What is half-life and why does it matter?
Half-life is the time it takes for the plasma concentration of a drug to fall to half of its starting value. It determines how often the drug needs to be dosed and how long its effect lasts.
Last reviewed 2026-07-13
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Half-life (t½) is the time it takes for the plasma concentration of a compound to fall to half of its starting value. It is a compact way to describe the pharmacokinetic behaviour of a compound. From half-life you can predict several practical things: how long a single dose keeps producing effect (roughly 4–5 half-lives), how often to dose for a steady blood level (dosing intervals of about one half-life produce roughly two-fold peak-to-trough variation), and how long a compound persists after the last dose (roughly 4–5 half-lives to clear substantially).
Native peptide hormones typically have very short half-lives — native GLP-1 is about 2 minutes because DPP-4 rapidly degrades it. This is pharmacologically inconvenient because it would require continuous infusion. The engineered peptide drugs in this catalog have much longer half-lives thanks to specific chemistry: semaglutide's fatty-acid conjugation binds it to serum albumin, extending half-life to about 165 hours (a week), which is what allows weekly dosing. CJC-1295 DAC uses covalent albumin binding to extend half-life similarly. CJC-1295 No DAC has hours of half-life, giving pulsatile pharmacology that preserves GHRH-receptor responsiveness.
Half-life is not always the whole story. Some peptides continue producing effects after plasma levels have fallen — SS-31 concentrates 1000-fold in mitochondria and its effect duration is governed by mitochondrial clearance. Some peptides trigger cascades that persist beyond their own clearance — kisspeptin's brief pulse triggers a GnRH-LH cascade that plays out over hours. Read half-life alongside mechanism for the fullest picture.
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What is bioavailability?
Bioavailability is the fraction of an administered dose that reaches systemic circulation intact. Intravenous is 100% by definition; subcutaneous injection is 60–90%; oral is under 1% for most peptides.
Why are different administration routes used for different peptides?
The route is chosen based on the peptide's stability, the target tissue, the desired absorption profile, and the clinical context. Subcutaneous injection is the workhorse; intranasal, intramuscular, and (in specific cases) oral are alternatives.
Why are peptides injected instead of taken orally?
The gastrointestinal tract is designed to digest proteins into amino acids. Peptides swallowed without protection are destroyed by stomach acid and intestinal enzymes before they can be absorbed.
