Biasing the native α-synuclein conformational ensemble towards compact states abolishes aggregation and neurotoxicity

2019 | journal article; research paper. A publication with affiliation to the University of Göttingen.

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​Biasing the native α-synuclein conformational ensemble towards compact states abolishes aggregation and neurotoxicity​
Carija, A.; Pinheiro, F.; Pujols, J.; Brás, I. C.; Lázaro, D. F.; Santambrogio, C. & Grandori, R. et al.​ (2019) 
Redox Biology22 pp. 101135​.​ DOI: https://doi.org/10.1016/j.redox.2019.101135 

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Authors
Carija, Anita; Pinheiro, Francisca; Pujols, Jordi; Brás, Inês C.; Lázaro, Diana Fernandes; Santambrogio, Carlo; Grandori, Rita; Outeiro, Tiago F. ; Navarro, Susanna; Ventura, Salvador
Abstract
The aggregation of α-synuclein (α-syn) into amyloid fibrils is a major pathological hallmark of Parkinson's disease (PD) and other synucleinopathies. The mechanisms underlying the structural transition of soluble and innocuous α-syn to aggregated neurotoxic forms remains largely unknown. The disordered nature of α-syn has hampered the use of structure-based protein engineering approaches to elucidate the molecular determinants of this transition. The recent 3D structure of a pathogenic α-syn fibril provides a template for this kind of studies. The structure supports the NAC domain being a critical element in fibril formation, since it constitutes the core of the fibril, delineating a Greek-key motif. Here, we stapled the ends of this motif with a designed disulfide bond and evaluated its impact on the conformation, aggregation and toxicity of α-syn in different environments. The new covalent link biases the native structural ensemble of α-syn toward compact conformations, reducing the population of fully unfolded species. This conformational bias results in a strongly reduced fibril formation propensity both in the absence and in the presence of lipids and impedes the formation of neurotoxic oligomers. Our study does not support the Greek-key motif being already imprinted in early α-syn assemblies, discarding it as a druggable interface to prevent the initiation of fibrillation. In contrast, it suggests the stabilization of native, compact ensembles as a potential therapeutic strategy to avoid the formation of toxic species and to target the early stages of PD.
Issue Date
2019
Journal
Redox Biology 
Project
SFB 1286: Quantitative Synaptologie 
SFB 1286 | B08: Definition von Kaskaden molekularer Veränderungen bei Synucleinopathien während der Neurodegeneration 
Working Group
RG Outeiro (Experimental Neurodegeneration) 
External URL
https://sfb1286.uni-goettingen.de/literature/publications/9
Language
English

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