Quick Comparison
| Ara-290 | GHK-Cu | |
|---|---|---|
| Half-Life | 2 minutes (tissue-protective effects persist much longer) | Topical: variable (local effect) | Injectable: 1-2 hours |
| Typical Dosage | Clinical trials: 2-8 mg intravenous or subcutaneous. Despite the ultra-short half-life, the tissue-protective signaling cascades activated persist for hours to days after administration. | Topical: 1-2% serum or cream once or twice daily. Injectable: 1-2 mg subcutaneous once daily. Microneedling: applied topically immediately after microneedling for enhanced penetration. Typical courses run 4-12 weeks. |
| Administration | Subcutaneous or intravenous injection | Topical (serums, creams), subcutaneous injection, or microneedling |
| Research Papers | 12 papers | 27 papers |
| Categories |
Mechanism of Action
Ara-290
Ara-290 is an 11-amino-acid peptide designed to selectively activate the innate repair receptor (IRR), a heteromeric receptor complex composed of the erythropoietin receptor (EPOR) and the beta common receptor (CD131/βcR). This receptor is distinct from the classical homodimeric EPOR that mediates erythropoiesis, which is why Ara-290 can deliver tissue-protective effects without stimulating red blood cell production or the thrombotic risks associated with EPO.
The IRR is expressed on tissues subjected to metabolic stress, inflammation, or injury — including neurons, Schwann cells, cardiomyocytes, renal tubular cells, and endothelial cells. When Ara-290 activates the IRR, it triggers a cascade of protective signaling pathways: JAK2/STAT5 activation promotes anti-apoptotic gene expression (Bcl-2, Bcl-xL); PI3K/Akt signaling provides cell survival signals; NF-κB modulation shifts the inflammatory balance from pro-inflammatory to pro-resolution. The net effect is protection of viable cells from death, reduction of inflammation, and activation of repair processes.
Ara-290's most clinically advanced application is in peripheral neuropathy, particularly diabetic small fiber neuropathy. Schwann cells — the myelinating glial cells of the peripheral nervous system — express the IRR, and Ara-290 stimulates their survival and regenerative capacity. In clinical trials, subcutaneous Ara-290 administration improved corneal nerve fiber density (a measure of small fiber regeneration) and reduced neuropathic symptoms. Despite its extremely short plasma half-life (approximately 2 minutes), the tissue-protective effects persist for days because the cellular signaling cascades activated by IRR engagement have sustained downstream effects that outlast the peptide's presence in circulation.
GHK-Cu
GHK-Cu (glycyl-L-histidyl-L-lysine copper complex) is a naturally occurring tripeptide first isolated from human plasma in 1973 by Dr. Loren Pickart. Its copper-binding affinity is exceptionally high, and this copper chelation is central to its biological activity — the copper ion is coordinated by the histidine and lysine residues, creating a stable yet bioavailable copper delivery system.
The primary mechanism involves activation of copper-dependent enzymes critical for tissue structure and defense. Lysyl oxidase requires copper to catalyze the oxidative deamination of lysine and hydroxylysine residues in collagen and elastin precursors, forming the covalent cross-links (desmosine and isodesmosine) that give connective tissue its tensile strength and elasticity. Without adequate copper delivery, collagen fibers remain weak and poorly organized. Superoxide dismutase (Cu/Zn-SOD) uses the copper delivered by GHK-Cu for its antioxidant catalytic cycle, converting destructive superoxide radicals into hydrogen peroxide and oxygen.
Beyond copper delivery, GHK-Cu has remarkable gene-regulatory effects. Transcriptomic studies have shown it modulates the expression of over 4,000 human genes — approximately 6% of the genome. It upregulates genes involved in collagen synthesis (types I, III, V), elastin production, glycosaminoglycan synthesis, integrin and laminin expression, and growth factor production (TGF-β, VEGF, FGF). Simultaneously, it downregulates genes associated with inflammation, tissue destruction (matrix metalloproteinases), and fibrosis. In skin specifically, GHK-Cu stimulates dermal fibroblast proliferation, increases dermal thickness, improves skin density and firmness, and enhances wound contraction. It also promotes nerve outgrowth and blood vessel formation at wound sites. The breadth of its gene-regulatory activity suggests it acts as a master signaling molecule for tissue remodeling, essentially resetting gene expression patterns toward a younger, more regenerative profile.
Risks & Safety
Ara-290
Common
injection site reactions, mild headache.
Serious
still under investigation with limited long-term safety data.
Rare
allergic reactions.
GHK-Cu
Common
mild skin irritation, redness, bruising, injection site irritation.
Serious
theoretical risk of copper accumulation with long-term high doses; no long-term safety data for injectable use.
Rare
allergic reactions, contact dermatitis.
Full Profiles
Ara-290 →
A peptide derived from EPO (the hormone that boosts red blood cells) but engineered to keep only the tissue-protective effects — it doesn't increase red blood cells at all. It activates the body's repair receptors to protect tissues and regenerate nerves. Particularly promising for nerve damage and tissue injury from poor blood flow. People use it for diabetic nerve damage and similar conditions.
GHK-Cu →
A naturally occurring copper-binding peptide found throughout the body; levels drop after age 20. The most studied cosmetic peptide, with proven effects on collagen production, skin renewal, wound healing, and antioxidant protection. It influences over 4,000 genes, shifting them toward a younger, more regenerative pattern. People use it for skin aging, wound healing, and anti-aging.