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Bidon, M. K.

Publications and source records attributed to Bidon, M. K..

2 recordsLinked to original sources

The interaction of calcium ions with specific residues in the SARS-CoV fusion peptide and the regulation of viral infectivity

The SARS-CoV-1 spike glycoprotein contains a fusion peptide (FP) segment that mediates fusion of the viral and host cell membranes. Calcium ions are thought to position the FP optimally for membrane insertion by interacting with negatively charged residues in this segment (E801, D802, D812, E821, D825, and D830); however, which residues bind to calcium and in what combinations supportive of membrane insertion are unknown. Using biological assays and molecular dynamics studies, we have determined the functional configurations of FP-Ca+2 binding which promote membrane insertion. We first mutated the negatively charged residues in the SARS CoV-1 FP to assay their role in cell entry and syncytia formation, finding that charge loss in the D802A or D830A mutants reduced syncytia formation and pseudoparticle transduction. Interestingly, the D812A mutation led to increased pseudoparticle transduction, indicating the Ca2+ effect depends on binding at specific FP sites. To interpret mechanistically these results and learn how specific modes of FP-Ca2+ binding modulate membrane insertion, we performed molecular dynamics simulations. Preferred residue pairs for Ca2+ binding were identified (E801/D802; E801/D830; D812/E821) which promote FP membrane insertion. In contrast, binding to residues E821/D825 inhibited FP membrane insertion, which is also supported by our biological assays. Our findings show that Ca2+ binding to SARS-CoV-1 FP residue pairs E801/D802 and D812/E821 facilitates membrane insertion, whereas binding to the E801/D802 and D821/D825 pairs is detrimental. These conclusions provide an improved and nuanced mechanistic understanding of calcium binding modes to FP residues and their dynamic effects on host cell entry.

microbiology↗

Proteolytic activation of the SARS-CoV-2 spike S1/S2 site: a re-evaluation of furin cleavage

The severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) uses its spike (S) protein to mediate viral entry into host cells. Cleavage of the S protein at the S1/S2 and/or S2 site(s) is associated with viral entry, which can occur at either the cell plasma membrane (early pathway) or the endosomal membrane (late pathway), depending on the cell type. Previous studies show that SARS-CoV-2 has a unique insert at the S1/S2 site that can be cleaved by furin, which appears to expand viral tropism to cells with suitable protease and receptor expression. Here, we utilize viral pseudoparticles and protease inhibitors to study the impact of the S1/S2 cleavage on infectivity. Our results demonstrate that S1/S2 pre-cleavage is essential for early pathway entry into Calu-3 cells, a model lung epithelial cell line, but not for late pathway entry into Vero E6 cells, a model cell line. The S1/S2 cleavage was found to be processed by other proteases beyond furin. Using bioinformatic tools, we also analyze the presence of a furin S1/S2 site in related CoVs and offer thoughts on the origin of the insertion of the furin-like cleavage site in SARS-CoV-2.

microbiology↗