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Stimulation of Nipah Fusion: Small Intradomain Changes Trigger Extensive Interdomain Rearrangements
Priyanka Dutta1, Ahnaf Siddiqui1, Mohsen Botlani1
1Department of Cell Biology, Microbiology and Molecular Biology, University of South Florida, Tampa, Florida.
Abstract:
Nipah is an emerging paramyxovirus that is of serious concern to human health. It invades host cells using two of its membrane proteins-G and F. G binds to host ephrins and this stimulates G to activate F. Upon activation, F mediates virus-host membrane fusion. Here we focus on mechanisms that underlie the stimulation of G by ephrins. Experiments show that G interacts with ephrin and F through separate sites located on two different domains, the receptor binding domain (RBD) and the F activation domain (FAD). No models explain this allosteric coupling. In fact, the analogous mechanisms in other paramyxoviruses also remain undetermined. The structural organization of G is such that allosteric coupling must involve at least one of the two interfaces-the RBD-FAD interface and/or the RBD-RBD interface. Here we examine using molecular dynamics the effect of ephrin binding on the RBD-RBD interface. We find that despite inducing small changes in individual RBDs, ephrin reorients the RBD-RBD interface extensively, and in a manner that will enhance solvent exposure of the FAD. While this finding supports a proposed model of G stimulation, we also find from additional simulations that ephrin induces a similar RBD-RBD reorientation in a stimulation-deficient G mutant, V209 VG → AAA. Together, our simulations suggest that while inter-RBD reorientation may be important, it is not, by itself, a sufficient condition for G stimulation. Additionally, we find that the mutation affects the conformational ensemble of RBD globally, including the RBD-FAD interface, suggesting the latter's role in G stimulation. Because ephrin induces small changes in individual RBDs, a proper analysis of conformational ensembles required that they are compared directly-we employ a method we developed recently, which we now release at SimTK, and show that it also performs excellently for non-Gaussian distributions.
Insights
Nipah virus G protein stimulation by ephrins involves complex allosteric coupling. Molecular dynamics simulations suggest inter-RBD reorientation is important but not sufficient for G protein activation, highlighting the RBD-FAD interface
Area of Science:
- Virology
- Structural Biology
- Molecular Dynamics Simulations
Background:
- Nipah virus is a significant emerging paramyxovirus posing a threat to human health.
- Virus entry into host cells relies on the G and F membrane proteins.
- The G protein binds host ephrins, initiating a cascade that activates the F protein for membrane fusion.
Purpose of the Study:
- To elucidate the allosteric mechanisms underlying Nipah virus G protein stimulation by ephrins.
- To investigate the role of the Receptor Binding Domain (RBD) and F Activation Domain (FAD) interfaces in G protein function.
- To explore the impact of ephrin binding on the structural dynamics of the G protein.
Main Methods:
- Utilized molecular dynamics simulations to analyze the effect of ephrin binding on the G protein's RBD-RBD interface.
- Investigated a stimulation-deficient G protein mutant (V209 VG → AAA) to assess the necessity of specific interactions.
- Employed a novel method for comparing conformational ensembles of protein domains.
Main Results:
- Ephrin binding extensively reorients the RBD-RBD interface, potentially enhancing FAD solvent exposure, supporting proposed activation models.
- Similar RBD-RBD reorientation was observed in a stimulation-deficient G mutant, indicating it's not solely sufficient for activation.
- The mutation altered the global conformational ensemble of the RBD, including the RBD-FAD interface, suggesting its critical role in stimulation.
Conclusions:
- Inter-RBD reorientation is a significant but insufficient factor in Nipah virus G protein stimulation by ephrins.
- The RBD-FAD interface plays a crucial role in the allosteric coupling mechanism required for G protein activation.
- Advanced computational methods are essential for analyzing complex conformational changes in viral proteins.
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