Quick Comparison
| Cortagen | FOXO4-DRI | |
|---|---|---|
| Half-Life | 1-3 hours | Extended (hours to days; D-amino acid configuration resists protease degradation) |
| Typical Dosage | Oral/sublingual: 10-20 mg once daily. Injectable: 1-10 mg subcutaneous once daily. Typical course: 10-20 days, repeated two or three times yearly. Available in capsule form in some markets. | Research only: 5-10 mg/kg in mouse studies (intraperitoneal). No established human dosing protocol. Very expensive and extremely limited availability. |
| Administration | Oral, sublingual, or subcutaneous injection | Subcutaneous injection (research) |
| Research Papers | 1 papers | 8 papers |
| Categories |
Mechanism of Action
Cortagen
Cortagen (Ala-Glu-Asp-Pro) is a synthetic tetrapeptide belonging to the Khavinson family of peptide bioregulators — short peptides proposed to regulate gene expression in a tissue-specific manner. The bioregulator hypothesis, developed by Professor Vladimir Khavinson over decades of research at the St. Petersburg Institute of Bioregulation and Gerontology, proposes that short peptides (2-4 amino acids) can penetrate cell membranes and nuclear envelopes, interact directly with DNA in a sequence-specific manner, and modulate transcription of tissue-relevant genes.
Cortagen is specifically designed to target neurons of the cerebral cortex. According to the Khavinson model, the AEDP tetrapeptide sequence has complementarity to specific DNA sequences in gene promoter regions active in cortical neurons. Upon binding to these regulatory elements, Cortagen is proposed to modulate chromatin structure and transcription factor access, influencing the expression of genes involved in neuronal function, synaptic transmission, antioxidant defense, and protein synthesis. The tissue specificity — cortex rather than other brain regions or body tissues — is attributed to the unique chromatin accessibility and transcription factor environment in cortical neurons that determines which genes are available for regulation.
Preclinical studies from Russian research programs have reported that Cortagen treatment improves cognitive function, enhances learning and memory, and provides neuroprotection in models of cerebral ischemia and age-related cognitive decline. The proposed mechanism involves restoration of age-related declines in protein synthesis in cortical neurons, enhancement of antioxidant enzyme expression (SOD, catalase, GPx), and improved synaptic function through upregulation of synaptophysin and other synaptic proteins. It should be noted that the peptide bioregulator field remains controversial in Western pharmacology — while the Russian research program is extensive, the proposed direct DNA-binding mechanism has not been independently validated through the standard molecular biology methods expected in Western peer-reviewed literature.
FOXO4-DRI
FOXO4-DRI is a D-retro-inverso (DRI) peptide — a peptide composed entirely of D-amino acids (mirror image of natural L-amino acids) assembled in reverse sequence order. This DRI modification makes the peptide virtually invisible to cellular proteases (which have evolved to cleave L-amino acid peptide bonds), dramatically extending its biological half-life while preserving the spatial orientation of key amino acid side chains needed for target interaction.
The target is the FOXO4-p53 protein-protein interaction that keeps senescent cells alive. Cellular senescence is a state of permanent cell cycle arrest triggered by DNA damage, oncogene activation, or telomere shortening. Senescent cells would normally undergo p53-mediated apoptosis (programmed cell death), but they evade this fate through a survival mechanism: the transcription factor FOXO4 is selectively upregulated in senescent cells and physically binds to p53, sequestering it in PML (promyelocytic leukemia) nuclear bodies. This binding prevents p53 from activating its pro-apoptotic transcriptional program (PUMA, BAX, NOXA), keeping the damaged cell alive.
FOXO4-DRI competitively disrupts this interaction by mimicking the FOXO4 binding interface for p53 but without the nuclear body-localizing function. When FOXO4-DRI competes p53 away from endogenous FOXO4, liberated p53 can access its apoptotic target genes, triggering mitochondrial outer membrane permeabilization and caspase activation — selectively killing the senescent cell. Crucially, non-senescent cells do not depend on FOXO4-p53 interaction for survival (they have intact cell cycle regulation and don't upregulate FOXO4), so they are unaffected by FOXO4-DRI. This selectivity — killing only 'zombie' senescent cells while sparing healthy cells — makes FOXO4-DRI a true senolytic agent. In the original 2017 Cell publication by de Keizer et al., FOXO4-DRI treatment in aged mice reduced senescent cell burden and restored physical fitness, fur density, and renal function.
Risks & Safety
Cortagen
Common
mild headache, temporary fatigue during initial use.
Serious
limited Western safety data, most evidence comes from Russian-language literature, no long-term data on repeated use.
Rare
allergic reactions.
FOXO4-DRI
Serious
theoretical risk of killing beneficial senescent cells needed for wound healing and tumor suppression, which could impair tissue repair; no data on effects on the body's cancer surveillance. No human trial data available.
Full Profiles
Cortagen →
A short synthetic peptide (Ala-Glu-Asp-Pro) developed by the Khavinson Institute in Russia. Designed to support brain cortex function by modulating gene expression in brain cells. Part of the Khavinson peptide bioregulator family alongside Epithalon and Vilon. One of the few peptides specifically formulated for brain function optimization, available in both injectable and oral/sublingual forms.
FOXO4-DRI →
A peptide designed to selectively kill 'zombie cells' — old, damaged cells that have stopped dividing but stay alive and pump out inflammatory signals. They accumulate with age and contribute to chronic inflammation. This peptide breaks the mechanism that keeps them alive, allowing them to die off. In aged mice it showed rejuvenating effects, but it's still highly experimental for humans.