Structural insights into the role of reduced cysteine residues in SOD1 amyloid filament formation

Author:

Baek Yeongjin1ORCID,Kim Hyunmin23,Lee Dukwon1,Kim Doyeon1ORCID,Jo Eunbyul1ORCID,Roh Soung-Hun2ORCID,Ha Nam-Chul14ORCID

Affiliation:

1. Department of Agricultural Biotechnology, and Research Institute of Agriculture and Life Sciences, CALS, Seoul National University

2. School of Biological Sciences, Institute of Molecular Biology and Genetics, Seoul National University

3. Molecular Systems Biology Unit, European Molecular Biology Laboratory (EMBL)

4. Center for Food and Bioconvergence, Seoul National University

Abstract

The formation of superoxide dismutase 1 (SOD1) filaments has been implicated in amyotrophic lateral sclerosis (ALS). Although the disulfide bond formed between Cys57 and Cys146 in the active state has been well studied, the role of the reduced cysteine residues, Cys6 and Cys111, in SOD1 filament formation remains unclear. In this study, we investigated the role of reduced cysteine residues by determining and comparing cryoelectron microscopy (cryo-EM) structures of wild-type (WT) and C6A/C111A SOD1 filaments under thiol-based reducing and metal-depriving conditions, starting with protein samples possessing enzymatic activity. The C6A/C111A mutant SOD1 formed filaments more rapidly than the WT protein. The mutant structure had a unique paired-protofilament arrangement, with a smaller filament core than that of the single-protofilament structure observed in WT SOD1. Although the single-protofilament form developed more slowly, cross-seeding experiments demonstrated the predominance of single-protofilament morphology over paired protofilaments, regardless of the presence of the Cys6 and Cys111 mutations. These findings highlight the importance of the number of amino acid residues within the filament core in determining the energy requirements for assembly. Our study provides insights into ALS pathogenesis by elucidating the initiation and propagation of filament formation, which potentially leads to deleterious amyloid filaments.

Funder

Ministry of Agriculture, Food and Rural Affairs

Ministry of Science and ICT, South Korea

National Research Foundation of Korea

Publisher

Proceedings of the National Academy of Sciences

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