Storage after reconstitution, and the evidence behind the numbers
The air shot before a pen injection removes air from the cartridge and confirms flow. Skipping it can mean a materially reduced dose, and it is skipped constantly.
TheCompound Journal
Reporting on incretins, compounding & the peptide supply chain
Aseptic fill
Every certificate circulating in this market answers a question about molecules. Almost none answers a question about organisms, pyrogens, or the integrity of the seal.
A certificate of analysis for a research peptide is, in the overwhelming majority of cases, a document about chemistry. It reports a chromatographic purity figure, sometimes a mass, occasionally a water content, and it is generated from a few milligrams of powder dissolved in a vial of mobile phase. Nothing in that procedure has any bearing on whether the sealed container it came from holds viable microorganisms, whether the powder carries pyrogenic material from an upstream water system, or whether the stopper has maintained a seal since the day it was crimped. The document is accurate and it is answering a different question.
Consider what happens physically when a certificate is produced. A few milligrams of lyophilised powder are weighed, dissolved in an aqueous mobile phase with an organic modifier, injected onto a reversed-phase column and separated over a programmed gradient while an ultraviolet detector records absorbance. The output is a trace. Software integrates the areas beneath its features, and the main peak area as a proportion of the total becomes the purity figure.
Every step of that procedure is blind to microbial contamination. A bacterial cell contributes no ultraviolet-absorbing peak at any retention time a peptide method would record. Endotoxin, a lipopolysaccharide, is not usefully detected at the wavelengths used for peptide bond absorbance and would in any case be present at a mass fraction several orders of magnitude below any integration threshold in commercial use. A vial holding a hundred colony-forming units and a vial holding none produce chromatograms that no analyst could distinguish.
This is not a defect of the method. Reversed-phase chromatography is an excellent way of determining what proportion of the chromatographically visible material is the intended species, and that is what it is being asked. The defect is in the reading. A document answering one question is being filed as evidence about five.
An aseptic process simulation, generally called a media fill, replaces the product with a sterile growth medium and runs the line exactly as it would run for a real batch: same components, same interventions, same operators, same duration. Every filled unit is then incubated and examined for growth. The purpose is to estimate the contamination rate of the process itself.
The arithmetic constrains the design. To support a claim that the contamination rate is below one unit in a thousand with reasonable statistical confidence, several thousand units must be filled with no contaminated unit recovered. Contemporary practice runs simulations of five to ten thousand units and treats a single positive as a signal requiring investigation rather than as an acceptable rate. The simulations are repeated at defined intervals and after any significant change to the line, and they are the closest thing in manufacturing to a direct measurement of aseptic capability.
One company in the Journal’s correspondence provided media fill records. They covered three simulations across eighteen months, at scales between four and six thousand units, with no recovered contamination. We report that because it is the only such record we have seen from this trade, and because it demonstrates that the documentation exists and can be shared when a company chooses to.
A dye ingress test can pass a container with a defect large enough to admit an organism, because the dye happened not to travel.
On probabilistic leak testingEndotoxin is a structural component of the outer membrane of Gram-negative bacteria: a lipopolysaccharide with a lipid A anchor that is the pyrogenic moiety, a core oligosaccharide, and a variable O-antigen chain. It is shed during growth and released in quantity on cell lysis, which means that killing a bacterial population does not remove its endotoxin and may increase the free concentration.
Three physical properties make it a separate discipline. It is thermally robust, surviving autoclave conditions with little loss of pyrogenicity, so terminal sterilisation is not a depyrogenation step. It is small and amphipathic, forming aggregates that pass a 0.22 micron membrane without difficulty, so sterilising filtration is not a depyrogenation step either. And it is active in humans at very low mass — the threshold pyrogenic dose corresponds to something in the region of a nanogram per kilogram of body weight.
