Adverse effects of GLP-1 receptor agonists (revision 25)
Old revision·15:33, 20 May 2025·RetinopathyRex
| Adverse effects of GLP-1 receptor agonistsClinical practice | |
|---|---|
| Most common | Nausea, vomiting, diarrhoea, constipation |
| Timing | Concentrated during escalation |
| Commonest reason for discontinuation | Gastrointestinal intolerance |
| Topic infobox · conventions | |
The adverse effects of GLP-1 receptor agonists are dominated by gastrointestinal events. Nausea, vomiting, diarrhoea and constipation are reported by between a fifth and a half of participants in trials depending on agent and dose, are most frequent during escalation, and diminish with time at a stable dose.[1]
Their mechanism is receptor-level rather than route-level: the same effects occur with an orally administered small-molecule agonist, which argues against a local gastrointestinal irritation explanation. Delayed gastric emptying and area postrema signalling are the proposed contributors.[1]
Less common concerns include gallbladder disease, acute pancreatitis, and a labelled contraindication derived from rodent thyroid C-cell findings. Several of these are shared with rapid weight loss by other means, which complicates attribution.[2]
Gastrointestinal effects
[edit]| Effect | Approximate frequency at higher doses | Course |
|---|---|---|
| Nausea | 30–45% | Peaks in escalation, declines |
| Vomiting | 20–25% | Follows nausea |
| Diarrhoea | 25–30% | Variable |
| Constipation | 20–25% | May persist |
Frequencies are from placebo-controlled trials and the placebo arms are not zero — nausea is reported by 10–20% of placebo participants in the same trials, so the attributable excess is smaller than the raw figure.[2]
Attenuation over time parallels the attenuation of the gastric-emptying delay, and is the reason escalation schedules work: adaptation to the gastrointestinal effect occurs while the appetite and glycaemic effects persist. See Dose escalation schedule.[1]
Discontinuation for adverse events ran at about 7% in STEP 1 and 16.6% in SELECT, where treatment continued for over three years. Longer exposure produces more cumulative discontinuation even where per-period tolerability is similar.[3]
Less common but significant
[edit]Gallbladder disease — cholelithiasis and cholecystitis — occurs more often than on placebo. Rapid weight loss by any means increases biliary cholesterol saturation and reduces gallbladder motility, so the effect is at least partly attributable to the weight change rather than to the drug directly.[2]
Acute pancreatitis has been reported and is uncommon. Trial data have not established a causal relationship, and the background rate in populations with obesity and type 2 diabetes is itself elevated, which makes a modest excess hard to detect.[4]
The medullary thyroid carcinoma contraindication derives from rodent C-cell hyperplasia and tumours at high exposure. Rodent C cells express the receptor at much higher density than human C cells, and no human signal has been established; the contraindication is precautionary. See Medullary thyroid carcinoma.[1]
A signal for non-arteritic anterior ischaemic optic neuropathy has been reported in observational data and remains under evaluation; observational designs cannot exclude confounding by indication.[4]
Body composition and other effects
[edit]Loss of lean mass accompanies loss of fat mass, in a proportion broadly comparable with that seen in other forms of substantial caloric restriction. Whether the proportion differs from diet-induced loss is disputed and the trials were not designed to settle it. See Sarcopenia and Lean mass preservation.[2]
A resting heart-rate increase of two to four beats per minute is reported across the class, attributed to direct sinoatrial action. No adverse outcome has been associated with it in the completed outcome trials.[1]
See also
- GLP-1 receptor agonist
- Dose escalation schedule
- Gastric emptying
- Aspiration risk under anaesthesia
- Hypoglycaemia
- Sarcopenia
References
- ^ a b c d e Drucker DJ. "Mechanisms of action and therapeutic application of glucagon-like peptide-1." Cell Metabolism 27(4):740–756 (2018). PMID 29617641.
- ^ a b c d Wilding JPH, Batterham RL, Calanna S, et al. "Once-weekly semaglutide in adults with overweight or obesity." New England Journal of Medicine 384(11):989–1002 (2021). PMID 33567185.
- ^ Lincoff AM, Brown-Frandsen K, Colhoun HM, et al. "Semaglutide and cardiovascular outcomes in obesity without diabetes." New England Journal of Medicine 389(24):2221–2232 (2023). PMID 37952131.
- ^ a b Nauck MA, Meier JJ. "The incretin effect in healthy individuals and those with type 2 diabetes." The Lancet Diabetes & Endocrinology 4(6):525–536 (2016). PMID 26876794.