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Poojari, C. S.

Publications and source records attributed to Poojari, C. S..

2 recordsLinked to original sources

Viral fusion proteins of classes II and III but not of class I sense the lipid composition of host membranes

Viral infection requires stable binding of viral fusion proteins to host membranes, which contain hundreds of lipid species. The mechanisms by which fusion proteins utilize specific host lipids to drive virus-host membrane fusion remains elusive. We conducted molecular simulations of class I, II, and III fusion proteins interacting with membranes of diverse lipid compositions. Free energy calculations reveal that class I fusion proteins generally exhibit stronger membrane binding compared to classes II and III -- a trend consistent across 74 fusion proteins from 13 viral families as suggested by sequence analysis. Class II fusion proteins utilize a lipid binding pocket formed by fusion protein monomers, stabilizing the initial binding of monomers to the host membrane prior to assembling into fusogentic trimers. In contrast, class III fusion proteins form a lipid binding pocket at the monomer-monomer interface through a unique fusion loop crossover. The distinct lipid binding modes correlate with the differing maturation pathways of class II and III proteins. Binding affinity was predominantly controlled by cholesterol and gangliosides as well as via local enrichment of polyunsaturated lipids, thereby enhancing membrane disorder. Our study reveals energetics and atomic details underlying lipid recognition and reorganization by different viral fusion protein classes, offering insights into their specialized membrane fusion pathways. Significance StatementDuring viral infection, enveloped viruses rely on fusion proteins to fuse their lipid membranes with membranes of the host cell. Fusion proteins bind to the host membrane by hydrophobic fusion peptides or fusion loops, thereby forcing the two membranes into close proximity. It remains unclear whether such fusion protein-membrane interactions serve soly as an anchor or whether they also recognize specific lipid compositions or locally remodel the host membrane to facilitate fusion. Using all-atom and coarse-grained simulations, we demonstrate that class II and III fusion proteins use lipid binding pockets to promote membrane binding affinity and to selectively enrich polyunsaturated lipids, thereby locally enhancing membrane disorder and fusogenicity.

biophysics↗

Free energies of stalk formation in the lipidomics era

Many biological membranes are asymmetric and exhibit complex lipid composition, comprising hundreds of distinct chemical species. Identifying the biological function and advantage of this complexity is a central goal of membrane biology. Here, we study how membrane complexity controls the energetics of the first steps of membrane fusions, that is, the formation of a stalk. We first present a computationally efficient method for simulating thermodynamically reversible pathways of stalk formation at near-atomic resolution. The new method reveals that the inner leaflet of a typical plasma membrane is far more fusogenic than the outer leaflet, which is likely an adaptation to evolutionary pressure. To rationalize these findings by the distinct lipid compositions, we computed ~200 free energies of stalk formation in membranes with different lipid head groups, tail lengths, tail unsaturations, and sterol content. In summary, the simulations reveal a drastic influence of the lipid composition on stalk formation and a comprehensive fusogenicity map of many biologically relevant lipid classes.

biophysics↗