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Updated: May 9, 2026

Paramagnetic Relaxation Enhancement for Detecting and Characterizing Self-Associations of Intrinsically Disordered Proteins
Published on: September 23, 2021
NMR determines transient structure and dynamics in the disordered C-terminal domain of WASp interacting protein
Noam Y Haba1, Renana Gross, Jiri Novacek
1Department of Chemistry, Bar Ilan University, Ramat Gan, Israel.
Insights
WASP-interacting protein (WIP) has latent structure in its disordered C-terminal domain, influencing its function in actin regulation and disease. This study reveals transient helical and extended conformations critical for WIP-WASp binding.
Area of Science:
- Biochemistry
- Structural Biology
- Molecular Biophysics
Background:
- WASP-interacting protein (WIP) is crucial for actin polymerization, regulating Wiskott-Aldrich syndrome protein (WASp) activation and degradation.
- The WIP-WASp interaction is implicated in Wiskott-Aldrich syndrome (WAS) and X-linked thrombocytopenia (XLT).
- WIP is predicted to be an intrinsically disordered protein, challenging traditional structure-function paradigms.
Purpose of the Study:
- To investigate the biophysical behavior of the WIP C-terminal domain (WIP(C)) in its unbound state using NMR.
- To determine the structural characteristics and dynamics of WIP(C) and its WASp-binding site.
- To understand the conformational landscape of intrinsically disordered proteins.
Main Methods:
- Utilized 5D-NMR (13)C-detected NMR experiments with nonuniform sampling for resonance assignment.
- Analyzed secondary chemical shifts, (15)N relaxation rates, and solvent exchange protection.
- Investigated temperature-dependent effects on chemical shifts.
Main Results:
- Achieved full resonance assignment for WIP(C), a proline-rich fragment (residues 407-503).
- Detected transient structures within the WASp-binding site, including helical propensities (residues 446-456) and extended conformations (residues 468-478).
- Demonstrated that elevated temperatures reduce the structural character of WIP(C), indicating latent, temperature-sensitive structures.
Conclusions:
- The disordered WIP(C) fragment possesses regions of latent structure connected by flexible loops.
- This architecture has significant implications for WIP's binding affinity and its role in cellular processes.
- Provides insights into the structure-function relationship of intrinsically disordered proteins.
Abstract:
WASp-interacting protein (WIP) is a 503-residue proline-rich polypeptide expressed in human T cells. The WIP C-terminal domain binds to Wiskott-Aldrich syndrome protein (WASp) and regulates its activation and degradation, and the WIP-WASp interaction has been shown to be critical for actin polymerization and implicated in the onset of WAS and X-linked thrombocytopenia. WIP is predicted to be an intrinsically disordered protein, a class of polypeptides that are of great interest because they violate the traditional structure-function paradigm. In this first (to our knowledge) study of WIP in its unbound state, we used NMR to investigate the biophysical behavior of WIP(C), a C-terminal domain fragment of WIP that includes residues 407-503 and contains the WASp-binding site. In light of the poor spectral dispersion exhibited by WIP(C) and the high occurrence (25%) of proline residues, we employed 5D-NMR(13)C-detected NMR experiments with nonuniform sampling to accomplish full resonance assignment. Secondary chemical-shift analysis, (15)N relaxation rates, and protection from solvent exchange all concurred in detecting transient structure located in motifs that span the WASp-binding site. Residues 446-456 exhibited a propensity for helical conformation, and an extended conformation followed by a short, capped helix was observed for residues 468-478. The (13)C-detected approach allows chemical-shift assignment in the WIP(C) polyproline stretches and thus sheds light on their conformation and dynamics. The effects of temperature on chemical shifts referenced to a denatured sample of the polypeptide demonstrate that heating reduces the structural character of WIP(C). Thus, we conclude that the disordered WIP(C) fragment is comprised of regions with latent structure connected by flexible loops, an architecture with implications for binding affinity and function.

