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Is there any published stability data for a GLP-1 receptor agonist at room temperature?

Asked 5 Oct 2024Modified 18 months agoViewed 13k times
9

What I have: a GLP-1 receptor agonist · room temperature.

I would rather be corrected now than propagate something wrong.

I am specifically not interested in a testimonial; I am interested in a measurement.

Is this actually true, and what is the evidence?

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askedswab_and_wait15k185 Oct 2024
7Related: the same reasoning applies to the counter-ion question. – Dr_Bram_Verhoeven 2 months ago
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2 Answers

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Degradation is not one process, and which one dominates depends on the condition you are asking about. In solution at refrigerated temperature the rate-limiting pathway is usually deamidation and hydrolysis; at room temperature aggregation overtakes them; frozen, the damage happens during the transitions rather than during the hold.

The temperature dependence is roughly Arrhenius over the range that matters, which in practice means every ten degrees of increase roughly doubles to triples the rate. Ten days at thirty degrees is therefore comparable to something on the order of a month or two at four degrees — bad, but not the catastrophe it feels like when you open a warm parcel.

Aggregation is the failure mode that reverse-phase HPLC is worst at detecting, because a large soluble aggregate may not elute at all and an insoluble one is filtered out during sample preparation. If your purity result comes back normal but the vial looks hazy, believe the vial. Size-exclusion chromatography is the method that sees this.

If the material arrived warm and it was lyophilised, test it and proceed on the result. If it arrived warm and it was in solution, the result is more likely to be interesting than reassuring.

edited 20 Oct 2024 by a_lindgren — clarified the distinction between purity and content

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answereda_lindgren46k1389 Oct 2024
8Worth flagging that this changed in 2025, so older answers on the site are out of date. – Dr_Otto_Lindqvist 9 months ago
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14

On the detail: a warm arrival is a reason to test, not automatically a reason to discard. Peptide degradation is kinetic — rate multiplied by time — and a few days at thirty degrees in the solid state is a small integral compared to weeks in solution.

Adsorption to the container is a real loss at low concentration. For a peptide at 0.1 mg/mL in an untreated glass vial, single-digit percentage losses to the wall are plausible; at 5 mg/mL it is negligible. This is one of several reasons not to reconstitute to a very dilute working solution and store it.

On re-freezing something that thawed in transit: if it arrived as a lyophilised solid that warmed but never got wet, re-freezing costs you nothing except the thermal cycle. If it arrived as a solution that thawed, re-freezing adds a second transition and therefore a second dose of ice-front shear. The asymmetry is worth internalising.

Where community-submitted samples with known thermal excursions have been tested at Janoshik or Medutest, the recurring finding is that lyophilised material tolerates warm transit far better than intuition suggests, while reconstituted material shipped warm does not. The asymmetry is consistent enough to plan around.

The single highest-value change most people can make is buying a cheap logging thermometer, because it converts an assumption about their storage into a record.

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answeredRP_C1885k15826 Jan 2025
8Does this hold at lower concentrations, or does adsorption dominate? – mz_4113 8 months ago
7Worth flagging that this changed in 2025, so older answers on the site are out of date. – dead_volume 6 months ago
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