The practical consequence is stark. A vial can pass a sterility test, contain no viable organism of any kind, and carry an endotoxin burden many times a defensible parenteral limit, because the organisms responsible died somewhere upstream in a water system, a holding tank or a poorly stored component.1
| Method | Readout | Quantitative | Glucan-sensitive | Animal-derived reagent |
|---|---|---|---|---|
| Gel-clot | Clot / no clot on inversion | Limit test; semi-quantitative by dilution | Yes | Yes |
| Turbidimetric, endpoint | Turbidity at fixed time | Yes | Yes | Yes |
| Turbidimetric, kinetic | Time to defined turbidity | Yes, wide range | Yes | Yes |
| Chromogenic, kinetic | Time to absorbance change | Yes, wide range | Yes | Yes |
| Recombinant factor C | Fluorescence or absorbance | Yes, wide range | No | No |
| All five are described in current compendial chapters, with recombinant reagents now addressed in dedicated chapters rather than solely as alternative methods. Glucan sensitivity is a source of false positives where cellulosic filter media contact the sample. | ||||
The limit is derived, not looked up. For a parenteral product other than an intrathecal one, the threshold pyrogenic dose is taken as five endotoxin units per kilogram of body weight per hour. The endotoxin limit for the product is that figure divided by the maximum dose per kilogram administered within an hour. For an intrathecal route the threshold falls to 0.2 endotoxin units per kilogram, a twenty-five-fold reduction that reflects the absence of the systemic buffering the bloodstream provides.
Work it for a concrete case. A seventy-kilogram subject has an hourly allowance of three hundred and fifty endotoxin units. A vial nominally containing five milligrams of peptide, reconstituted to two millilitres, from which a fifth of a millilitre is drawn, delivers a tenth of the vial contents. If the whole vial carried three hundred and fifty endotoxin units, that draw would deliver thirty-five — a tenth of the allowance. The limit expressed per milligram of peptide is what a certificate should carry, because it is the only form of the number that survives a change in reconstitution volume.
None of the arithmetic is difficult. What is missing from this trade is not the calculation but the measured numerator.2
The most uncomfortable finding in endotoxin testing over the past fifteen years is that certain formulation matrices cause added endotoxin to become undetectable over time. Spike a known quantity of reference endotoxin into a solution containing a non-ionic surfactant and a chelating buffer, hold it, and the recoverable endotoxin declines — sometimes to a small fraction of what was added — while nothing has been removed. The lipopolysaccharide aggregate state has changed, and the assay cannot see what it cannot bind.
The phenomenon is called low endotoxin recovery, and it matters because the combination of polysorbate with citrate or phosphate is extremely common in peptide and protein formulations. A hold-time study — spiking the actual product matrix and measuring recovery across the intended sample storage interval — is the standard mitigation, and it is now expected as part of method suitability for products in that formulation space.
The implication for a reader is narrow but worth stating. A negative endotoxin result on a surfactant-containing formulation, reported without a hold-time recovery study, is weaker evidence than it appears. A negative result on a reconstituted lyophilised peptide in plain water for injection, tested promptly, is considerably stronger.3
A lyophilised plug is a physical record of the cycle that produced it. A well-formed cake occupies close to the volume of the solution that was frozen, has a matte, uniform appearance, retains a defined edge where it met the glass, and dissolves rapidly and completely on addition of diluent. That appearance indicates that the product was frozen below its critical formulation temperature and dried without the structure collapsing.
Departures are informative. A shrunken, translucent or glassy plug suggests collapse during primary drying — the ice sublimed faster than the amorphous matrix could hold its structure — which is associated with higher residual moisture and a shorter shelf life. A cake that has partly detached and moves freely suggests mechanical handling after drying, which is cosmetic. A cake showing melt-back at the base, or a visible meniscus line, suggests a shelf temperature excursion. Slow or incomplete reconstitution suggests either collapse or an unfavourable surface.
None of these observations is a purity finding, a sterility finding or an endotoxin finding, and it is important not to overclaim. What they are is the only direct evidence about process control that arrives in the box, and reading them costs nothing. The Journal photographs every cake it receives before opening the vial, for exactly that reason.4
We asked all four of the independent services this market relies on what they can determine. Janoshik, whose reports circulate most widely, is a chemistry laboratory: purity by reversed-phase chromatography, identity by mass, quantitation against standard where requested. Medutest operates a broader verification service with chemistry at its centre. PeptideMeter is likewise a chemistry and verification operation. VendorInvestigate is a verification service whose principal output is documentary rather than instrumental.
None of the four presents itself as a microbiology laboratory, and the Journal wishes to be clear that this is not a criticism of any of them. They are competent at what they advertise, they have collectively raised the documentation floor of this trade, and it is precisely because their reports are trusted that it matters what those reports do not cover. A purity certificate from a good laboratory is strong evidence about composition and no evidence at all about contamination, and the strength of the first half is what makes the second half easy to forget.
