Molecular modelling study of HIV p17gag (MA) protein shell utilising data from electron microscopy and X-ray

M J Forster1, B Mulloy, M V Nermut

  • 1Informatics Laboratory, National Institute for Standards and Control, South Mimms, Herfordshire, UK. mforster@nibsc.ac.uk

Insights

Molecular modeling reveals how matrix protein p17gag trimers form networks in HIV, explaining viral shape and structure. This finding offers insights into HIV assembly and potential therapeutic targets.

Area of Science:

  • Virology
  • Structural Biology
  • Biophysics

Background:

  • The matrix protein p17gag (MA) is crucial for HIV-1 virion shape and assembly, forming trimers.
  • Understanding MA protein interactions is key to deciphering HIV maturation and viral structure.

Purpose of the Study:

  • To model interactions between MA trimers and evaluate network formation.
  • To correlate computational models with experimental electron microscopy data.

Main Methods:

  • Utilized molecular modeling and systematic docking procedures to identify favorable MA trimer conformations.
  • Generated MA trimer networks and compared them against structural data from electron microscopy.
  • Employed energy minimization with explicit water and ions to identify key inter-trimer interaction residues.

Main Results:

  • Identified numerous energetically favorable conformations for MA trimer pairs and networks.
  • The proposed model accurately reflects experimental data on gag protein ring spacing and glycoprotein knob disposition.
  • The model explains observed HIV particle size distributions and supports icosahedral organization in mature HIV.

Conclusions:

  • The study presents a validated model for MA trimer network formation in HIV.
  • The findings provide a structural basis for understanding HIV particle morphology and assembly.
  • Identified residues involved in inter-trimer interactions offer potential targets for antiviral strategies.

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