Protein kinetics of superoxide dismutase‐1 in familial and sporadic amyotrophic lateral sclerosis

Author:

Ly Cindy V.1ORCID,Ireland Margaret D.1,Self Wade K.1,Bollinger James1,Jockel‐Balsarotti Jennifer1,Herzog Hillary1,Allred Peggy1,Miller Leah2,Doyle Michael2,Anez‐Bruzual Isabel2,Trikamji Bhavesh1,Hyman Ted1,Kung Tyler1,Nicholson Katherine2ORCID,Bucelli Robert C.1,Patterson Bruce W.3,Bateman Randall J.145,Miller Timothy M.14ORCID

Affiliation:

1. Department of Neurology Washington University Saint Louis Missouri USA

2. Sean M. Healey & AMG Center for ALS, Department of Neurology Massachusetts General Hospital Boston Massachusetts USA

3. Department of Medicine Washington University Saint Louis Missouri USA

4. Hope Center for Neurological Disorders Washington University Saint Louis Missouri USA

5. Knight Alzheimer's Disease Research Center Washington University Saint Louis Missouri USA

Abstract

AbstractObjectiveAccumulation of misfolded superoxide dismutase‐1 (SOD1) is a pathological hallmark of SOD1‐related amyotrophic lateral sclerosis (ALS) and is observed in sporadic ALS where its role in pathogenesis is controversial. Understanding in vivo protein kinetics may clarify how SOD1 influences neurodegeneration and inform optimal dosing for therapies that lower SOD1 transcripts.MethodsWe employed stable isotope labeling paired with mass spectrometry to evaluate in vivo protein kinetics and concentration of soluble SOD1 in cerebrospinal fluid (CSF) of SOD1 mutation carriers, sporadic ALS participants and controls. A deaminated SOD1 peptide, SDGPVKV, that correlates with protein stability was also measured.ResultsIn participants with heterozygous SOD1A5V mutations, known to cause rapidly progressive ALS, mutant SOD1 protein exhibited ~twofold faster turnover and ~ 16‐fold lower concentration compared to wild‐type SOD1 protein. SDGPVKV levels were increased in SOD1A5V carriers relative to controls. Thus, SOD1 mutations impact protein kinetics and stability. We applied this approach to sporadic ALS participants and found that SOD1 turnover, concentration, and SDGPVKV levels are not significantly different compared to controls.InterpretationThese results highlight the ability of stable isotope labeling approaches and peptide deamidation to discern the influence of disease mutations on protein kinetics and stability and support implementation of this method to optimize clinical trial design of gene and molecular therapies for neurological disorders.Trial RegistrationClinicaltrials.gov: NCT03449212.

Funder

National Institutes of Health

Publisher

Wiley

Subject

Neurology (clinical),General Neuroscience

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