The impurity hiding underneath the parent peak
An orthogonal method separates on a different physical principle, so that species co-eluting in the first are likely to resolve in the second. Two runs of the same method at…
TheCompound Journal
Reporting on incretins, compounding & the peptide supply chain
Sterility
Four independent services underpin confidence in this market. All four are competent at chemistry. Microbiology is a different accreditation, a different facility and a different fortnight.
The explanation is structural rather than any failure of ambition. A purity run occupies an instrument for between twelve and forty minutes and produces a document the same week. A compendial sterility test requires aseptic transfer of the entire container contents into two growth media, incubation at two temperatures for fourteen days, and a facility qualified for that transfer, because a false positive from the analyst’s own sleeve is worse than no result. The test destroys the sample. Nothing about that sequence fits a service priced for private buyers submitting single vials.
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.
Where a product will tolerate it, moist-heat terminal sterilisation is the preferred route by a wide margin, for the simple reason that the object subjected to the lethal process is the sealed, filled, finished container. There is no subsequent opportunity for contamination, and the lethality delivered can be measured directly through the load.
Peptides make poor candidates. Autoclave conditions accelerate hydrolysis of the amide backbone, deamidation of asparagine and glutamine residues, and aggregation, and a cycle sufficient to guarantee microbial lethality will typically destroy a measurable fraction of the active substance. Lyophilised presentations do not escape the problem, because the solution is filled before it is dried, and the sterility of the finished cake is inherited from the sterility of that solution and the environment of the fill.
The consequence is that every product in this market is aseptically processed. That places the entire burden of sterility assurance on filtration, environmental control, component preparation and operator technique — precisely the four things about which the trade publishes nothing. The Journal states this as a structural observation, not as an accusation: the same is true of many legitimate aseptically filled products, and the difference lies in whether an inspectorate has looked.1
A stated negative is a fact a reader can use. An omission is a space a reader fills with an assumption.
The standing rule in this departmentSterilising-grade filtration through a membrane of 0.22 micron nominal rating is the operation on which aseptic processing rests. The membrane is qualified by challenge with a small bacterium at high concentration under the process conditions, and a filter that permits no passage under that challenge is accepted as sterilising for that fluid.
The critical practice is not the filtration but the integrity test that follows it. A membrane can be damaged during installation, during sterilisation, or by pressure excursions in use, and a damaged membrane looks exactly like an intact one. Bubble point, diffusive flow and pressure hold tests each detect a breach by measuring gas behaviour across a wetted membrane, and a post-use test is the only evidence that the filter was intact while the product was passing through it. A pre-use test alone establishes nothing about the state of the membrane at the end of the run.
This is the question the Journal has found most useful when assessing whether a fill operation is a real one. It is specific, it has a yes or no answer, the answer is recorded in the batch documentation as a matter of course, and it cannot be answered plausibly by anybody who is not actually running the process.
| Vial | Label | Result (EU/vial) | EU per mg peptide | Against 350 EU/h allowance |
|---|---|---|---|---|
| 1 | 5 mg | <0.5 | <0.10 | Below quantitation |
| 2 | 5 mg | 1.2 | 0.24 | 0.3% |
| 3 | 10 mg | 2.8 | 0.28 | 0.8% |
| 4 | 5 mg | <0.5 | <0.10 | Below quantitation |
| 5 | 5 mg | 14.6 | 2.92 | 4.2% |
| 6 | 10 mg | 3.1 | 0.31 | 0.9% |
| 7 | 15 mg | 6.4 | 0.43 | 1.8% |
| 8 | 5 mg | 38.2 | 7.64 | 10.9% |
| 9 | 5 mg | 0.9 | 0.18 | 0.3% |
| 10 | 10 mg | 4.7 | 0.47 | 1.3% |
| 11 | 5 mg | <0.5 | <0.10 | Below quantitation |
| 12 | 5 mg | 112.0 | 22.40 | 32.0% |
| Single determinations by kinetic chromogenic assay at one accredited contract laboratory; method suitability established for each matrix; results expressed per vial as received and per mg of labelled nominal mass. The final column expresses the whole vial against the hourly allowance for a 70 kg subject and is arithmetic, not a safety assessment. Twelve vials from nine suppliers is not a survey. | ||||
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.
The compendial test proceeds by one of two routes. In membrane filtration, the entire contents of the sampled containers are passed through a retentive membrane which is then divided between two growth media. In direct inoculation, the contents are transferred into the media directly. The media are a fluid thioglycollate medium incubated at thirty to thirty-five degrees for anaerobes and aerobes, and a soybean-casein digest medium incubated at twenty to twenty-five degrees for fungi and aerobes. Incubation runs for fourteen days with periodic examination for visible growth.
