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.

Freight

Collapse temperature, and the hour of the cycle where shelf life is lost

Lyophilisation does not stop degradation. It slows every pathway by removing the solvent that most of them require, and the residue of solvent that remains sets the rate.

A freeze-dried peptide looks inert, and the appearance is misleading in a specific and useful way. Lyophilisation removes bulk water by sublimation from the frozen state and then removes a further fraction of bound water by desorption at low pressure, leaving an amorphous solid in which molecular mobility is very low. Low is not zero. Every degradation route available to a peptide in solution remains available in the solid state, running at a rate set principally by how much water is left and by how far the storage temperature sits below the glass transition of the dried matrix. A lyophilised product is not stable. It is slow, and its slowness is a manufacturing achievement rather than a property of the molecule.

A shelf life is a claim about a condition

Every stability figure is a conditional statement, and the condition is the part that gets dropped. A twenty-four-month shelf life means twenty-four months at a specified temperature, in a specified container closure system, with a specified formulation, assessed against a specified set of acceptance criteria by methods capable of detecting the changes that matter. Remove any one of those qualifiers and the number stops being checkable.

The trade routinely reports the number and none of the qualifiers. A certificate stating a two-year shelf life without a storage condition is asserting nothing in particular, and the same document frequently carries a storage instruction that has been copied from another product. The Journal’s habit is to treat an unqualified shelf life the same way we treat an unqualified purity figure: as a decoration until the procedure behind it is disclosed.

There is also a vocabulary problem worth clearing up. An expiry date states that material should not be used beyond it. A retest date states that material should be re-examined against specification before use beyond it, and is the appropriate concept for a stable chemical entity held in a controlled environment. Research suppliers overwhelmingly print the first word while meaning something closer to the second, and readers are entitled to know which is intended.1

What the drying cycle actually does

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.2

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 arithmetic

Collapse temperature and the glass transition

An amorphous solid does not melt at a defined temperature; it softens over a range, and the midpoint of that range is the glass transition. For a frozen solution the relevant quantity is the glass transition of the maximally freeze-concentrated phase, and for the dried cake it is the glass transition of the residual solid. Both matter, at different stages, and both depend on composition and on water content.

During primary drying the product temperature must stay below the collapse temperature, which sits a little above the glass transition of the freeze-concentrated phase. Above it the amorphous matrix has enough mobility to flow, the pore structure that permits vapour escape closes, and the cake collapses. Sucrose-containing formulations have a glass transition of the freeze-concentrated phase in the region of minus thirty-two degrees, which imposes a genuinely cold and therefore slow primary drying stage. Mannitol behaves differently because it crystallises, giving a mechanically robust cake at the cost of losing the protective amorphous phase.

Water is a plasticiser: adding it lowers the glass transition of the dried solid substantially. This is the mechanism connecting residual moisture to storage stability. A cake with high residual water has a lower glass transition, and if storage temperature approaches it the matrix acquires mobility and every degradation pathway speeds up. A vial stored above its own glass transition is, chemically, a slow solution.

Degradation pathways: residue, condition and what detects it
PathwayResidues at riskAccelerated byMass changeDetected by
DeamidationAsn (fast at Asn-Gly), GlnWater, pH above neutral, heatNone (isoAsp) or +1 DaShallow RP gradient; isoAsp-specific methods
OxidationMet, Trp, His, Cys, TyrPeroxides, trace metals, light, oxygen+16 Da and multiplesLC–MS; RP shift
AggregationSequence-dependentInterfaces, shaking, freeze-thawMultiples of monomerSize-exclusion; light scattering
HydrolysisAsp-Pro, Asp-Gly, N-terminal GlnLow pH, heat, waterFragmentsRP-HPLC and MS on fragments
RacemisationAsp, Ser, CysHeat, extremes of pHNoneChiral 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.

Residual moisture, and how it is measured

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.

None of the twenty companies the Journal tracks reports residual moisture as a standard release test. 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.

The unfashionable finding: dried peptide is fairly tough

The alarmed version of this story would end with the excursions and leave the reader frightened. The evidence does not support that ending, and the Journal would rather publish the awkward finding than the satisfying one. A lyophilised peptide at low residual moisture, stored below its glass transition, has very little molecular mobility available for degradation. Short warm excursions in that state cost comparatively little, and the published solid-state stability literature is consistent on the point: dried peptides tolerate transient thermal insult far better than solutions do.

Two caveats keep this from being a licence. First, the protection depends on the cake being genuinely dry, which is the unmeasured variable this article keeps returning to. A cake at four per cent moisture has a much lower glass transition and much less margin. Second, repeated cycling is worse than a single excursion, particularly where a warm interval permits moisture redistribution within the cake or condensation inside the container on cooling.

The reordered risk list, on our reading, puts the reconstituted vial first, the cake with unknown residual moisture second, the multi-week domestic storage of an opened vial third, and the four hours at thirty-eight degrees in a courier van somewhere well below all of them. That ordering is not what the anxiety in this market reflects, and we think it is the more defensible one.3

We will keep instrumenting parcels. Nine is not a survey and we said so before publishing the traces; the value of the exercise is that it establishes what a parcel actually experiences, at what cost, using instruments any buyer can obtain. Readers who have loggered their own shipments are invited to send the traces, with the placement stated.

References

  1. International Council for Harmonisation. Q1A(R2): Stability Testing of New Drug Substances and Products. 2003.
  2. “Residual moisture, glass transition and solid-state stability of lyophilised peptide formulations.” AAPS PharmSciTech. 2020;21(5):173.
  3. United States Pharmacopeia. General Chapter ⟨1191⟩ Stability Considerations in Dispensing Practice. USP–NF, Rockville, MD.

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