Accepted answer
At 20 mg/mL a 0.25 mg draw is 1.3 units on a U-100 barrel and a 2.4 mg draw is 12. Those two numbers decide it, because the concentration is only sensible relative to the smallest and largest volumes you will actually measure with it. 1.3 units is too little of the scale to read honestly — half a graduation is 40 per cent of that dose — so going lower in concentration buys resolution you cannot get back after reconstitution. The other consideration is time: a vial you will finish in a fortnight can be concentrated, and a vial you will draw from for months should be split at reconstitution instead.
The honest answer is that a wide range of volumes works and that the extremes at either end cause avoidable problems.
Worked example. A 10 mg vial reconstituted with 2 mL gives 5 mg/mL. A 0.5 mg dose is 0.5 ÷ 5 = 0.1 mL, which on a U-100 syringe is 10 units. Reconstitute the same vial with 1 mL and the concentration doubles to 10 mg/mL, the same dose becomes 0.05 mL, and you are now reading 5 units instead of 10 — the same dose at half the resolution.
Dead-space loss scales with the number of draws, not with the concentration, so a lower concentration spread over more draws loses proportionally less of the total peptide.
Published content assay results across the independent testing services show nominal and measured content differing by one to ten per cent, which makes content the dominant term in dose error.
A concentration calculated to three decimal places from a diluent volume measured to one is false precision.
Measure a volume you can actually measure. Round numbers, real syringes.