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

L Lucas B. Fallot (Department of Chemical and Biological Science and Engineering) J Johnathan R. Pinc (Department of Chemical and Biological Science and Engineering) J Joseph E. Buselmeier (Department of Chemistry and Life Science, United States Military Academy) J Julia C. Palchak (Department of Chemical and Biological Science and Engineering) S Supria S. Shroff (Department of Chemistry and Life Science, United States Military Academy) K Kaitlyn Zang (Department of Chemistry and Life Science, United States Military Academy) D Dillon J. Rinauro (Centre for Misfolding Diseases, Yusuf Hamied Department of Chemistry, University of Cambridge) K Kate M. Bacon (Department of Chemistry and Life Science, United States Military Academy) M Michael Nguyen (Department of Chemistry and Life Science, United States Military Academy) M Mary Claire Schleck (Department of Chemical and Biological Science and Engineering) A Alyssa R. Cornell (Department of Chemistry and Life Science, United States Military Academy) A Alexandra Oshidar (Department of Chemistry and Life Science, United States Military Academy) D Donald J. Darrell (Department of Chemistry and Life Science, United States Military Academy) J Justus M. Gabriel (Department of Chemistry and Life Science, United States Military Academy) A Aidan K. Wright (Department of Chemistry and Life Science, United States Military Academy) L Liam R. Sasser (Department of Chemistry and Life Science, United States Military Academy) R Ryan P. Kreiser (Department of Chemistry and Life Science, United States Military Academy) F F. John Burpo (Department of Chemistry and Life Science, United States Military Academy) A Alessia Santambrogio P Peifeng Xu (Centre for Misfolding Diseases, Yusuf Hamied Department of Chemistry, University of Cambridge) R Robert W. Kubiak (Department of Chemistry and Life Science, United States Military Academy) J Joseph Loverde (Department of Chemistry and Life Science, United States Military Academy) V Victor A. Jaffett (Department of Chemistry and Life Science, United States Military Academy) J Justin R. Toole (Department of Chemical and Biological Science and Engineering) D Denise Barbut (BAZ Therapeutics, Inc.) M Michael Zasloff (BAZ Therapeutics, Inc.) F Fabrizio Chiti (Section of Biochemistry, Department of Experimental and Clinical Biomedical Sciences, University of Florence) A Alexander J. Dear (Department of Biology, Institute of Biochemistry, ETH Zurich, Otto Stern Weg 3, 8093 Zurich, Switzerland) M Michele Vendruscolo R Ryan Limbocker (Department of Chemical and Biological Science and Engineering)

Abstract

Aberrant aggregates of the 42-residue form of the amyloid-β peptide (Aβ 42 ) 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 42 -induced cytotoxicity and to investigate clinically relevant aminosterols, we study the impact of claramine on the aggregation kinetics and properties of Aβ 42 aggregates, as well as the ability of these proteotoxic species to bind and disrupt cell membranes. Whereas previously studied aminosterols accelerated Aβ 42 aggregation, we show that claramine potently inhibits Aβ 42 amyloid fibril formation. We find that claramine stabilizes soluble Aβ 42 , speeding up primary and secondary nucleation into species with antiparallel β-sheet structure that are elongation incompetent, thereby depleting Aβ 42 monomers from the aggregation reaction. This steroid–polyamine also dissociates Aβ 42 fibrillar aggregates, resulting in the abrogation of the autocatalytic capacity of Aβ 42 fibrils, and it also inhibits the aggregation of a tau fragment relevant to AD. Upon exposure of human neuroblastoma cells to stabilized Aβ 42 oligomers, claramine effectively neutralized Aβ 42 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 42 aggregates by protecting cell membranes, and the newly characterized ability of claramine to inhibit Aβ 42 fibril formation and dissociate fibrillar Aβ 42 resulting in the interruption of the positive feedback loop in Aβ 42 aggregation, our findings further emphasize the relevance of this family of natural products as potential treatments for AD and other protein misfolding diseases.

Article Details

Volume / Issue Vol. 122, Issue 28
Published July 15, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (30)

L

Lucas B. Fallot

Department of Chemical and Biological Science and Engineering

J

Johnathan R. Pinc

Department of Chemical and Biological Science and Engineering

J

Joseph E. Buselmeier

Department of Chemistry and Life Science, United States Military Academy

J

Julia C. Palchak

Department of Chemical and Biological Science and Engineering

S

Supria S. Shroff

Department of Chemistry and Life Science, United States Military Academy

K

Kaitlyn Zang

Department of Chemistry and Life Science, United States Military Academy

D

Dillon J. Rinauro

Centre for Misfolding Diseases, Yusuf Hamied Department of Chemistry, University of Cambridge

K

Kate M. Bacon

Department of Chemistry and Life Science, United States Military Academy

M

Michael Nguyen

Department of Chemistry and Life Science, United States Military Academy

M

Mary Claire Schleck

Department of Chemical and Biological Science and Engineering

A

Alyssa R. Cornell

Department of Chemistry and Life Science, United States Military Academy

A

Alexandra Oshidar

Department of Chemistry and Life Science, United States Military Academy

D

Donald J. Darrell

Department of Chemistry and Life Science, United States Military Academy

J

Justus M. Gabriel

Department of Chemistry and Life Science, United States Military Academy

A

Aidan K. Wright

Department of Chemistry and Life Science, United States Military Academy

L

Liam R. Sasser

Department of Chemistry and Life Science, United States Military Academy

R

Ryan P. Kreiser

Department of Chemistry and Life Science, United States Military Academy

F

F. John Burpo

Department of Chemistry and Life Science, United States Military Academy

A

Alessia Santambrogio

P

Peifeng Xu

Centre for Misfolding Diseases, Yusuf Hamied Department of Chemistry, University of Cambridge

R

Robert W. Kubiak

Department of Chemistry and Life Science, United States Military Academy

J

Joseph Loverde

Department of Chemistry and Life Science, United States Military Academy

V

Victor A. Jaffett

Department of Chemistry and Life Science, United States Military Academy

J

Justin R. Toole

Department of Chemical and Biological Science and Engineering

D

Denise Barbut

BAZ Therapeutics, Inc.

M

Michael Zasloff

BAZ Therapeutics, Inc.

F

Fabrizio Chiti

Section of Biochemistry, Department of Experimental and Clinical Biomedical Sciences, University of Florence

A

Alexander J. Dear

Department of Biology, Institute of Biochemistry, ETH Zurich, Otto Stern Weg 3, 8093 Zurich, Switzerland

M

Michele Vendruscolo

R

Ryan Limbocker

Department of Chemical and Biological Science and Engineering