponds to 120 to 240 parts per million and is achievable on almost any instrument sold in the last thirty years. A tolerance that no plausible measurement could fail is not an acceptance criterion. It is a formality.

What a meaningful criterion looks like is not mysterious. State the theoretical mass and its convention, state the observed mass, state the deviation in parts per million, and state the limit above which the result would have been reported as non-conforming. Four numbers, all of them already known to the analyst. The compendial framework for validating an analytical procedure asks for exactly this kind of specificity about what a test can discriminate, and the framework predates this market by decades.4

Glutamine against lysine is thirty-six thousandths of a dalton. Most identity confirmations sold in this market cannot see it.

A mass that matches, and the space of things it does not exclude

Suppose a laboratory reports an observed monoisotopic mass within two parts per million of the theoretical value for the labelled peptide. What has been established is that the sample contains a species whose elemental composition is either identical to the target or differs from it in a way that happens to conserve mass to within that tolerance. This is genuinely strong evidence, and it is not identity.

The set of molecules consistent with that observation includes every permutation of the target sequence, every substitution of leucine for isoleucine and vice versa, every inversion of stereochemistry at any of the chiral centres, every migration of aspartate to isoaspartate, and — at tolerances above roughly ten parts per million — every glutamine-for-lysine exchange. It also includes any unrelated molecule of coincidentally matching composition, though in practice the chromatographic retention time excludes most of those.

The proteomics literature has spent two decades formalising exactly this problem under the heading of identification confidence, developing false-discovery-rate frameworks precisely because a matching mass is a weak identifier and a matching fragmentation pattern is a strong one.5 The research-peptide trade has borrowed the instrument from that field and not the epistemology, and the result is a market in which the word confirmed is applied to the weakest available evidence.

Monoisotopic and average mass for peptides commonly encountered in this market
CompoundMonoisotopic (Da)Average (Da)Difference (Da)Difference (ppm)
BPC-1571418.681419.530.85600
Liraglutide3748.053751.203.15840
Semaglutide4111.124113.582.46598
Tirzepatide4810.474813.452.98619
Retatrutide4728.424731.302.88609
Tesamorelin5131.635135.904.27831
Values calculated from published molecular formulae for the free-base forms and rounded to two decimal places; salt forms and acylation variants shift these figures. The final column shows why a certificate that does not state its convention cannot be checked: the convention difference alone exceeds any plausible acceptance tolerance.

Sequence coverage as a reported number

Where a peptide map is performed, the headline output is a coverage figure: the percentage of residues in the expected sequence accounted for by identified fragments. Ninety-five per cent coverage sounds close to complete and is worth interrogating, because the five per cent that is missing is not randomly located. Very short fragments elute in the solvent front and are lost. Very hydrophobic fragments retain on the column. Regions between closely spaced cleavage sites produce peptides too small to identify unambiguously.

The consequence is that the uncovered fraction tends to sit in the same places for a given protease and a given sequence, which means a laboratory reporting ninety-five per cent coverage in run after run has ninety-five per cent coverage of a specific ninety-five per cent. A second digest with a different enzyme is the conventional remedy, and a report that used two orthogonal proteases is doing something a report using one cannot.

For a reader assessing a document, the useful questions are which enzyme, what coverage, and whether the uncovered residues are identified. A map that names the missing stretch has told you where the residual uncertainty lives. A map that reports a percentage alone has told you a number whose meaning depends on information it withheld — which is, in a different guise, the same complaint this department makes about purity figures reported without a gradient.

How an identity result travels once it leaves the laboratory

Follow a mass spectrum through the market and its meaning changes at every step. A laboratory issues a report to whoever submitted the sample, stating what was observed on a named instrument on a named date. The submitter — a vendor, in most cases — extracts a figure and a verdict onto a certificate of analysis for the lot. A reseller reproduces the certificate, or a portion of it. A listing page distils the whole chain into a phrase: identity verified.

Nothing dishonest need happen at any step for the final phrase to support far more than the original report does. The instrument’s resolving power is lost at step two. The convention behind the theoretical mass is lost at step two or three. The date, the batch and the submitter’s identity survive unevenly. By the time the claim reaches a buyer it has become a property of the product rather than a record of a measurement on one vial from one lot on one day.

This is the structural reason the Journal reports identity claims by asking for the underlying laboratory report rather than the certificate. When a supplier supplies it, the claim usually holds up and often turns out to be stronger than the certificate suggested. When a supplier cannot locate it, that is itself information about how far back the documentary chain reaches, and we report that too, without inferring anything about the material.

The standing rule in this department

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.

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.

References

  1. “Charge-state distributions in electrospray ionisation of peptides and their dependence on solution conditions.” Journal of the American Society for Mass Spectrometry. 2015;26(8):1319–1332.
  2. “Matrix selection, sample preparation and mass accuracy in MALDI time-of-flight analysis of synthetic peptides.” Rapid Communications in Mass Spectrometry. 2014;28(19):2077–2088.
  3. European Directorate for the Quality of Medicines. European Pharmacopoeia, general chapter 2.2.43, “Mass spectrometry.” Strasbourg.
  4. United States Pharmacopeia. General chapter ⟨1225⟩, Validation of Compendial Procedures. USP–NF.
  5. “Statistical validation of peptide identifications: false discovery rates and the limits of mass-based assignment.” Molecular & Cellular Proteomics. 2013;12(11):3153–3163.

Letters to the Editor

2 printed

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.

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.

P. Havlíček, Brno

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.

B. Achterberg, Utrecht

The Journal replies

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.

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