Quick Comparison
| Humanin | Livagen | |
|---|---|---|
| Half-Life | 0.5-4 hours (varies by analogue; HNG has extended activity) | Approximately 30 minutes (acute pharmacology); proposed gene-expression effects outlast plasma exposure |
| Typical Dosage | 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. | Oral (capsule): 100-200 mg once daily for 10-30 day cycles, repeated 2-3 times per year. Subcutaneous injection: 1-5 mg per dose, alternate days for 10-20 day cycles. Standard Khavinson cycling rather than continuous use. |
| Administration | Subcutaneous injection (research) | Oral capsule or subcutaneous injection (cycled) |
| Research Papers | 30 papers | 5 papers |
| Categories |
Mechanism 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.
Livagen
Livagen is a short tripeptide (Lys-Glu-Asp) within the Khavinson bioregulator family — peptides hypothesised to regulate gene expression in tissue-specific ways by binding to gene promoter regions. Livagen is positioned as the liver-targeted member of this family, intended to modulate hepatocyte gene expression in ways that support liver regeneration and counteract age-related decline in hepatic function.
Proposed mechanisms include modulation of chromatin condensation states in hepatocyte and lymphocyte nuclei, upregulation of genes involved in hepatic detoxification pathways (cytochrome P450 enzymes, glutathione synthesis), and immunomodulatory effects in liver-resident immune cells. Russian research has reported livagen-induced increases in hepatocyte regeneration markers in animal models of liver injury and changes in lymphocyte chromatin organisation consistent with cellular rejuvenation.
As with all Khavinson tripeptides, the proposed action model is that livagen acts as a transient signalling molecule triggering longer-lasting changes in gene expression. Plasma exposure is brief (around 30 minutes) but downstream transcriptional effects are claimed to persist for weeks, justifying pulse-dosing protocols of 10-30 day courses repeated periodically. The evidence base for clinical efficacy is dominated by Russian gerontology research with limited independent Western replication, and clinical use outside Russia remains largely anecdotal. Livagen should not be used as a substitute for evidence-based liver disease management.
Risks & Safety
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.
Livagen
Common
generally reported as well tolerated.
Serious
very limited Western clinical data; long-term safety in the context of pre-existing liver disease is not established.
Rare
allergic reactions. Like other Khavinson bioregulators, the evidence base is significantly thinner than the marketing suggests.
Full Profiles
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.
Livagen →
A Khavinson tripeptide (Lys-Glu-Asp) developed in Russia as a tissue-specific bioregulator targeting the liver. Promoted for supporting liver regeneration, age-related liver decline, and as part of broader anti-ageing protocols. Sits in the same family as epithalon (pineal), cortagen (brain), and pinealon (pineal/brain). Most evidence is from Russian preclinical work — rigorous Western clinical trials are essentially nonexistent.