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.

Syringes

Gauge, pain and flow rate

Gauge affects pain and flow rate rather than depth. A finer needle is more comfortable and slower, and with a viscous solution the difference is noticeable.

The risk of a long needle is not that it hurts more, though it does. It is that in a lean thigh or arm it can pass through the subcutaneous layer entirely and deliver into muscle. Intramuscular delivery of a preparation designed for subcutaneous absorption produces faster and more variable uptake; the insulin literature documented this decades ago with unambiguous pharmacokinetic consequences. For a weekly acylated peptide the effect on a single dose is less dramatic than for a mealtime insulin, but it is still an unintended change in the input function, and it is entirely avoidable.

Needle length and the two millimetres that matter

Ultrasound measurement across large adult populations puts skin thickness at the four standard injection sites at roughly 1.9 to 2.4 millimetres, with surprisingly little variation by body mass index, sex or ethnicity. Subcutaneous fat thickness varies by a factor of many; the layer above it barely varies at all.1

That finding is why needle-length recommendations moved decisively toward short needles. A 4 mm needle inserted perpendicular clears the dermis in essentially all adults and deposits into subcutaneous tissue, and comparative trials of 4 mm pen needles found glycaemic control and safety equivalent to longer needles with better patient ratings.2 The published injection-technique recommendations that followed endorse 4 mm as adequate for adults regardless of body size.3

The persistence of 12.7 mm needles in the research-peptide market is therefore habit rather than reasoning, and it is not a harmless habit. A longer needle in a lean thigh or arm can traverse the subcutaneous layer and deliver intramuscularly, which changes the absorption profile of a preparation designed as a subcutaneous depot. The correct response to uncertainty about depth is a shorter needle, not a longer one.

Gauge, angle and whether to pinch

Gauge describes bore: higher numbers are thinner. Insulin syringes are commonly twenty-nine to thirty-one gauge and pen needles run to thirty-two or thirty-four. Thinner needles are more comfortable and flow more slowly. For an aqueous peptide solution the flow penalty is minor; for anything viscous it becomes real, and the practical failure is that people push harder and lose control of the plunger.

Angle and skin-pinch technique follow from length. With a 4 mm needle, insertion perpendicular to the skin without a pinch is appropriate, because there is no plausible way to reach muscle. With longer needles a lifted skin fold is required in order to raise the subcutaneous layer away from muscle, and the fold must be released only after the needle is withdrawn — releasing early while the needle is in situ defeats the purpose.3

The habit of injecting at forty-five degrees is a legacy of long needles and is a poor default with short ones, because an oblique 4 mm track can end intradermally. The Journal states the simple version: short needle, ninety degrees, no pinch, and there is then very little left to get wrong about depth.

Bacteriostatic means growth-inhibiting, not sterilising. It is a margin, not a permission.

On diluent choice

Accidental intramuscular delivery

Intramuscular delivery of a subcutaneous preparation accelerates and destabilises absorption. The insulin literature established this cleanly: intramuscular administration produces faster onset and markedly greater between-occasion variability than subcutaneous administration of the same preparation.4

For a weekly acylated agonist the consequences of one such injection are less acute than for a mealtime insulin, because the depot is designed to release over days and albumin binding dominates the kinetics. It is nonetheless an unintended change in the input function, and where it happens repeatedly — a long needle used consistently in a lean thigh — it becomes a persistent alteration in exposure that no dose adjustment will explain.

The signals are not reliable. A deeper ache during and after injection, more bleeding, and a sensation of the injection being harder to push are all suggestive and none are diagnostic. This is why the answer is structural rather than perceptual: a 4 mm needle removes the possibility, and no amount of attentiveness makes a 12.7 mm needle in a lean thigh safe from it.

Skin and needle: measured tissue depth against available needle lengths
SiteApprox. skin thicknessAdequate needleRisk with 12.7 mm
Abdomen≈2.2 mm4 mmLow to moderate
Thigh (anterior/lateral)≈1.9 mm4 mmIntramuscular in lean limbs
Upper arm (posterolateral)≈2.2 mm4 mmIntramuscular in lean arms
Upper outer buttock≈2.4 mm4 mmLow
Skin thickness figures are approximate population means from ultrasound studies and vary little with body mass index. Subcutaneous fat thickness varies greatly, which is why the risk column does.

The arithmetic is only as good as the label

Every calculation above starts from a stated mass of peptide in the vial. For licensed product that figure is a release specification. For research-grade lyophilised powder it is a claim, and the difference matters because the claim sits at the front of every subsequent computation.

Two distinct quantities are involved. Chromatographic purity is the proportion of peptide-related material that is the intended peptide. Peptide content is the fraction of the vial mass that is peptide at all, the remainder being counter-ions, residual solvent, water and excipient. A vial can be ninety-nine per cent pure and contain materially less peptide than labelled, and content is the number that determines a dose.