Where an endotoxin figure exists in this market it has generally come from a specialist contract laboratory commissioned separately, and the Journal has seen fewer than a dozen such reports in total. Two of them accompanied vials we submitted ourselves.
Twenty containers, fourteen days, destroyed. That is the entire empirical basis of the finished-product sterility claim.
On the compendial sterility testThe Journal tracks the release documentation of twenty companies. On sterility and endotoxin the picture is close to uniform. Every one publishes a purity figure. A minority publish an identity confirmation. Two publish peptide content. On the microbiological attributes, the standard document is silent, and the silence is not annotated: there is no line reading that sterility has not been determined, which would at least be informative.
Some of the practices we would like to see are already in use somewhere in the group. SSA reports peptide content on its certificates, having begun after correspondence with this publication. CPC and SWB describe their fill environment in general terms on request. QST and BCH answered our five questions in full. WXT and FGP declined on the grounds that research-use products are not represented as sterile injectables, which is a legally sound answer that concedes the point of the exercise. Several others did not respond, and we record non-response as non-response rather than as evasion.
What we are criticising is a documentary convention, not the conduct of any company named here. None of the twenty has been shown to us to have misrepresented anything. The convention is that a chemistry certificate stands in for a release package, and it is a convention this trade adopted collectively and could abandon the same way.
| Determination | Method family | Sample | Turnaround | Relative cost |
|---|---|---|---|---|
| Purity | Reversed-phase HPLC, UV | A few mg, non-destructive to batch | 2–7 days | 1× |
| Identity | LC–MS, optionally MS/MS | A few mg | 3–10 days | 1–2× |
| Peptide content | Elemental N or quantitative AAA | Several mg | 2–4 weeks | 2.5–3× |
| Bacterial endotoxin | Kinetic chromogenic LAL or rFC | <1 mL reconstituted | 3–10 days | 2–3× |
| Sterility | Membrane filtration, 14-day incubation | Entire container, destroyed | 3–4 weeks | 6–10× |
| Relative cost is expressed against a single generic-gradient purity run as 1×, from quotations obtained by the Journal from contract laboratories during the year. Sterility pricing assumes a single container rather than a compendial sample of twenty. | ||||
The compendial material in this article is drawn from the current general chapters of the United States Pharmacopeia and the European Pharmacopoeia, read in the original rather than in summary, and from the international standards on aseptic processing and on laboratory competence. Where a chapter has changed status recently — as the recombinant reagent chapters have — we say so, because a reader consulting an older edition will find a different framing.
Where the Journal reports a number it obtained itself, it states the laboratory’s accreditation status, the method family, whether method suitability was established, and the number of determinations. Where we report what a company told us, we distinguish an answer from a refusal and a refusal from a non-response, because those three things are routinely collapsed in coverage of this trade and they are not the same.
Corrections to this department are handled by the standards desk, which reads every letter and records the outcome in the log. Readers who believe a paragraph here overstates its evidence are asked to write to standards@compoundjournal.com; readers with documents to send, including certificates they would like read, should write to letters@compoundjournal.com. We do not publish correspondents’ names without permission and we do not identify the source of a certificate.
Readers should hold two facts together, uncomfortable as the combination is. The frameworks described here — endotoxin limits, sterility assurance, particulate ceilings — govern licensed parenteral medicines, and research-use material is under no obligation to meet them. That is a legal fact about obligation. It is not a reassurance, and nobody involved in the trade has ever suggested it was.
The air shot before a pen injection removes air from the cartridge and confirms flow. Skipping it can mean a materially reduced dose, and it is skipped constantly.
The header identifies the batch, the table records the tests, and the footer says who is answerable. Two of the three are usually incomplete.
Every third-party report in this market describes a sample somebody chose to send. That choice is outside the laboratory’s control and outside its records.
Storage instructions in this market are close to uniform and almost never accompanied by the study that would justify them. Uniformity is a sign of convention, not of…
Every third-party report in this market describes a sample somebody chose to send. That choice is outside the laboratory’s control and outside its records.
A result on one vial generalises to a batch only if the vial was drawn in a way that makes it representative — and nobody records how it was drawn.