Neuropeptides · 5mg × 10 vials
Dihexa-class small molecule. Studied for HGF/c-Met pathway modulation in cognition and synaptogenesis models.
Dihexa (N-hexanoic-Tyr-Ile-(6)-aminohexanoic amide, also called PNB-0408) is a small, orally bioavailable, blood-brain-barrier-penetrant analogue of angiotensin IV developed in the laboratory of Joseph Harding and John McCoy at Washington State University in the early 2010s. Angiotensin IV was already known to enhance memory in animal models but was peptidase-sensitive and poorly bioavailable. The Harding and McCoy team attached a hexanoic acid cap to the N-terminus and a 6-aminohexanoic acid amide to the C-terminus, which stabilises the molecule against peptidases and makes it small enough to cross the blood-brain barrier.
Mechanistically, Dihexa is best characterised as a hepatocyte growth factor (HGF) potentiator: it binds HGF directly and stabilises the HGF-c-Met receptor interaction, amplifying signalling through the c-Met tyrosine kinase pathway. In the WSU rat work, the downstream consequence in the central nervous system was rapid induction of dendritic arborisation and synaptogenesis in the hippocampus, with picomolar potency in dissociated hippocampal neuron cultures and reversal of scopolamine-induced memory deficits. The often-quoted comparison to BDNF originates in the Harding laboratory's spinogenesis assays comparing molar potency in dendritic spine formation, not in any direct functional head-to-head.
The same c-Met pathway is a well-characterised oncogenic signal, dysregulated or overexpressed in lung, gastric, hepatocellular, renal, and glioblastoma tumours, and HGF/c-Met is an active target of anti-cancer drug development. No human data exist for Dihexa in either direction, and the theoretical oncogenic mechanism is the central caveat in every published commentary.
What the published studies measured.
Peer-reviewed studies and clinical guidelines — tap any to read the source.
original WSU pharmacology, oral activity, scopolamine reversal in rats
Read study ↗PubMedBenoist CC, Wright JW, Zhu M, et al. Facilitation of hippocampal synaptogenesis and spatial memory by C-terminal truncated Nle1-angiotensin IV analogs. J Pharmacol Exp Ther 2011synaptogenesis mechanism, hippocampal spine formation
Read study ↗PubMedWright JW, Harding JW. The brain hepatocyte growth factor/c-Met receptor system: a new target for the treatment of Alzheimer's disease. J Alzheimers Dis 2015HGF/c-Met framing for AD therapeutics, includes Dihexa
Read study ↗PubMedWright JW, Harding JW. Importance of the brain angiotensin system in Parkinson's disease. Parkinsons Dis 2012angiotensin IV system in neurodegenerative disease
Read study ↗PubMedBenoist CC, Kawas LH, Zhu M, et al. The procognitive and synaptogenic effects of angiotensin IV-derived peptides are dependent on activation of the hepatocyte growth factor/c-met system. J Pharmacol Exp Ther 2014c-Met dependence of synaptogenesis effect
Read study ↗PubMedKawas LH, McCoy AT, Yamamoto BJ, et al. Development of angiotensin IV analogs as hepatocyte growth factor/Met modifiers. J Pharmacol Exp Ther 2012HGF binding and stabilization mechanism
Read study ↗Storage: refrigerated, ~30 days after reconstitution. Lyophilized vials room-temp short-term, refrigerated for long-term storage.