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Vishwakarma, J.

Publications and source records attributed to Vishwakarma, J..

3 recordsLinked to original sources

A SARS-CoV-2 entry inhibitor trimerizes to lock the spike protein in a closed conformation

The SARS-CoV-2 spike protein binds its receptor ACE2 to initiate target-cell infection. To engage ACE2, at least one of the three receptor-binding domains (RBDs) of the spike must adopt the up orientation. Here we describe S22, a potent, bioavailable, and non-toxic inhibitor of BA.2 and all subsequent Omicron variants. Cryo-EM analyses showed that S22 assembled as a trimer in a previously uncharacterized pocket of the spike apex, stabilizing all three RBDs in the down orientation, thereby preventing ACE2 association. Binding studies, especially those using mixed S22-sensitive and -resistant spikes, imply a cooperative assembly of three S22 molecules with three RBDs, resulting in an unusually slow S22 off-rate. Consistent with its slow dissociation and favorable pharmacokinetics, S22 suppressed viral replication 100-fold in the lungs of XBB.1.5-infected mice. Thus, S22 potently inhibits Omicron entry through a distinct mechanism whereby a small compound assembles cooperatively as a trimer to stabilize spike in an inactive conformation.

microbiology↗

SARS-CoV-2 Omicron Envelope T9I adaptation confers resistance to autophagy

To date, five variants of concern (VOCs) of SARS-CoV-2 have emerged that show increased fitness and/or immune evasion. While the continuously evolving escape from humoral immune responses has been analyzed in detail, adaptation of SARS-CoV-2 to human innate immune defenses such as autophagy is less understood. Here, we demonstrate that mutation T9I in the structural envelope (E) protein confers autophagy resistance of Omicron VOCs (BA.1, BA.5 and XBB.1.5) compared to 2020 SARS-CoV-2 or the Delta VOC. Mechanistic analyses revealed that Omicron-associated E T9I shows increased inhibition of autophagic flux and colocalization/interaction with autophagosomes, thus shielding incoming SARS-CoV-2 S pseudotyped virions from autophagy. Rare Omicron isolates carrying ancestral E T9 remain sensitive towards autophagy whereas recombinant early 2020 SARS-CoV-2 expressing E T9I shows increases resistance against autophagy. Our data indicate that the E T9I mutation drives autophagy resistance of the Omicron variants and thus may have contributed to their effective spread.

microbiology↗