An aminosterol breaks the autocatalytic cycle of Aβ<sub>42</sub> aggregation and protects cell membranes from its soluble aggregates.

Fallot, Lucas B; Pinc, Johnathan R; Buselmeier, Joseph E; Palchak, Julia C; Shroff, Supria S; Zang, Kaitlyn; Rinauro, Dillon J; Bacon, Kate M et al. · Proc Natl Acad Sci U S A · 2025

basic_science · Level V

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Abstract

Aberrant aggregates of the 42-residue form of the amyloid-β peptide (Aβ<sub>42</sub>) are cytotoxic in Alzheimer's disease (AD). Cost-effective and chronically safe disease-modifying therapeutics are needed to address the AD medical emergency worldwide. To increase our understanding of the mechanisms of Aβ<sub>42</sub>-induced cytotoxicity and to investigate clinically relevant aminosterols, we study the impact of claramine on the aggregation kinetics and properties of Aβ<sub>42</sub> aggregates, as well as the ability of these proteotoxic species to bind and disrupt cell membranes. Whereas previously studied aminosterols accelerated Aβ<sub>42</sub> aggregation, we show that claramine potently inhibits Aβ<sub>42</sub> amyloid fibril formation. We find that claramine stabilizes soluble Aβ<sub>42</sub>, speeding up primary and secondary nucleation into species with antiparallel β-sheet structure that are elongation incompetent, thereby depleting Aβ<sub>42</sub> monomers from the aggregation reaction. This steroid-polyamine also dissociates Aβ<sub>42</sub> fibrillar aggregates, resulting in the abrogation of the autocatalytic capacity of Aβ<sub>42</sub> fibrils, and it also inhibits the aggregation of a tau fragment relevant to AD. Upon exposure of human neuroblastoma cells to stabilized Aβ<sub>42</sub> oligomers, claramine effectively neutralized Aβ<sub>42</sub> oligomer-induced cytotoxicity by preventing their binding to cell membranes. Owing to the unique mechanism of action of aminosterols to reduce the toxicity of soluble Aβ<sub>42</sub> aggregates by protecting cell membranes, and the newly characterized ability of claramine to inhibit Aβ<sub>42</sub> fibril formation and dissociate fibrillar Aβ<sub>42</sub> resulting in the interruption of the positive feedback loop in Aβ<sub>42</sub> aggregation, our findings further emphasize the relevance of this family of natural products as potential treatments for AD and other protein misfolding diseases.

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