Fragile protein folds: sequence and environmental factors affecting the equilibrium of two interconverting, stably folded protein conformations
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Published:2021-03-10
Issue:1
Volume:2
Page:63-76
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ISSN:2699-0016
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Container-title:Magnetic Resonance
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language:en
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Short-container-title:Magn. Reson.
Author:
Xu Xingjian, Dikiy Igor, Evans Matthew R., Marcelino Leandro P., Gardner Kevin H.ORCID
Abstract
Abstract. Recent research on fold-switching metamorphic proteins has revealed some notable exceptions to Anfinsen's hypothesis of protein folding. We have previously described how a single point mutation can enable a well-folded protein domain, one of the two PAS (Per-ARNT-Sim) domains of the human ARNT (aryl hydrocarbon receptor nuclear translocator) protein, to interconvert between two conformers related by a slip of an internal β strand. Using this protein as a test case, we advance the concept of a “fragile fold”, a protein fold that can reversibly rearrange into another fold that differs by a substantial number of hydrogen bonds, entailing reorganization of single secondary structure elements to more drastic changes seen in metamorphic proteins. Here we use a battery of biophysical tests to examine several factors affecting the equilibrium between the two conformations of the switching ARNT PAS-B Y456T protein. Of note is that we find that factors which impact the HI loop preceding the shifted Iβ strand affect both the equilibrium levels of the two conformers and the denatured state which links them in the interconversion process. Finally, we describe small molecules that selectively bind to and stabilize the wild-type conformation of ARNT PAS-B. These studies form a toolkit for studying fragile protein folds and could enable ways to modulate the biological functions of such fragile folds, both in natural and engineered proteins.
Funder
National Science Foundation National Institutes of Health
Publisher
Copernicus GmbH
Reference61 articles.
1. Alexander, P. A., He, Y., Chen, Y., Orban, J., and Bryan, P. N.: A minimal
sequence code for switching protein structure and function, P. Natl.
Acad. Sci. USA, 106, 21149–21154, https://doi.org/10.1073/pnas.0906408106, 2009. 2. Alexandrescu, A. T. and Shortle, D.: Backbone dynamics of a highly
disordered 131 residue fragment of staphylococcal nuclease, J. Mol. Biol.,
242, 527–546, 1994. 3. Amezcua, C. A., Harper, S. M., Rutter, J., and Gardner, K. H.: Structure and
interactions of PAS kinase N-terminal PAS domain: model for intramolecular
kinase regulation, Structure, 10, 1349–1361, https://doi.org/10.1016/s0969-2126(02)00857-2, 2002. 4. Anfinsen, C. B.: Principles that Govern the Folding of Protein Chains,
Science, 181, 223–230, https://doi.org/10.1126/science.181.4096.223, 1973. 5. Best, J. L., Amezcua, C. A., Mayr, B., Flechner, L., Murawsky, C. M.,
Emerson, B., Zor, T., Gardner, K. H., and Montminy, M.: Identification of
small-molecule antagonists that inhibit an activator: coactivator
interaction, P. Natl. Acad. Sci. USA, 101, 17622–17627,
https://doi.org/10.1073/pnas.0406374101, 2004.
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