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A Novel SOD1 Intermediate Oligomer, Role of Free Thiols and Disulfide Exchange

Wild-type human SOD1 forms a highly conserved intra-molecular disulfide bond between C57-C146, and in its native state is greatly stabilized by binding one copper and one zinc atom per monomer rendering the protein dimeric. Loss of copper extinguishes dismutase activity and destabilizes the protein,...

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Autores principales: Koo, Bon-Kyung, Munroe, William, Gralla, Edith B., Valentine, Joan Selverstone, Whitelegge, Julian P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7930385/
https://www.ncbi.nlm.nih.gov/pubmed/33679289
http://dx.doi.org/10.3389/fnins.2020.619279
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author Koo, Bon-Kyung
Munroe, William
Gralla, Edith B.
Valentine, Joan Selverstone
Whitelegge, Julian P.
author_facet Koo, Bon-Kyung
Munroe, William
Gralla, Edith B.
Valentine, Joan Selverstone
Whitelegge, Julian P.
author_sort Koo, Bon-Kyung
collection PubMed
description Wild-type human SOD1 forms a highly conserved intra-molecular disulfide bond between C57-C146, and in its native state is greatly stabilized by binding one copper and one zinc atom per monomer rendering the protein dimeric. Loss of copper extinguishes dismutase activity and destabilizes the protein, increasing accessibility of the disulfide with monomerization accompanying disulfide reduction. A further pair of free thiols exist at C6 and C111 distant from metal binding sites, raising the question of their function. Here we investigate their role in misfolding of SOD1 along a pathway that leads to formation of amyloid fibrils. We present the seeding reaction of a mutant SOD1 lacking free sulfhydryl groups (AS-SOD1) to exclude variables caused by these free cysteines. Completely reduced fibril seeds decreasing the kinetic barrier to cleave the highly conserved intramolecular disulfide bond, and accelerating SOD1 reduction and initiation of fibrillation. Presence or absence of the pair of free thiols affects kinetics of fibrillation. Previously, we showed full maturation with both Cu and Zn prevents this behavior while lack of Cu renders sensitivity to fibrillation, with presence of the native disulfide bond modulating this propensity much more strongly than presence of Zn or dimerization. Here we further investigate the role of reduction of the native C57-C146 disulfide bond in fibrillation of wild-type hSOD1, firstly through removal of free thiols by paired mutations C6A, C111S (AS-SOD1), and secondly in seeded fibrillation reactions modulated by reductant tris (2-carboxyethyl) phosphine (TCEP). Fibrillation of AS-SOD1 was dependent upon disulfide reduction and showed classic lag and exponential growth phases compared with wild-type hSOD1 whose fibrillation trajectories were typically somewhat perturbed. Electron microscopy showed that AS-SOD1 formed classic fibrils while wild-type fibrillation reactions showed the presence of smaller “sausage-like” oligomers in addition to fibrils, highlighting the potential for mixed disulfides involving C6/C111 to disrupt efficient fibrillation. Seeding by addition of sonicated fibrils lowered the TCEP concentration needed for fibrillation in both wild-type and AS-SOD1 providing evidence for template-driven structural disturbance that elevated susceptibility to reduction and thus propensity to fibrillate.
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spelling pubmed-79303852021-03-05 A Novel SOD1 Intermediate Oligomer, Role of Free Thiols and Disulfide Exchange Koo, Bon-Kyung Munroe, William Gralla, Edith B. Valentine, Joan Selverstone Whitelegge, Julian P. Front Neurosci Neuroscience Wild-type human SOD1 forms a highly conserved intra-molecular disulfide bond between C57-C146, and in its native state is greatly stabilized by binding one copper and one zinc atom per monomer rendering the protein dimeric. Loss of copper extinguishes dismutase activity and destabilizes the protein, increasing accessibility of the disulfide with monomerization accompanying disulfide reduction. A further pair of free thiols exist at C6 and C111 distant from metal binding sites, raising the question of their function. Here we investigate their role in misfolding of SOD1 along a pathway that leads to formation of amyloid fibrils. We present the seeding reaction of a mutant SOD1 lacking free sulfhydryl groups (AS-SOD1) to exclude variables caused by these free cysteines. Completely reduced fibril seeds decreasing the kinetic barrier to cleave the highly conserved intramolecular disulfide bond, and accelerating SOD1 reduction and initiation of fibrillation. Presence or absence of the pair of free thiols affects kinetics of fibrillation. Previously, we showed full maturation with both Cu and Zn prevents this behavior while lack of Cu renders sensitivity to fibrillation, with presence of the native disulfide bond modulating this propensity much more strongly than presence of Zn or dimerization. Here we further investigate the role of reduction of the native C57-C146 disulfide bond in fibrillation of wild-type hSOD1, firstly through removal of free thiols by paired mutations C6A, C111S (AS-SOD1), and secondly in seeded fibrillation reactions modulated by reductant tris (2-carboxyethyl) phosphine (TCEP). Fibrillation of AS-SOD1 was dependent upon disulfide reduction and showed classic lag and exponential growth phases compared with wild-type hSOD1 whose fibrillation trajectories were typically somewhat perturbed. Electron microscopy showed that AS-SOD1 formed classic fibrils while wild-type fibrillation reactions showed the presence of smaller “sausage-like” oligomers in addition to fibrils, highlighting the potential for mixed disulfides involving C6/C111 to disrupt efficient fibrillation. Seeding by addition of sonicated fibrils lowered the TCEP concentration needed for fibrillation in both wild-type and AS-SOD1 providing evidence for template-driven structural disturbance that elevated susceptibility to reduction and thus propensity to fibrillate. Frontiers Media S.A. 2021-02-18 /pmc/articles/PMC7930385/ /pubmed/33679289 http://dx.doi.org/10.3389/fnins.2020.619279 Text en Copyright © 2021 Koo, Munroe, Gralla, Valentine and Whitelegge. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
Koo, Bon-Kyung
Munroe, William
Gralla, Edith B.
Valentine, Joan Selverstone
Whitelegge, Julian P.
A Novel SOD1 Intermediate Oligomer, Role of Free Thiols and Disulfide Exchange
title A Novel SOD1 Intermediate Oligomer, Role of Free Thiols and Disulfide Exchange
title_full A Novel SOD1 Intermediate Oligomer, Role of Free Thiols and Disulfide Exchange
title_fullStr A Novel SOD1 Intermediate Oligomer, Role of Free Thiols and Disulfide Exchange
title_full_unstemmed A Novel SOD1 Intermediate Oligomer, Role of Free Thiols and Disulfide Exchange
title_short A Novel SOD1 Intermediate Oligomer, Role of Free Thiols and Disulfide Exchange
title_sort novel sod1 intermediate oligomer, role of free thiols and disulfide exchange
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7930385/
https://www.ncbi.nlm.nih.gov/pubmed/33679289
http://dx.doi.org/10.3389/fnins.2020.619279
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