Anle138b binds predominantly to the central cavity in lipidic Aβ₄₀ fibrils and modulates fibril formation

M Mookyoung Han B Benedikt Frieg D Dirk Matthes A Andrei Leonov S Sergey Ryazanov K Karin Giller (Department of NMR-based Structural Biology) E Evgeny Nimerovsky (Department of NMR-based Structural Biology) M Marianna Stampolaki K Kai Xue K Kerstin Overkamp (Department of NMR-based Structural Biology) C Christian Dienemann D Dietmar Riedel A Armin Giese S Stefan Becker (Department of NMR-based Structural Biology) B Bert L. de Groot (Computational Biomolecular Dynamics Group, Max Planck Institute for Multidisciplinary Sciences) G Gunnar F. Schröder L Loren B. Andreas (Department of NMR-based Structural Biology) C Christian Griesinger (Department of NMR-based Structural Biology)

Abstract

Abstract Alzheimer’s disease is a specific neurodegenerative disorder, distinct from normal aging, with a growing unmet medical need. It is characterized by the accumulation of amyloid plaques in the brain, primarily consisting of amyloid beta (Aβ) fibrils. Therapeutic antibodies can slow down the disease, but are associated with potential severe side effects, motivating the development of small molecules to halt disease progression. This study investigates the interaction between the clinical drug candidate small molecule anle138b and lipidic Aβ₄₀ fibrils of type 1 (L1). L1 fibrils were previously shown to closely resemble fibrils from Alzheimer’s patients. Using high-resolution structural biology techniques, including cryo-electron microscopy (cryo-EM), nuclear magnetic resonance (NMR) spectroscopy enhanced by dynamic nuclear polarization (DNP), and molecular dynamics (MD) simulations, we find that anle138b selectively binds to a cavity within the fibril. This structural insight provides a deeper understanding of a potential drug-binding mechanism at the atomic level and may inform the development of therapies and diagnostic approaches. In addition, anle138b reduces fibril formation in the presence of lipids by approximately 75%. This may suggest a mechanistic connection to its previously reported activity in animal models of Alzheimer’s disease.

Article Details

Volume / Issue Vol. 16, Issue 1
Published October 03, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (18)

M

Mookyoung Han

B

Benedikt Frieg

D

Dirk Matthes

A

Andrei Leonov

S

Sergey Ryazanov

K

Karin Giller

Department of NMR-based Structural Biology

E

Evgeny Nimerovsky

Department of NMR-based Structural Biology

M

Marianna Stampolaki

K

Kai Xue

K

Kerstin Overkamp

Department of NMR-based Structural Biology

C

Christian Dienemann

D

Dietmar Riedel

A

Armin Giese

S

Stefan Becker

Department of NMR-based Structural Biology

B

Bert L. de Groot

Computational Biomolecular Dynamics Group, Max Planck Institute for Multidisciplinary Sciences

G

Gunnar F. Schröder

L

Loren B. Andreas

Department of NMR-based Structural Biology

C

Christian Griesinger

Department of NMR-based Structural Biology