Study summary · research use only
Evaluation of metabolically stabilized angiotensin IV analogs as procognitive/antidementia agents
Plain-language summary
Paraphrased from the published abstract below — not a verdict on whether anything works.
This study evaluated metabolically stabilized angiotensin IV (AngIV: VYIHPF) analogs as candidate procognitive/antidementia agents, building on prior work showing the tripeptide Nle-Tyr-Ile carries core structural information for the procognitive activity of norleucine(1)-angiotensin IV. Researchers chemically modified this tripeptide to improve metabolic stability and barrier permeability. Several N- and C-terminal modifications improved stability while retaining the ability to reverse scopolamine-induced deficits in Morris water maze performance and increase hippocampal synaptogenesis in rats. Further modifications aimed at increasing hydrophobicity and decreasing hydrogen bonding produced an orally active, blood-brain-barrier permeant, metabolically stabilized analog, N-hexanoic-Tyr-Ile-(6) aminohexanoic amide (dihexa), which the authors report showed antidementia activity in scopolamine and aged rat models along with marked synaptogenic activity.
Abstract
Angiotensin IV (AngIV: VYIHPF)-related peptides have long been recognized as procognitive agents with potential as antidementia therapeutics. Their development as useful therapeutics, however, has been limited by physiochemical properties that make them susceptible to metabolic degradation and impermeable to gut and blood-brain barriers. A previous study demonstrated that the core structural information required to impart the procognitive activity of the AngIV analog, norleucine(1)-angiotensin IV, resides in its three N-terminal amino acids, Nle-Tyr-Ile. The goal of this project was to chemically modify this tripeptide in such a way to enhance its metabolic stability and barrier permeability to produce a drug candidate with potential clinical utility. Initial results demonstrated that several N- and C-terminal modifications lead to dramatically improved stability while maintaining the capability to reverse scopolamine-induced deficits in Morris water maze performance and augment hippocampal synaptogenesis. Subsequent chemical modifications, which were designed to increase hydrophobicity and decrease hydrogen bonding, yielded an orally active, blood-barrier permeant, metabolically stabilized analog, N-hexanoic-Tyr-Ile-(6) aminohexanoic amide (dihexa), that exhibits excellent antidementia activity in the scopolamine and aged rat models and marked synaptogenic activity. These data suggest that dihexa may have therapeutic potential as a treatment of disorders, such as Alzheimer's disease, where augmented synaptic connectivity may be beneficial.
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