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.

Bioburden

Why a dead-clean sterile filter can pass pyrogen straight through

Bacterial endotoxin is a heat-stable lipopolysaccharide from the outer membrane of Gram-negative organisms. It survives sterilisation, passes a sterilising filter, and is the reason pyrogen testing exists as a separate discipline.

Correction

An earlier version described dye ingress testing as a deterministic leak test method. It is probabilistic, and the compendial guidance is explicit in preferring deterministic methods.

Bacterial endotoxin is the single most under-discussed contaminant in this market, and the reason is that it does not behave like the contaminants people intuitively worry about. It is not alive. It is a lipopolysaccharide fragment of the outer membrane of Gram-negative bacteria, released in quantity when those bacteria die. It is thermostable enough to survive an autoclave cycle comfortably, small enough to pass a 0.22 micron sterilising filter without hindrance, and pyrogenic in the low nanogram range. A preparation can be perfectly sterile — no viable organism anywhere in the container — and carry an endotoxin burden well above any defensible parenteral limit.

What endotoxin is, and why sterility does not address it

Endotoxin 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

The endotoxin limit, calculated

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

Sterile is a claim about a provenance, not a description of a state. Almost all the confidence attaches to the process, not the test.

Perpetua Nwachukwu, Contributing Writer, Laboratory Medicine

Low endotoxin recovery, and the clean result that is wrong

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

Five determinations: method, sample fate and what a private buyer pays
DeterminationMethod familySampleTurnaroundRelative cost
PurityReversed-phase HPLC, UVA few mg, non-destructive to batch2–7 days
IdentityLC–MS, optionally MS/MSA few mg3–10 days1–2×
Peptide contentElemental N or quantitative AAASeveral mg2–4 weeks2.5–3×
Bacterial endotoxinKinetic chromogenic LAL or rFC<1 mL reconstituted3–10 days2–3×
SterilityMembrane filtration, 14-day incubationEntire container, destroyed3–4 weeks6–10×
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.

Depyrogenation, and the step that gets skipped

Because endotoxin survives sterilisation, glass components require a separate treatment. The standard is dry heat: a tunnel or oven cycle at two hundred and fifty degrees or above, validated to achieve at least a three-log reduction in a deliberately applied endotoxin challenge. Vials emerging from a qualified depyrogenation tunnel are both sterile and pyrogen-free, and they remain so only if the subsequent handling maintains it.

Elastomeric closures cannot take that treatment and are instead washed, siliconised and steam-sterilised by a validated cycle, with endotoxin control achieved by the washing step and specified as a limit per stopper. Water for injection is controlled at source, with a compendial endotoxin specification, and a water system is the commonest origin of a pyrogen problem in an otherwise competent facility.

Depyrogenation is also, in the Journal’s experience of asking, the step most frequently absent from descriptions of small fill operations. Autoclaved vials are sterile. Autoclaved vials are not depyrogenated, and an operation that describes its glass preparation solely in terms of autoclaving has told you something specific about what it has not done. We put this point to eleven correspondents; two said their glass is depyrogenated by dry heat with a validated cycle, and one asked us what depyrogenation was, which we took as a straight answer and a useful one.

What we submitted, and what came back

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.4

111805019-1210 containers20 containers100 containers0.10.512510true contamination rate (% of containers)probability the batch passes (%)
Figure. Probability that the compendial sterility test passes a batch, as a function of true contamination rate, for three sample sizes. The twenty-container sample required for a batch above five hundred units is the middle series.

We will keep asking the five questions, printing the answers, and recording the refusals as refusals. Two companies changed their certificates after the first round of this correspondence, which is a small result for a year of letters and rather better than none. Documents to letters@compoundjournal.com; disputes about anything above to standards@compoundjournal.com.

References

  1. “Endotoxin detection and control in parenteral manufacture: a review of methods and limits.” Journal of Pharmaceutical Sciences. 2020;109(1):18–31.
  2. European Pharmacopoeia. Chapter 5.1.10 — Guidelines for Using the Test for Bacterial Endotoxins. Council of Europe, Strasbourg.
  3. “Low endotoxin recovery in biopharmaceutical formulations: mechanisms and hold-time study design.” PDA Journal of Pharmaceutical Science and Technology. 2017;71(6):452–467.
  4. International Organization for Standardization. ISO/IEC 17025:2017 — General requirements for the competence of testing and calibration laboratories. Geneva, 2017.

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