Lipidic folding pathway of α-Synuclein via a toxic oligomer

V Vrinda Sant D Dirk Matthes H Hisham Mazal (Max Planck Institute for the Science of Light) L Leif Antonschmidt F Franz Wieser K Kumar T. Movellan K Kai Xue E Evgeny Nimerovsky (Department of NMR-based Structural Biology) M Marianna Stampolaki M Magdeline Nathan D Dietmar Riedel S Stefan Becker (Department of NMR-based Structural Biology) V Vahid Sandoghdar (Max Planck Institute for the Science of Light, Erlangen, Germany.) B Bert L. de Groot (Computational Biomolecular Dynamics Group, Max Planck Institute for Multidisciplinary Sciences) C Christian Griesinger (Department of NMR-based Structural Biology) L Loren B. Andreas (Department of NMR-based Structural Biology)

Abstract

Abstract Aggregation intermediates play a pivotal role in the assembly of amyloid fibrils, which are central to the pathogenesis of neurodegenerative diseases. The structures of filamentous intermediates and mature fibrils are now efficiently determined by single-particle cryo-electron microscopy. By contrast, smaller pre-fibrillar α-Synuclein (αS) oligomers, crucial for initiating amyloidogenesis, remain largely uncharacterized. We report an atomic-resolution structural characterization of a toxic pre-fibrillar aggregation intermediate (I1) on pathway to the formation of lipidic fibrils, which incorporate lipid molecules on protofilament surfaces during fibril growth on membranes. Super-resolution microscopy reveals a tetrameric state, providing insights into the early oligomeric assembly. Time resolved nuclear magnetic resonance (NMR) measurements uncover a structural reorganization essential for the transition of I1 to mature lipidic L2 fibrils. The reorganization involves the transformation of anti-parallel β-strands during the pre-fibrillar I1 state into a β-arc characteristic of amyloid fibrils. This structural reconfiguration occurs in a conserved structural kernel shared by a vast number of αS-fibril polymorphs including extracted fibrils from Parkinson’s and Lewy Body Dementia patients. Consistent with reports of anti-parallel β-strands being a defining feature of toxic αS pre-fibrillar intermediates, I1 impacts viability of neuroblasts and disrupts cell membranes, resulting in an increased calcium influx. Our results integrate the occurrence of anti-parallel β-strands as salient features of toxic oligomers with their significant role in the amyloid fibril assembly pathway. These structural insights have implications for the development of therapies and biomarkers.

Article Details

Volume / Issue Vol. 16, Issue 1
Published January 17, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (16)

V

Vrinda Sant

D

Dirk Matthes

H

Hisham Mazal

Max Planck Institute for the Science of Light

L

Leif Antonschmidt

F

Franz Wieser

K

Kumar T. Movellan

K

Kai Xue

E

Evgeny Nimerovsky

Department of NMR-based Structural Biology

M

Marianna Stampolaki

M

Magdeline Nathan

D

Dietmar Riedel

S

Stefan Becker

Department of NMR-based Structural Biology

V

Vahid Sandoghdar

Max Planck Institute for the Science of Light, Erlangen, Germany.

B

Bert L. de Groot

Computational Biomolecular Dynamics Group, Max Planck Institute for Multidisciplinary Sciences

C

Christian Griesinger

Department of NMR-based Structural Biology

L

Loren B. Andreas

Department of NMR-based Structural Biology