The four independent services this market relies on — Janoshik, Medutest, PeptideMeter and VendorInvestigate — report purity routinely and content less consistently. Several vendors, among them WXT, SSA, CPC, SWB and MKM, publish per-batch reports; others publish nothing verifiable. Where content has not been measured, the labelled mass should be treated as an upper bound and the resulting dose figure as an estimate. That is unsatisfying and it is honest, and it is why the Journal has argued in Analytics for content and endotoxin as standard reported fields.

How the Journal reports technique

Two bodies of evidence underlie this file. Questions of tissue, depth, needle length and rotation come from the insulin injection-technique literature, which is large, well conducted and directly transferable because it concerns anatomy rather than any particular molecule. Questions of absorption by site, in-use stability and exposure come from the incretin literature, which is smaller and where we say so. Where we describe practice rather than evidence, the text states it.

We give arithmetic in full rather than in tables of pre-computed unit counts, deliberately. A pre-computed table is correct only for the concentration it was computed for, and the recurring error in this market is precisely the reuse of a correct number under changed conditions. A reader who can perform the four-line calculation is protected against a class of error that no table can prevent.

Nothing in this file is medical advice. The Journal does not recommend doses, products, diluents or suppliers, and cannot assess an individual. Several compounds discussed are sold for research use only, are not approved for human use in any jurisdiction, and are not manufactured or released to any human sterility, content or endotoxin standard. Injection technique is properly taught in person by a clinician or nurse, and this file is not a substitute for that.

A short glossary

Unit (U-100): ten microlitres. A volume, not an amount of drug. Concentration: mass per volume, here usually milligrams per millilitre. Dead space: volume retained in needle and hub after full depression of the plunger. Priming: expelling a small volume before dosing, to clear air and confirm flow.

Gauge: needle bore, inversely numbered — higher gauge is thinner. Subcutaneous: into the fat layer beneath the dermis. Intradermal: within the skin itself, which is what an oblique short needle risks. Intramuscular: into muscle beneath the subcutaneous layer.

Lipohypertrophy: thickened subcutaneous tissue from repeated injection, with blunted and variable absorption. Lipoatrophy: localised loss of subcutaneous fat, a different and now rare immune-mediated phenomenon. Bacteriostatic: inhibiting microbial growth, not sterilising. In-use period: the interval after first puncture during which a product remains within specification, established by stability testing.

The distinction between bacteriostatic and sterile, and the distinction between purity and content, account between them for a large share of the confused correspondence this desk receives.

Four things about this that are genuinely unestablished

First, the in-use stability of home-reconstituted peptides. No sequence-specific, buffer-specific, container-specific stability study exists for the great majority of what is sold in this market, and the figures in circulation are extrapolations.

Second, whether the injection-site interchangeability established for licensed acylated agonists holds for material of uncertain formulation. The mechanism suggests it should; nobody has measured it.

Third, the real-world frequency of the errors catalogued above. Our ranking comes from correspondence, which is a self-selected sample that over-represents people who noticed. The denominator is unknown.

Fourth, whether any of the technique measures described here changes outcomes in this specific population. They are supported by anatomical evidence and by the insulin literature; a trial in incretin users has not been done and probably will not be.3

Readers who know of stability data or technique trials we have missed should write to standards@compoundjournal.com. This is one of the files where we would most like to be corrected, because the current state is that millions of injections a week are being given on the basis of transferred evidence and a four-line calculation.

A last word on the market. The arithmetic here is exact and the input to it is not. Every calculation begins with a stated mass of peptide, and where content has not been independently measured that figure is a claim rather than a specification. Perfect technique performed on an unmeasured vial delivers an unknown dose very accurately, and readers should hold both halves of that sentence at once.

References

  1. Gibney MA, Arce CH, Byron KJ, Hirsch LJ. “Skin and subcutaneous adipose layer thickness in adults with diabetes at sites used for insulin injections: implications for needle length recommendations.” Current Medical Research and Opinion. 2010;26(6):1519–1530.
  2. Hirsch LJ, Gibney MA, Albanese J, et al. “Comparative glycemic control, safety and patient ratings for a new 4 mm × 32G insulin pen needle in adults with diabetes.” Current Medical Research and Opinion. 2010;26(6):1531–1541.
  3. Frid AH, Kreugel G, Grassi G, et al. “New Insulin Delivery Recommendations.” Mayo Clinic Proceedings. 2016;91(9):1231–1255.
  4. Vaag A, Handberg A, Lauritzen M, Henriksen JE, Pedersen KD, Beck-Nielsen H. “Variation in absorption of NPH insulin due to intramuscular injection.” Diabetes Care. 1990;13(1):74–76.

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