AI Article Synopsis

  • Researchers have identified a crucial E-L-L motif in the HR2 domain of coronavirus spike proteins that stabilizes viral fusion, which is essential for viral entry.
  • Mutations in this motif decrease the virus's ability to fuse and enter cells but don’t affect the spike protein’s overall stability.
  • The FDA-approved drug posaconazole binds to this E-L-L motif, effectively inhibiting SARS-CoV-2 infection and showing high efficacy against various variants, making the motif a prime target for new antiviral treatments.

Article Abstract

As newer variants of SARS-CoV-2 continue to pose major threats to global human health and economy, identifying novel druggable antiviral targets is the key towards sustenance. Here, we identify an evolutionary conserved E-L-L motif present within the HR2 domain of all human and non-human coronavirus spike (S) proteins that play a crucial role in stabilizing the post-fusion six-helix bundle (6-HB) structure and thus, fusion-mediated viral entry. Mutations within this motif reduce the fusogenicity of the S protein without affecting its stability or membrane localization. We found that posaconazole, an FDA-approved drug, binds to this E-L-L motif resulting in effective inhibition of SARS-CoV-2 infection in cells. While posaconazole exhibits high efficacy towards blocking S protein-mediated viral entry, mutations within the E-L-L motif rendered the protein completely resistant to the drug, establishing its specificity towards this motif. Our data demonstrate that posaconazole restricts early stages of infection through specific inhibition of membrane fusion and viral genome release into the host cell and is equally effective towards all major variants of concerns of SARS-CoV-2 including beta, kappa, delta, and omicron. Together, we show that this conserved essential E-L-L motif is an ideal target for the development of prophylactic and therapeutic interventions against SARS-CoV-2.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8936095PMC
http://dx.doi.org/10.1101/2022.03.16.484554DOI Listing

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As newer variants of SARS-CoV-2 continue to pose major threats to global human health and economy, identifying novel druggable antiviral targets is the key toward sustenance. Here, we identify an evolutionarily conserved "ExLxL" ("E-L-L") motif present within the HR2 domain of all human and nonhuman coronavirus spike (S) proteins that play a crucial role in stabilizing its postfusion six-helix bundle (6-HB) structure and thus, fusion-mediated viral entry. Mutations within this motif reduce the fusogenicity of the S protein without affecting its stability or membrane localization.

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Article Synopsis
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  • Mutations in this motif decrease the virus's ability to fuse and enter cells but don’t affect the spike protein’s overall stability.
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