Plasma membrane association facilitates conformational changes in the Marburg virus protein VP40 dimer

Nisha Bhattarai1, Jeevan B Gc1, Bernard S Gerstman1,2

  • 1Department of Physics, Florida International University, Miami, FL 33199, USA.

RSC Advances
|June 6, 2017
PubMed

Insights

Marburg virus matrix protein VP40 (mVP40) undergoes conformational changes upon membrane binding. This rearrangement allows mVP40 to stabilize at the plasma membrane, similar to Ebola VP40, offering potential targets for antiviral drugs.

Area of Science:

  • Virology
  • Structural Biology
  • Computational Biophysics

Background:

  • Filovirus infections, including Marburg virus, cause severe hemorrhagic fevers.
  • The matrix protein VP40 is crucial for viral budding from host cells.
  • Distinct structural features of Marburg VP40 (mVP40) suggest unique membrane interactions compared to Ebola VP40 (eVP40).

Purpose of the Study:

  • To investigate the role of residues and lipid types in mVP40's plasma membrane (PM) association.
  • To elucidate the conformational changes of the mVP40 dimer upon membrane binding.
  • To compare mVP40's membrane interaction mechanism with that of eVP40.

Main Methods:

  • Molecular dynamics simulations were employed to study mVP40 in lipid-free and membrane-associated states.
  • Simulations analyzed residue-specific interactions and lipid-dependent conformational dynamics.
  • Structural changes of the mVP40 dimer were compared across different conditions.

Main Results:

  • Marburg VP40 dimer adopts a configuration similar to Ebola VP40 upon membrane association, despite initial structural differences.
  • Conformational rearrangement is key for mVP40's localization and stabilization at the plasma membrane.
  • Lipid binding facilitates a transition to a more stable, membrane-associated dimer structure.

Conclusions:

  • Marburg VP40's membrane association mechanism is conserved with Ebola VP40, involving conformational rearrangement.
  • Understanding mVP40's lipid-interacting structure is vital for developing antivirals targeting viral budding.
  • Targeting mVP40 in its membrane-bound state could inhibit filovirus replication.

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