Molecular dynamics simulations of HIV-1 matrix-membrane interactions at different stages of viral maturation
Puja Banerjee1, Kun Qu2, John A G Briggs3
1Department of Chemistry, Chicago Center for Theoretical Chemistry, Institute for Biophysical Dynamics, and James Franck Institute, The University of Chicago, Chicago, Illinois.
Abstract:
Although the structural rearrangement of the membrane-bound matrix (MA) protein trimers upon HIV-1 maturation has been reported, the consequences of MA maturation on the MA-lipid interactions are not well understood. Long-timescale molecular dynamics simulations of the MA multimeric assemblies of immature and mature virus particles with our realistic asymmetric membrane model have explored MA-lipid interactions and lateral organization of lipids around MA complexes. The number of stable MA-phosphatidylserine and MA-phosphatidylinositol 4,5-bisphosphate (PIP2) interactions at the trimeric interface of the mature MA complex is observed to be greater compared to that of the immature MA complex. Our simulations identified an alternative PIP2-binding site in the immature MA complex where the multivalent headgroup of a PIP2 lipid with a greater negative charge binds to multiple basic amino acid residues such as ARG3 residues of both the MA monomers at the trimeric interface and highly basic region (HBR) residues (LYS29, LYS31) of one of the MA monomers. Our enhanced sampling simulations have explored the conformational space of phospholipids at different binding sites of the trimer-trimer interface of MA complexes that are not accessible by conventional unbiased molecular dynamics. Unlike the immature MA complex, the 2' acyl tail of two PIP2 lipids at the trimeric interface of the mature MA complex is observed to sample stable binding pockets of MA consisting of helix-4 residues. Together, our results provide molecular-level insights into the interactions of MA trimeric complexes with membrane and different lipid conformations at the specific binding sites of MA protein before and after viral maturation.
Insights
HIV-1 matrix (MA) protein maturation alters its interactions with lipids like phosphatidylinositol 4,5-bisphosphate (PIP2). Simulations reveal distinct lipid binding sites and conformations in immature versus mature MA complexes, impacting viral assembly.
Area of Science:
- Structural biology
- Virology
- Computational biophysics
Background:
- The matrix (MA) protein of HIV-1 undergoes structural changes during viral maturation.
- Understanding how these changes affect MA's interaction with membrane lipids is crucial for comprehending viral assembly and infectivity.
Purpose of the Study:
- To investigate the molecular mechanisms underlying the changes in MA-lipid interactions following HIV-1 maturation.
- To explore the conformational dynamics of lipids at the MA trimer-trimer interface before and after maturation.
Main Methods:
- Long-timescale molecular dynamics simulations of immature and mature HIV-1 MA protein complexes.
- Utilized a realistic asymmetric membrane model.
- Employed enhanced sampling simulations to explore phospholipid conformational space.
Main Results:
- Mature MA complexes exhibit increased stable interactions with phosphatidylserine and phosphatidylinositol 4,5-bisphosphate (PIP2) compared to immature complexes.
- An alternative PIP2 binding site involving ARG3 and highly basic region (HBR) residues was identified in immature MA.
- The 2' acyl tail of PIP2 lipids samples distinct binding pockets in mature MA, involving helix-4 residues.
Conclusions:
- HIV-1 maturation significantly alters the nature and location of MA protein-lipid interactions.
- These findings provide molecular-level insights into the role of lipid binding in HIV-1 assembly and maturation processes.
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