Quick Comparison
| GLP-1 | Humanin | |
|---|---|---|
| Half-Life | 1-2 minutes | 0.5-4 hours (varies by analogue; HNG has extended activity) |
| Typical Dosage | Not used therapeutically due to extremely short half-life. Research: continuous intravenous infusion at variable rates. All approved GLP-1 therapies use modified analogues with extended half-lives instead. | No established clinical dosing. Research analogue (HNG — humanin G): most commonly used form. User-reported: 1-5 mg subcutaneous once daily. Often cycled 4-8 weeks. |
| Administration | Subcutaneous injection or intravenous infusion | Subcutaneous injection (research) |
| Research Papers | 32 papers | 30 papers |
| Categories |
Mechanism of Action
GLP-1
GLP-1 (glucagon-like peptide 1) is the native incretin hormone produced by enteroendocrine L-cells in the distal small intestine and colon in response to nutrient ingestion. It is the endogenous molecule that all GLP-1 receptor agonist drugs (semaglutide, liraglutide, etc.) are designed to mimic. Understanding native GLP-1 is essential to understanding the entire drug class built upon its biology.
Upon release, GLP-1 binds to GLP-1 receptors (GLP-1R) — G protein-coupled receptors expressed on pancreatic beta cells, the GI tract, the heart, the kidneys, and critically, the brain. In the pancreas, GLP-1R activation stimulates adenylyl cyclase, raising intracellular cAMP levels, which potentiates glucose-stimulated insulin secretion. This glucose-dependence is a key safety feature — GLP-1 only promotes insulin release when blood sugar is elevated, minimizing hypoglycemia risk. Simultaneously, GLP-1 suppresses glucagon secretion from alpha cells, further reducing hepatic glucose output.
In the brain, GLP-1 receptors in the hypothalamus (arcuate nucleus, paraventricular nucleus) and brainstem (area postrema, nucleus tractus solitarius) mediate appetite suppression and satiety. GLP-1 also activates vagal afferents to slow gastric emptying, prolonging nutrient absorption and post-meal satiety. The critical limitation of native GLP-1 is its extremely rapid degradation by the enzyme dipeptidyl peptidase-4 (DPP-4), which cleaves the first two amino acids within 1-2 minutes, rendering it inactive. This ultra-short half-life is why pharmaceutical GLP-1 analogues require structural modifications (albumin binding, DPP-4 resistance) to achieve clinically useful durations of action.
Humanin
Humanin is a 24-amino-acid peptide (MAPRGFSCLLLLTSEIDLPVKRRA) encoded within the 16S ribosomal RNA gene of the mitochondrial genome. Its discovery in 2001 was revolutionary — it was the first identified mitochondrial-derived peptide (MDP), challenging the long-held dogma that the mitochondrial genome only encodes 13 oxidative phosphorylation subunits, 22 tRNAs, and 2 rRNAs. Humanin, along with MOTS-C and the SHLP peptides discovered later, established mitochondria as endocrine organelles.
Humanin exerts cytoprotective effects through multiple mechanisms. Extracellularly, it binds to a trimeric receptor complex composed of CNTFR (ciliary neurotrophic factor receptor alpha), WSX-1 (IL-27 receptor alpha), and gp130 (the shared signaling subunit of the IL-6 receptor family). Activation of this complex triggers JAK/STAT3 signaling, which drives expression of anti-apoptotic genes (Bcl-2, Mcl-1) and cell survival programs. Intracellularly, humanin interacts directly with two pro-apoptotic proteins: it binds IGFBP-3, preventing IGFBP-3 from translocating to mitochondria and initiating apoptosis; and it binds BAX (Bcl-2-associated X protein), preventing BAX oligomerization and insertion into the outer mitochondrial membrane — the critical step in the intrinsic (mitochondrial) apoptosis pathway that releases cytochrome c and activates caspases.
Humanin also reduces cellular stress through multiple pathways. It decreases reactive oxygen species (ROS) production by optimizing mitochondrial electron transport chain function. It reduces endoplasmic reticulum (ER) stress by modulating the unfolded protein response (UPR). It improves insulin sensitivity through STAT3-mediated effects on hypothalamic signaling and peripheral insulin receptor substrate phosphorylation. Circulating humanin levels decline with age (approximately 40% reduction between youth and old age) and are inversely correlated with markers of age-related disease, suggesting that humanin decline contributes to the increased cellular vulnerability and apoptosis susceptibility seen in aging. Its most potent synthetic analogue, HNG (S14G-humanin), has a glycine-for-serine substitution at position 14 that increases cytoprotective potency approximately 1,000-fold.
Risks & Safety
GLP-1
Common
nausea and vomiting at higher doses.
Serious
dangerously low blood sugar if combined with insulin or diabetes medications.
Rare
allergic reactions.
Humanin
Common
injection site irritation, mild fatigue.
Serious
limited human safety data, may protect cancer cells from programmed death (BAX interaction), may affect IGF-1 signaling.
Rare
allergic reactions.
Full Profiles
GLP-1 →
The natural appetite hormone that your gut produces after eating — it's what all GLP-1 weight loss drugs (semaglutide, tirzepatide, etc.) are designed to copy. Your body makes it naturally, but it breaks down within 1-2 minutes, which is far too fast to use as a medicine. That's why drug companies created modified versions that last days instead of minutes. Included here because understanding GLP-1 is key to understanding the entire class of modern weight loss drugs.
Humanin →
A 24-amino-acid peptide naturally produced by mitochondria. Related to MOTS-c but works differently. Protects cells against oxidative stress, cell death, and age-related damage by interacting with proteins involved in apoptosis and IGF signaling. One of the most studied peptides in longevity research, with evidence that levels decline in aging tissues.