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Updated: May 4, 2026

Author Spotlight: Exploring Intrinsically Disordered Protein Dynamics Through NMR Relaxation Experiments
Published on: November 1, 2024
Flexible and rigid structures in HIV-1 p17 matrix protein monitored by relaxation and amide proton exchange with NMR
Yuka Ohori1, Honoka Okazaki1, Satoru Watanabe2
1Faculty of Pharmaceutical Sciences, Teikyo Heisei University, Nakano, Tokyo 164-8530, Japan.
Abstract:
The HIV-1 p17 matrix protein is a multifunctional protein that interacts with other molecules including proteins and membranes. The dynamic structure between its folded and partially unfolded states can be critical for the recognition of interacting molecules. One of the most important roles of the p17 matrix protein is its localization to the plasma membrane with the Gag polyprotein. The myristyl group attached to the N-terminus on the p17 matrix protein functions as an anchor for binding to the plasma membrane. Biochemical studies revealed that two regions are important for its function: D14-L31 and V84-V88. Here, the dynamic structures of the p17 matrix protein were studied using NMR for relaxation and amide proton exchange experiments at the physiological pH of 7.0. The results revealed that the α12-loop, which includes the 14-31 region, was relatively flexible, and that helix 4, including the 84-88 region, was the most protected helix in this protein. However, the residues in the α34-loop near helix 4 had a low order parameter and high exchange rate of amide protons, indicating high flexibility. This region is probably flexible because this loop functions as a hinge for optimizing the interactions between helices 3 and 4. The C-terminal long region of K113-Y132 adopted a disordered structure. Furthermore, the C-terminal helix 5 appeared to be slightly destabilized due to the flexible C-terminal tail based on the order parameters. Thus, the dynamic structure of the p17 matrix protein may be related to its multiple functions.
Insights
The HIV-1 p17 matrix protein
Area of Science:
- Structural biology
- Virology
- Biochemistry
Background:
- The HIV-1 p17 matrix protein is crucial for viral assembly and membrane localization.
- Its dynamic structure influences interactions with other molecules.
- Specific regions (D14-L31, V84-V88) are vital for p17 function.
Purpose of the Study:
- To investigate the dynamic structures of the HIV-1 p17 matrix protein.
- To correlate protein dynamics with its multifunctional roles.
- To understand structural flexibility at physiological pH.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy.
- Relaxation measurements.
- Amide proton exchange experiments at pH 7.0.
Main Results:
- The α12-loop (region 14-31) exhibits flexibility.
- Helix 4 (region 84-88) is the most protected helix.
- The α34-loop near helix 4 and the C-terminal region (K113-Y132) are flexible and disordered, respectively.
- Helix 5 shows slight destabilization due to the flexible C-terminus.
Conclusions:
- Protein dynamics, particularly flexibility in loops and disordered C-terminal regions, are linked to HIV-1 p17 matrix protein's functions.
- Structural flexibility may facilitate molecular recognition and membrane interactions.
- NMR data provides insights into the functional relevance of p17's dynamic structure.
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