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Slow Folding of a Helical Protein: Large Barriers, Strong Internal Friction, or a Shallow, Bumpy Landscape?

[Image: see text] The rate at which a protein molecule folds is determined by opposing energetic and entropic contributions to the free energy that shape the folding landscape. Delineating the extent to which they impact the diffusional barrier-crossing events, including the magnitude of internal fr...

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Autores principales: Subramanian, Sandhyaa, Golla, Hemashree, Divakar, Kalivarathan, Kannan, Adithi, de Sancho, David, Naganathan, Athi N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7659034/
https://www.ncbi.nlm.nih.gov/pubmed/32955882
http://dx.doi.org/10.1021/acs.jpcb.0c05976
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author Subramanian, Sandhyaa
Golla, Hemashree
Divakar, Kalivarathan
Kannan, Adithi
de Sancho, David
Naganathan, Athi N.
author_facet Subramanian, Sandhyaa
Golla, Hemashree
Divakar, Kalivarathan
Kannan, Adithi
de Sancho, David
Naganathan, Athi N.
author_sort Subramanian, Sandhyaa
collection PubMed
description [Image: see text] The rate at which a protein molecule folds is determined by opposing energetic and entropic contributions to the free energy that shape the folding landscape. Delineating the extent to which they impact the diffusional barrier-crossing events, including the magnitude of internal friction and barrier height, has largely been a challenging task. In this work, we extract the underlying thermodynamic and dynamic contributions to the folding rate of an unusually slow-folding helical DNA-binding domain, PurR, which shares the characteristics of ultrafast downhill-folding proteins but nonetheless appears to exhibit an apparent two-state equilibrium. We combine equilibrium spectroscopy, temperature-viscosity-dependent kinetics, statistical mechanical modeling, and coarse-grained simulations to show that the conformational behavior of PurR is highly heterogeneous characterized by a large spread in melting temperatures, marginal thermodynamic barriers, and populated partially structured states. PurR appears to be at the threshold of disorder arising from frustrated electrostatics and weak packing that in turn slows down folding due to a shallow, bumpy landscape and not due to large thermodynamic barriers or strong internal friction. Our work highlights how a strong temperature dependence on the pre-exponential could signal a shallow landscape and not necessarily a slow-folding diffusion coefficient, thus determining the folding timescales of even millisecond folding proteins and hints at possible structural origins for the shallow landscape.
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spelling pubmed-76590342020-11-13 Slow Folding of a Helical Protein: Large Barriers, Strong Internal Friction, or a Shallow, Bumpy Landscape? Subramanian, Sandhyaa Golla, Hemashree Divakar, Kalivarathan Kannan, Adithi de Sancho, David Naganathan, Athi N. J Phys Chem B [Image: see text] The rate at which a protein molecule folds is determined by opposing energetic and entropic contributions to the free energy that shape the folding landscape. Delineating the extent to which they impact the diffusional barrier-crossing events, including the magnitude of internal friction and barrier height, has largely been a challenging task. In this work, we extract the underlying thermodynamic and dynamic contributions to the folding rate of an unusually slow-folding helical DNA-binding domain, PurR, which shares the characteristics of ultrafast downhill-folding proteins but nonetheless appears to exhibit an apparent two-state equilibrium. We combine equilibrium spectroscopy, temperature-viscosity-dependent kinetics, statistical mechanical modeling, and coarse-grained simulations to show that the conformational behavior of PurR is highly heterogeneous characterized by a large spread in melting temperatures, marginal thermodynamic barriers, and populated partially structured states. PurR appears to be at the threshold of disorder arising from frustrated electrostatics and weak packing that in turn slows down folding due to a shallow, bumpy landscape and not due to large thermodynamic barriers or strong internal friction. Our work highlights how a strong temperature dependence on the pre-exponential could signal a shallow landscape and not necessarily a slow-folding diffusion coefficient, thus determining the folding timescales of even millisecond folding proteins and hints at possible structural origins for the shallow landscape. American Chemical Society 2020-09-21 2020-10-15 /pmc/articles/PMC7659034/ /pubmed/32955882 http://dx.doi.org/10.1021/acs.jpcb.0c05976 Text en This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Subramanian, Sandhyaa
Golla, Hemashree
Divakar, Kalivarathan
Kannan, Adithi
de Sancho, David
Naganathan, Athi N.
Slow Folding of a Helical Protein: Large Barriers, Strong Internal Friction, or a Shallow, Bumpy Landscape?
title Slow Folding of a Helical Protein: Large Barriers, Strong Internal Friction, or a Shallow, Bumpy Landscape?
title_full Slow Folding of a Helical Protein: Large Barriers, Strong Internal Friction, or a Shallow, Bumpy Landscape?
title_fullStr Slow Folding of a Helical Protein: Large Barriers, Strong Internal Friction, or a Shallow, Bumpy Landscape?
title_full_unstemmed Slow Folding of a Helical Protein: Large Barriers, Strong Internal Friction, or a Shallow, Bumpy Landscape?
title_short Slow Folding of a Helical Protein: Large Barriers, Strong Internal Friction, or a Shallow, Bumpy Landscape?
title_sort slow folding of a helical protein: large barriers, strong internal friction, or a shallow, bumpy landscape?
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7659034/
https://www.ncbi.nlm.nih.gov/pubmed/32955882
http://dx.doi.org/10.1021/acs.jpcb.0c05976
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