Features of Protein Unfolding Transitions and Their Relation to Domain Topology Probed by Single-Molecule FRET
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sample Preparation
2.2. Confocal Microscopy and smFRET Analysis
3. Results and Discussion
3.1. Development of Denaturant-Induced Intra-Domain Distances
3.2. Unfolding Transitions Related to Domain Topology
- All enclosed structure elements represent, at least a part, i.e., one to four strands out of the six parallel β-strands, of the Rossmann fold, in most cases sandwiched by the accompanied α-helices.
- Significant inter-dye distance changes between the different states (native, unfolded, and, if present, compact intermediate) were only observed if one of the dye attachment positions was close to a further secondary structure element (which was not part of the Rossmann fold, but which represented one or two β-strands that were also part of the enclosed structure elements (i.e., highlighted in color)). This condition was fulfilled for the N3-and C-3 variants (TS) and for the N1-and C2-variants (CI). Importantly, it was not fulfilled for the N2- and C1-variants (NT).
- Looking at the domain topologies, differences between the two-state and compact intermediate transitions seem to be related to which position within the Rossmann fold one of the two dye attachment sites was located in. A more upstream position of the dye attachment site appeared to reveal the compact intermediate, whereas a more downstream attachment site did not (position 1 versus position 34 for the N-variants and position 202 versus position 256 for the C-variants).
4. Conclusions and Outlook
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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N-Domain | C-Domain | |||||
---|---|---|---|---|---|---|
Label Positions | 1–135 N1-Variant | 1–88 N2-Variant | 34–135 N3-Variant | 202–256 C1-Variant | 202–290 C2-Variant | 256–290 C3-Variant |
# Residues | 135 | 88 | 101 | 54 | 88 | 34 |
Native RDA (0 M) | 48 Å | 51 Å | 38 Å | 51 Å | 57 Å | 31 Å |
Intermediate RDA (0.6–0.7 M) | 43 Å | - | - | - | 45 Å | - |
Unfolded RDA (≥1 M) | 75 Å | 52 Å | 65 Å | 51 Å | 63 Å | 54 Å |
Polymer | 76 Å | 61 Å | 65 Å | 48 Å | 61 Å | 38 Å |
Type of transition | CI | NT | TS | NT | CI | TS |
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Bustorff, N.; Fitter, J. Features of Protein Unfolding Transitions and Their Relation to Domain Topology Probed by Single-Molecule FRET. Biomolecules 2023, 13, 1280. https://doi.org/10.3390/biom13091280
Bustorff N, Fitter J. Features of Protein Unfolding Transitions and Their Relation to Domain Topology Probed by Single-Molecule FRET. Biomolecules. 2023; 13(9):1280. https://doi.org/10.3390/biom13091280
Chicago/Turabian StyleBustorff, Nuno, and Jörg Fitter. 2023. "Features of Protein Unfolding Transitions and Their Relation to Domain Topology Probed by Single-Molecule FRET" Biomolecules 13, no. 9: 1280. https://doi.org/10.3390/biom13091280
APA StyleBustorff, N., & Fitter, J. (2023). Features of Protein Unfolding Transitions and Their Relation to Domain Topology Probed by Single-Molecule FRET. Biomolecules, 13(9), 1280. https://doi.org/10.3390/biom13091280