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.

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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