Key result
A novel pseudovirus-based deep mutational scanning platform successfully mapped escape mutations from neutralizing antibodies targeting the RBD, NTD, and S2 subunits of the SARS-CoV-2 Omicron BA.1 and Delta spikes.
Why the study?
Interpreting the antigenic and functional effects of emerging mutations in the SARS-CoV-2 viral spike protein represents a major challenge in understanding viral evolution.
A novel pseudovirus-based deep mutational scanning platform enables high-throughput mapping of how SARS-CoV-2 spike mutations affect antibody neutralization and viral entry.
Offers detailed escape maps for BA.1 and Delta; leaves open validation before guiding therapies or surveillance.
A major challenge in understanding SARS-CoV-2 evolution is interpreting the antigenic and functional effects of emerging mutations in the viral spike protein. Here we describe a new deep mutational scanning platform based on non-replicative pseudotyped lentiviruses that directly quantifies how large numbers of spike mutations impact antibody neutralization and pseudovirus infection. We demonstrate this new platform by making libraries of the Omicron BA.1 and Delta spikes. These libraries each contain ~7000 distinct amino-acid mutations in the context of up to ~135,000 unique mutation combinations. We use these libraries to map escape mutations from neutralizing antibodies targeting the receptor binding domain, N-terminal domain, and S2 subunit of spike. Overall, this work establishes a high-throughput and safe approach to measure how ~10 5 combinations of mutations affect antibody neutralization and spike-mediated infection. Notably, the platform described here can be extended to the entry proteins of many other viruses.
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Dadonaite et al. (2022) studied SARS-CoV-2. Pseudovirus-based deep mutational scanning platform was evaluated on Antibody neutralization and pseudovirus infection escape mutations. A novel pseudovirus-based deep mutational scanning platform successfully mapped escape mutations from neutralizing antibodies targeting the RBD, NTD, and S2 subunits of the SARS-CoV-2 Omicron BA.1 and Delta spikes.
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