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Publications (6 of 6) Show all publications
Wang, H., Logan, D. T., Danielsson, J. & Oliveberg, M. (2020). Exposing the distinctive modular behavior of β-strands and α-helices in folded proteins. Proceedings of the National Academy of Sciences of the United States of America, 117(46), 28775-28783
Open this publication in new window or tab >>Exposing the distinctive modular behavior of β-strands and α-helices in folded proteins
2020 (English)In: Proceedings of the National Academy of Sciences of the United States of America, ISSN 0027-8424, E-ISSN 1091-6490, Vol. 117, no 46, p. 28775-28783Article in journal (Refereed) Published
Abstract [en]

Although folded proteins are commonly depicted as simplistic combinations of β-strands and α-helices, the actual properties and functions of these secondary-structure elements in their native contexts are just partly understood. The principal reason is that the behavior of individual β- and α-elements is obscured by the global folding cooperativity. In this study, we have circumvented this problem by designing frustrated variants of the mixed α/β-protein S6, which allow the structural behavior of individual β-strands and α-helices to be targeted selectively by stopped-flow kinetics, X-ray crystallography, and solution-state NMR. Essentially, our approach is based on provoking intramolecular "domain swap." The results show that the α- and β-elements have quite different characteristics: The swaps of β-strands proceed via global unfolding, whereas the α-helices are free to swap locally in the native basin. Moreover, the α-helices tend to hybridize and to promote protein association by gliding over to neighboring molecules. This difference in structural behavior follows directly from hydrogen-bonding restrictions and suggests that the protein secondary structure defines not only tertiary geometry, but also maintains control in function and structural evolution. Finally, our alternative approach to protein folding and native-state dynamics presents a generally applicable strategy for in silico design of protein models that are computationally testable in the microsecond–millisecond regime.

Keywords
structural cooperativity, secondary structure, protein dynamics, protein design
National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-188725 (URN)10.1073/pnas.1920455117 (DOI)000591360600005 ()33148805 (PubMedID)
Available from: 2021-01-19 Created: 2021-01-19 Last updated: 2022-02-25Bibliographically approved
Yang, F., Wang, H., Logan, D. T., Mu, X., Danielsson, J. & Oliveberg, M. (2018). The Cost of Long Catalytic Loops in Folding and Stability of the ALS-Associated Protein SOD1. Journal of the American Chemical Society, 140(48), 16570-16579
Open this publication in new window or tab >>The Cost of Long Catalytic Loops in Folding and Stability of the ALS-Associated Protein SOD1
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2018 (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.

National Category
Chemical Sciences
Identifiers
urn:nbn:se:su:diva-163707 (URN)10.1021/jacs.8b08141 (DOI)000452693800029 ()30359015 (PubMedID)
Available from: 2019-01-18 Created: 2019-01-18 Last updated: 2022-02-26Bibliographically approved
Wang, H., Lang, L., Logan, D. T., Danielsson, J. & Oliveberg, M. (2016). Tricking a Protein To Swap Strands. Journal of the American Chemical Society, 138(48), 15571-15579
Open this publication in new window or tab >>Tricking a Protein To Swap Strands
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2016 (English)In: Journal of the American Chemical Society, ISSN 0002-7863, E-ISSN 1520-5126, Vol. 138, no 48, p. 15571-15579Article in journal (Refereed) Published
Abstract [en]

Despite continuing interest in partly unfolded proteins as precursors for aggregation and adverse gain-of-function in human disease, there is yet little known about the local transitions of native structures that possibly lead to such intermediate states. To target this problem, we present here a protein-design strategy that allows real-time detection of rupture and swapping of complete secondary-structure elements in globular proteins molecular events that have previously been inaccessible experimental analysis. The approach is applied to the dynamic beta-barrel of SOD1, associated with pathologic aggregation in the neurodegenerative disease ALS. Data show that rupture and re-insertion of individual beta-strands do not take place locally but require the SOD1 barrel to unfold globally. The finding questions the very existence of partly unfolded intermediates in the SOD1 aggregation process and presents new clues to the mechanism by which hydrogen bonding maintains global structural integrity.

National Category
Chemical Sciences
Identifiers
urn:nbn:se:su:diva-137569 (URN)10.1021/jacs.6b05151 (DOI)000389623800016 ()
Available from: 2017-01-11 Created: 2017-01-09 Last updated: 2022-02-28Bibliographically approved
Danielsson, J., Mu, X., Lang, L., Wang, H., Binolfi, A., Theillet, F.-X., . . . Oliveberg, M. (2015). Thermodynamics of protein destabilization in live cells. Proceedings of the National Academy of Sciences of the United States of America, 112(40), 12402-12407
Open this publication in new window or tab >>Thermodynamics of protein destabilization in live cells
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2015 (English)In: Proceedings of the National Academy of Sciences of the United States of America, ISSN 0027-8424, E-ISSN 1091-6490, Vol. 112, no 40, p. 12402-12407Article in journal (Refereed) Published
Abstract [en]

Although protein folding and stability have been well explored under simplified conditions in vitro, it is yet unclear how these basic self-organization events are modulated by the crowded interior of live cells. To find out, we use here in-cell NMR to follow at atomic resolution the thermal unfolding of a beta-barrel protein inside mammalian and bacterial cells. Challenging the view from in vitro crowding effects, we find that the cells destabilize the protein at 37 degrees C but with a conspicuous twist: While the melting temperature goes down the cold unfolding moves into the physiological regime, coupled to an augmented heat-capacity change. The effect seems induced by transient, sequence-specific, interactions with the cellular components, acting preferentially on the unfolded ensemble. This points to a model where the in vivo influence on protein behavior is case specific, determined by the individual protein's interplay with the functionally optimized interaction landscape of the cellular interior.

Keywords
thermodynamics, protein stability, crowding, in vivo, NMR
National Category
Biological Sciences
Research subject
Biochemistry
Identifiers
urn:nbn:se:su:diva-123537 (URN)10.1073/pnas.1511308112 (DOI)000363125400053 ()
Available from: 2015-11-27 Created: 2015-11-27 Last updated: 2022-02-23Bibliographically approved
Yang, F., Huabing, W., Xin, M., Logan, D., Sörensen, T., Leeb, S., . . . Oliveberg, M.In-cell destabilization of SOD1 induced by surface-exposed histidines.
Open this publication in new window or tab >>In-cell destabilization of SOD1 induced by surface-exposed histidines
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(English)Manuscript (preprint) (Other academic)
National Category
Biochemistry Molecular Biology Biophysics Neurosciences Physical Chemistry
Research subject
Biochemistry; Biophysics; Physical Chemistry
Identifiers
urn:nbn:se:su:diva-187926 (URN)
Available from: 2020-12-16 Created: 2020-12-16 Last updated: 2025-02-20Bibliographically approved
Yang, F., Wang, H., Mu, X., Logan, D., Sörensen, T., Leeb, S., . . . Oliveberg, M.In-cell destabilization of SOD1 is induced by surface-exposed histidines.
Open this publication in new window or tab >>In-cell destabilization of SOD1 is induced by surface-exposed histidines
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(English)Manuscript (preprint) (Other academic)
National Category
Biochemistry Molecular Biology
Research subject
Biochemistry
Identifiers
urn:nbn:se:su:diva-203951 (URN)
Available from: 2022-04-20 Created: 2022-04-20 Last updated: 2025-02-20
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0003-1967-3224

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