Structural defects in amyloid-β fibrils drive secondary nucleation

J Jing Hu T Tom Scheidt D Dev Thacker (Biochemistry and Structural Biology, Lund University) E Emil Axell E Elin Stemme U Urszula Łapińska S Stefan Wennmalm G Georg Meisl (Yusuf Hamied Department of Chemistry) S Samo Curk M Maria Andreasen M Michele Vendruscolo P Paolo Arosio (Institute for Chemical and Bioengineering, Department of Chemistry and Applied Biosciences, ETH Zürich) A Anđela Šarić (Institute of Science and Technology Austria) J Jeremy D. Schmit (Department of Physics) T Tuomas P. J. Knowles E Emma Sparr (Division of Physical Chemistry, Department of Chemistry) S Sara Linse T Thomas C. T. Michaels (Department of Biology, Institute of Biochemistry, ETH Zurich, Otto Stern Weg 3, 8093 Zurich, Switzerland) A Alexander J. Dear (Department of Biology, Institute of Biochemistry, ETH Zurich, Otto Stern Weg 3, 8093 Zurich, Switzerland)

Abstract

Abstract Formation of new amyloid fibrils and oligomers from monomeric protein on the surfaces of existing fibrils is an important driver of many disorders such as Alzheimer’s and Parkinson’s diseases. The structural basis of this secondary nucleation process, however, is poorly understood. Here, we ask whether secondary nucleation sites are found predominantly at rare growth defects: irregularities in the fibril core structure incorporated during their original assembly. We first demonstrate using the specific inhibitor of secondary nucleation, Brichos, that secondary nucleation sites on Alzheimer’s disease-associated fibrils composed of Aβ40 and Aβ42 peptides are rare compared to the number of protein molecules they contain. We then grow Aβ40 fibrils under conditions designed to eliminate most growth defects while leaving the regular fibril morphology unchanged, and confirm the latter using cryo-electron microscopy. We measure both the ability of these annealed fibrils to promote secondary nucleation and the stoichiometry of their secondary nucleation sites, finding that both are greatly reduced as predicted. Re-analysis of published data for other proteins suggests that fibril growth defects may also drive secondary nucleation generally across most amyloids. These findings could unlock structure-based drug design of therapeutics that aim to halt amyloid disorders by inhibiting secondary nucleation sites.

Article Details

Volume / Issue Vol. 17, Issue 1
Published February 18, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (19)

J

Jing Hu

T

Tom Scheidt

D

Dev Thacker

Biochemistry and Structural Biology, Lund University

E

Emil Axell

E

Elin Stemme

U

Urszula Łapińska

S

Stefan Wennmalm

G

Georg Meisl

Yusuf Hamied Department of Chemistry

S

Samo Curk

M

Maria Andreasen

M

Michele Vendruscolo

P

Paolo Arosio

Institute for Chemical and Bioengineering, Department of Chemistry and Applied Biosciences, ETH Zürich

A

Anđela Šarić

Institute of Science and Technology Austria

J

Jeremy D. Schmit

Department of Physics

T

Tuomas P. J. Knowles

E

Emma Sparr

Division of Physical Chemistry, Department of Chemistry

S

Sara Linse

T

Thomas C. T. Michaels

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

A

Alexander J. Dear

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