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On the importance of polar interactions for complexes containing intrinsically disordered proteins
Eric T C Wong1, Dokyun Na, Jörg Gsponer
1Centre for High-Throughput Biology, University of British Columbia, East Mall, Vancouver, Canada.
Insights
Intrinsically disordered (ID) protein segments mediate molecular recognition. Polar interactions, not just hydrophobic ones, are key to the high specificity of these crucial ID protein interactions.
Area of Science:
- Biochemistry
- Structural Biology
- Molecular Biology
Background:
- Proteins with intrinsically disordered (ID) segments are vital for cell signaling and regulation.
- ID segments often contain regions mediating molecular recognition, with specificity proposed to arise from coupled folding and binding.
- The role of hydrophobic residues in ID protein interaction specificity has been debated.
Purpose of the Study:
- To investigate the role of polar and charged residues in interactions mediated by ID segments.
- To analyze the contribution of electrostatic interactions to the specificity of ID protein complexes.
Main Methods:
- Identification of globular protein-ID segment complexes using radius-of-gyration criteria.
- Analysis of interface composition, including hydrophobic and polar residues.
- Computational alanine scanning and salt-bridge analysis.
- Calculation of electrostatic contributions to binding free energy.
Main Results:
- ID segment-globular protein interfaces are enriched in hydrophobic residues, contributing to stability.
- Polar interactions play a more significant role in ID complexes compared to structured protein complexes.
- ID interfaces exhibit higher electrostatic complementarity than structured protein interfaces.
- Stronger Coulombic interactions in ID complexes are offset by higher polar-desolvation penalties.
Conclusions:
- Polar interactions are a critical factor in the high specificity of ID segment-mediated interactions.
- Electrostatic complementarity significantly contributes to the binding of ID segments to globular proteins.
Abstract:
There is a growing recognition for the importance of proteins with large intrinsically disordered (ID) segments in cell signaling and regulation. ID segments in these proteins often harbor regions that mediate molecular recognition. Coupled folding and binding of the recognition regions has been proposed to confer high specificity to interactions involving ID segments. However, researchers recently questioned the origin of the interaction specificity of ID proteins because of the overrepresentation of hydrophobic residues in their interaction interfaces. Here, we focused on the role of polar and charged residues in interactions mediated by ID segments. Making use of the extended nature of most ID segments when in complex with globular proteins, we first identified large numbers of complexes between globular proteins and ID segments by using radius-of-gyration-based selection criteria. Consistent with previous studies, we found the interfaces of these complexes to be enriched in hydrophobic residues, and that these residues contribute significantly to the stability of the interaction interface. However, our analyses also show that polar interactions play a larger role in these complexes than in structured protein complexes. Computational alanine scanning and salt-bridge analysis indicate that interfaces in ID complexes are highly complementary with respect to electrostatics, more so than interfaces of globular proteins. Follow-up calculations of the electrostatic contributions to the free energy of binding uncovered significantly stronger Coulombic interactions in complexes harbouring ID segments than in structured protein complexes. However, they are counter-balanced by even higher polar-desolvation penalties. We propose that polar interactions are a key contributing factor to the observed high specificity of ID segment-mediated interactions.
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