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Assay Development for High Content Quantification of Sod1 Mutant Protein Aggregate Formation in Living Cells
Published on: October 4, 2017
Parsing disease-relevant protein modifications from epiphenomena: perspective on the structural basis of
N D Schmitt1,2, J N Agar1,2,3
1Department of Chemistry and Chemical Biology, Northeastern University, Boston, MA, USA.
Abstract:
Conformational change and modification of proteins are involved in many cellular functions. However, they can also have adverse effects that are implicated in numerous diseases. How structural change promotes disease is generally not well-understood. This perspective illustrates how mass spectrometry (MS), followed by toxicological and epidemiological validation, can discover disease-relevant structural changes and therapeutic strategies. We (with our collaborators) set out to characterize the structural and toxic consequences of disease-associated mutations and post-translational modifications (PTMs) of the cytosolic antioxidant protein Cu/Zn-superoxide dismutase (SOD1). Previous genetic studies discovered >180 different mutations in the SOD1 gene that caused familial (inherited) amyotrophic lateral sclerosis (fALS). Using hydrogen-deuterium exchange with mass spectrometry, we determined that diverse disease-associated SOD1 mutations cause a common structural defect - perturbation of the SOD1 electrostatic loop. X-ray crystallographic studies had demonstrated that this leads to protein aggregation through a specific interaction between the electrostatic loop and an exposed beta-barrel edge strand. Using epidemiology methods, we then determined that decreased SOD1 stability and increased protein aggregation are powerful risk factors for fALS progression, with a combined hazard ratio > 300 (for comparison, a lifetime of smoking is associated with a hazard ratio of ~15 for lung cancer). The resulting structural model of fALS etiology supported the hypothesis that some sporadic ALS (sALS, ~80% of ALS is not associated with a gene defect) could be caused by post-translational protein modification of wild-type SOD1. We developed immunocapture antibodies and high sensitivity top-down MS methods and characterized PTMs of wild-type SOD1 using human tissue samples. Using global hydrogen-deuterium exchange, X-ray crystallography and neurotoxicology, we then characterized toxic and protective subsets of SOD1 PTMs. To cap this perspective, we present proof-of-concept that post-translational modification can cause disease. We show that numerous mutations (N➔D; Q➔E), which result in the same chemical structure as the PTM deamidation, cause multiple diseases. Copyright © 2017 John Wiley & Sons, Ltd.
Insights
Protein structural changes, like those in SOD1, can cause diseases such as ALS. Mass spectrometry and other methods reveal these changes and potential therapeutic strategies for neurodegenerative diseases.
Area of Science:
- Biochemistry and Molecular Biology
- Neuroscience
- Proteomics
Background:
- Protein conformational changes and modifications are crucial for cellular functions but can lead to diseases when altered.
- Understanding how structural changes in proteins like Cu/Zn-superoxide dismutase (SOD1) contribute to diseases such as amyotrophic lateral sclerosis (ALS) is critical.
- Over 180 SOD1 mutations are linked to familial ALS (fALS), but the underlying structural mechanisms remain unclear.
Purpose of the Study:
- To investigate the structural and toxic consequences of SOD1 mutations and post-translational modifications (PTMs) implicated in ALS.
- To utilize mass spectrometry (MS) coupled with toxicological and epidemiological validation to discover disease-relevant structural changes and therapeutic targets.
- To explore the role of SOD1 PTMs in sporadic ALS (sALS) and demonstrate that PTMs can directly cause disease.
Main Methods:
- Hydrogen-deuterium exchange with mass spectrometry (HDX-MS) to identify structural defects in SOD1.
- X-ray crystallography to elucidate protein aggregation mechanisms.
- Epidemiological studies to assess the risk factors for ALS progression.
- Development of immunocapture antibodies and high-sensitivity top-down MS for characterizing SOD1 PTMs in human tissues.
- Neurotoxicology studies to evaluate the impact of SOD1 PTMs.
Main Results:
- Diverse SOD1 mutations converge on a common structural defect: perturbation of the electrostatic loop, leading to protein aggregation.
- Decreased SOD1 stability and increased aggregation are significant risk factors for fALS progression (hazard ratio > 300).
- Identified distinct subsets of SOD1 PTMs with either toxic or protective effects, providing insights into sALS etiology.
- Demonstrated that mutations mimicking deamidation (N➔D, Q➔E) cause various diseases, supporting the role of PTMs in disease causation.
Conclusions:
- Perturbation of the SOD1 electrostatic loop is a key structural defect in fALS, driving aggregation and disease progression.
- SOD1 PTMs represent a significant factor in sALS pathogenesis, with specific modifications being either detrimental or beneficial.
- This work establishes a framework for using MS-driven structural biology and epidemiology to uncover disease mechanisms and guide therapeutic development for proteinopathies.
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