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In this thesis, molecular dynamics (MD) simulations are used to study the interaction of different proteins with lipid bilayers. MD simulations can be used as a “computational microscope” to gain atomistic insights into the interactions between proteins and lipids that can barely be accessed in such detail by experimental methods. The different chapters of this thesis address the lipid sensing functionality of amphipathic helices (AHs) when bound to membranes, the folding of AHs at lipid-water interfaces as well as the conformational dynamics of the HIV-1 Env glycoproteins in viral-like and experimental bilayers. In the last chapter the possibilities to enhance the performance of MD simulations are explored, leading to a more efficient usage of computational resources.
Abstract
The primary immunological target of COVID-19 vaccines is the SARS-CoV-2 spike (S) protein. S is exposed on the viral surface and mediates viral entry into the host cell. To identify possible antibody binding sites, we performed multi-microsecond molecular dynamics simulations of a 4.1 million atom system containing a patch of viral membrane with four full-length, fully glycosylated and palmitoylated S proteins. By mapping steric accessibility, structural rigidity, sequence conservation, and generic antibody binding signatures, we recover known epitopes on S and reveal promising epitope candidates for structure-based vaccine design. We find that the extensive and inherently flexible glycan coat shields a surface area larger than expected from static structures, highlighting the importance of structural dynamics. The protective glycan shield and the high flexibility of its hinges give the stalk overall low epitope scores. Our computational epitope-mapping procedure is general and should thus prove useful for other viral envelope proteins whose structures have been characterized.
Author summary
The SARS-CoV-2 virus has caused a global health crisis. The spike protein exposed at its surface is key for infection and the primary antibody target. However, spike is covered by highly mobile glycan molecules that could impair antibody binding. To identify accessible epitopes, we performed molecular dynamics simulations of an atomistic model of glycosylated spike embedded in a membrane. By combining extensive simulations with bioinformatics analyses, we recovered known antibody binding sites and identified several epitope candidates as targets for further vaccine development.