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The Cost of Long Catalytic Loops in Folding and Stability of the ALS-Associated Protein SOD1
Stockholm University, Faculty of Science, Department of Biochemistry and Biophysics.
Stockholm University, Faculty of Science, Department of Biochemistry and Biophysics.
Stockholm University, Faculty of Science, Department of Biochemistry and Biophysics.
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Number of Authors: 62018 (English)In: Journal of the American Chemical Society, ISSN 0002-7863, E-ISSN 1520-5126, Vol. 140, no 48, p. 16570-16579Article in journal (Refereed) Published
Abstract [en]

A conspicuous feature of the amyotrophic lateral sclerosis (ALS)-associated protein SOD1 is that its maturation into a functional enzyme relies on local folding of two disordered loops into a catalytic subdomain. To drive the disorder-to-order transition, the protein employs a single Zn2+ ion. The question is then if the entropic penalty of maintaining such disordered loops in the immature apoSOD1 monomer is large enough to explain its unusually low stability, slow folding, and pathological aggregation in ALS. To find out, we determined the effects of systematically altering the SOD1-loop lengths by protein redesign. The results show that the loops destabilize the apoSOD1 monomer by similar to 3 kcal/mol, rendering the protein marginally stable and accounting for its aggregation behavior. Yet the effect on the global folding kinetics remains much smaller with a transition-state destabilization of <1 kcal/mol. Notably, this 1/3 transition-state to folded-state stability ratio provides a clear-cut example of the enigmatic disagreement between the Leffler alpha value from loop-length alterations (typically 1/3) and the standard reaction coordinates based on solvent perturbations (typically >2/3). Reconciling the issue, we demonstrate that the disagreement disappears when accounting for the progressive loop shortening that occurs along the folding pathway. The approach assumes a consistent Flory loop entropy scaling factor of c = 1.48 for both equilibrium and kinetic data and has the added benefit of verifying the tertiary interactions of the folding nucleus as determined by phi-value analysis. Thus, SOD1 not only represents a case where evolution of key catalytic function has come with the drawback of a destabilized apo state but also stands out as a well-suited model system for exploring the physicochemical details of protein self-organization.

Place, publisher, year, edition, pages
2018. Vol. 140, no 48, p. 16570-16579
National Category
Chemical Sciences
Identifiers
URN: urn:nbn:se:su:diva-163707DOI: 10.1021/jacs.8b08141ISI: 000452693800029PubMedID: 30359015OAI: oai:DiVA.org:su-163707DiVA, id: diva2:1280245
Available from: 2019-01-18 Created: 2019-01-18 Last updated: 2022-02-26Bibliographically approved
In thesis
1. Biophysical chemistry of the ALS-associated protein SOD1: Implications for folding, aggregation and in-cell behaviour
Open this publication in new window or tab >>Biophysical chemistry of the ALS-associated protein SOD1: Implications for folding, aggregation and in-cell behaviour
2021 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Biophysical chemistry deals with the structural behavior, properties and molecular function of biological macromolecules. A long-standing challenge is here to establish how these macromolecular features change upon transfer from simplified conditions in vitro to the crowded and molecularly complex environment of live cells.  

This thesis focuses on establishing a general overview of the structural behavior and interaction properties of the ALS-associated protein superoxide dismutase 1 (SOD1) in its natural cellular environment. Importantly, SOD1 constitutes also a multifaceted model system for the yet poorly understood mechanism of protein-aggregation disease, since it is readily amenable to protein-engineering analysis. The focus is on (i) SOD1 folding, (ii) the modulation of the SOD1 properties induced by intracellular interactions and (iii) the process of SOD1 fibrillation, all of which central to the understanding of the ALS disease mechanism. First, we investigate the biophysical role of the disordered catalytic loops in the apoSOD1 monomer, what is identified as the primary aggregation precursor. The results show that these loops play a pivotal role in modulation the apoSOD1 stability due to the generic Flory-entropy penalty, shedding new light to why this species is biased to be aggregation prone. Second, we target the diffusive interactions between SOD1 and the crowded intracellular environment by in-cell NMR. Our findings are that both the rotational tumbling and in-cell stability are controlled by basic physicochemical rules relating to the SOD1 surface properties. Finally, we analyze the kinetics of the SOD1-aggregation behavior in vitro. The observations confirm that the disordered SOD1 loops indeed accelerate the aggregation process because of their penalty to the apo state stability and show, additionally, that they influence the fibril stability.

The physicochemical cues exposed by this thesis work provide not only fundamental clues to our understanding of protein properties, but shed also new light on disease-promoting properties ALS-associated protein SOD1.

Place, publisher, year, edition, pages
Stockholm: Department of Biochemistry and Biophysics, Stockholm University, 2021. p. 67
Keywords
SOD1 ALS folding in-cell NMR aggregation
National Category
Biochemistry Molecular Biology Biophysics Physical Chemistry
Research subject
Biochemistry
Identifiers
urn:nbn:se:su:diva-187932 (URN)978-91-7911-394-0 (ISBN)978-91-7911-395-7 (ISBN)
Public defence
2021-02-12, Magnélisalen, Kemiska övningslaboratoriet, Svante Arrhenius väg 16 B or online via Zoom, public link is available at the department website, Stockholm, 10:00 (English)
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Available from: 2021-01-20 Created: 2020-12-16 Last updated: 2025-02-20Bibliographically approved

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Yang, FanWang, HuabingLogan, Derek T.Mu, XinDanielsson, JensOliveberg, Mikael

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