The number of containers sampled depends on batch size, and for a parenteral batch above five hundred containers the requirement is twenty. Every one of those twenty is destroyed. Method suitability must be demonstrated separately, because a preserved formulation or an antimicrobial residue can inhibit the very growth the test is looking for, and the bacteriostatic and fungistatic properties of the article have to be neutralised or shown absent before a negative result means anything.2
A reader who takes nothing else from this section should take the sample size. Twenty containers, fourteen days, destroyed. That is the entire empirical basis of the finished-product sterility claim, and it is why the process argument carries the weight.
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.3
Injectable products are required to be essentially free of visible particulates, and every container in a regulated batch is inspected against dark and light backgrounds under defined illumination. The detection threshold for a trained inspector is somewhere near fifty microns for a contrasting particle, and the inspection is a hundred per cent operation rather than a sample-based one, which makes it unusual among quality tests.
Subvisible particles are counted instrumentally. Light obscuration is the primary compendial method, with microscopic membrane counting as the alternative when the sample defeats it. For a small-volume injection the limits are six thousand particles at or above ten microns and six hundred at or above twenty-five microns per container. Products that are themselves proteinaceous get a distinct chapter, because inherent aggregates complicate the counting and the method has to distinguish them from extrinsic contamination.
For a private buyer, visible inspection is the one quality operation available without instrumentation, and it is worth doing carefully: a lyophilised cake that has collapsed to a glassy disc, a reconstituted solution showing a faint tyndall haze on rotation, a fibre against a dark card. None of those is a sterility finding. All of them are evidence about how the product was made and how it has travelled.45
Autoclaved vials are sterile. Autoclaved vials are not depyrogenated, and the difference is the whole subject.
On glass preparationWe 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.
| Question | Answered | Declined | No reply |
|---|---|---|---|
| Fill route: aseptic or terminal | 9 | 4 | 7 |
| Pre-filtration bioburden determined | 7 | 4 | 9 |
| Filter integrity tested post-use | 5 | 4 | 11 |
| Aseptic process simulation performed | 3 | 5 | 12 |
| Endotoxin determined on finished product | 4 | 4 | 12 |
| Questions were sent twice, four weeks apart, to the published contact address of each company. Declined denotes a reply that engaged with the question and refused it; no reply denotes two unanswered messages. Four of the declines cited the research-use-only basis of sale, which the Journal regards as a legally sound answer. | |||
Between the second and fourth quarters the Journal purchased fourteen vials of lyophilised research peptide from nine suppliers, at catalogue prices, through ordinary channels and without identifying ourselves. Each was photographed sealed, logged, and stored at two to eight degrees on arrival. Twelve were submitted to a contract laboratory accredited to the general competence standard for testing laboratories for bacterial endotoxin determination by kinetic chromogenic assay, with method suitability established for each matrix. Two were submitted for a compendial sterility test by membrane filtration, which destroyed both.
We disclose the following limitations without being asked. Fourteen vials from nine suppliers is not a survey. Single determinations carry the uncertainty of single determinations. A negative sterility result on one vial says nothing about the batch it came from, for exactly the statistical reasons set out above. And a vial that has crossed a border in a padded envelope has a thermal and mechanical history we cannot reconstruct.
What the exercise establishes is narrower than a survey and, we think, worth publishing: that the tests exist, that they are commercially available to a private purchaser at a known price, that the numbers they return are interpretable against a calculable limit, and that nothing prevented any of the nine suppliers from commissioning them first.6
Nothing the Journal asks for here requires a regulator, an inspectorate or a change in the law, and none of it is commercially sensitive. All five items are already known to whoever released the batch.
First, state the fill route: aseptic or terminal, and if aseptic, in what class of environment. Second, state the pre-filtration bioburden result against its specification, or state that bioburden is not determined. Third, state whether the sterilising filter was integrity-tested after use. Fourth, report bacterial endotoxin per milligram of peptide, with the method and the inhibition-enhancement result, or state that it was not determined. Fifth, where a sterility test has been performed, state the batch size, the number of containers tested and the method, so that a reader can do the arithmetic in the section above. Every one of the five is an ordinary element of a release specification for a biological product, and none of them is an invention of this publication.7
A certificate carrying those five lines would remain a one-page document and would be worth several times what the current one is worth, principally because four of the five lines are permitted to say no. A stated negative is a fact a reader can use. An omission is a space a reader fills with an assumption, and the assumption is always more favourable than the truth would have been.
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.
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