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Assay Development for High Content Quantification of Sod1 Mutant Protein Aggregate Formation in Living Cells
Published on: October 4, 2017
Proteins that bind to misfolded mutant superoxide dismutase-1 in spinal cords from transgenic amyotrophic lateral
Per Zetterström1, Karin S Graffmo, Peter M Andersen
1Department of Medical Biosciences, Clinical Chemistry, Umeå University, SE-901 85 Umeå, Sweden.
Abstract:
Mutant superoxide dismutase-1 (SOD1) has an unidentified toxic property that provokes ALS. Several ALS-linked SOD1 mutations cause long C-terminal truncations, which suggests that common cytotoxic SOD1 conformational species should be misfolded and that the C-terminal end cannot be involved. The cytotoxicity may arise from interaction of cellular proteins with misfolded SOD1 species. Here we specifically immunocaptured misfolded SOD1 by the C-terminal end, from extracts of spinal cords from transgenic ALS model mice. Associated proteins were identified with proteomic techniques. Two transgenic models expressing SOD1s with contrasting molecular properties were examined: the stable G93A mutant, which is abundant in the spinal cord with only a tiny subfraction misfolded, and the scarce disordered truncation mutant G127insTGGG. For comparison, proteins in spinal cord extracts with affinity for immobilized apo G93A mutant SOD1 were determined. Two-dimensional gel patterns with a limited number of bound proteins were found, which were similar for the two SOD1 mutants. Apart from neurofilament light, the proteins identified were all chaperones and by far most abundant was Hsc70. The immobilized apo G93A SOD1, which would populate a variety of conformations, was found to bind to a considerable number of additional proteins. A substantial proportion of the misfolded SOD1 in the spinal cord extracts appeared to be chaperone-associated. Still, only about 1% of the Hsc70 appeared to be associated with misfolded SOD1. The results argue against the notion that chaperone depletion is involved in ALS pathogenesis in the transgenic models and in humans carrying SOD1 mutations.
Insights
Misfolded mutant superoxide dismutase-1 (SOD1) in ALS models interacts with cellular chaperones, primarily Hsc70. This interaction suggests chaperones are not depleted, challenging a key ALS pathogenesis theory.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Mutant superoxide dismutase-1 (SOD1) is implicated in Amyotrophic Lateral Sclerosis (ALS) pathogenesis.
- The toxic mechanism of mutant SOD1 remains unclear, with hypotheses involving interactions with cellular proteins.
Purpose of the Study:
- To identify cellular proteins interacting with misfolded SOD1 species in ALS model mice.
- To investigate the role of chaperones in the context of mutant SOD1 toxicity.
Main Methods:
- Immunocapture of misfolded SOD1 from spinal cord extracts of transgenic ALS model mice.
- Proteomic analysis to identify associated proteins.
- Affinity purification using immobilized apo G93A mutant SOD1 for comparison.
Main Results:
- Proteins interacting with misfolded SOD1 were primarily chaperones, with Hsc70 being the most abundant.
- Proteins binding to immobilized apo G93A SOD1 included a broader range, but chaperones were still prominent.
- A significant portion of misfolded SOD1 was chaperone-associated, though only a small fraction of total Hsc70 was involved.
Conclusions:
- The findings suggest that chaperone association, rather than depletion, is a key interaction with misfolded SOD1.
- This challenges the theory that chaperone depletion contributes to ALS pathogenesis in SOD1 mutation carriers.
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