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Barut, T.

Publications and source records attributed to Barut, T..

2 recordsLinked to original sources

Loss of host factor-mediated m6Am methylation of the viral RNA cap impairs SARS CoV-2 replication

Eukaryotic mRNAs are co-transcriptionally capped at the 5' end with a methylated m7G moiety (cap0)1, which in higher eukaryotes is further methylated on the ribose (Nm) of the transcription start site (TSS) nucleotide to create the cap1 structure (m7GpppNm). Coronaviruses that replicate in the cytoplasm encode their own capping enzymes to acquire this cap1 structure which facilitates translation and shields them from the host innate immune system2-5. Here we report the identification of an additional N6-methyladenosine (m6A) methylation on the 5' cap (m7Gpppm6Am) of the human coronavirus SARS-CoV-2 RNA. It is catalysed by the host m6A methylase PCIF16-9 following capping by virus-encoded non-structural protein NSP 14 and NSP1610. Human cell cultures lacking PCIF1 accumulate reduced levels of the viral RNA and support reduced viral replication. Furthermore, Pcif1 mutant mice infected with SARS CoV-2 display milder symptoms. We identify the host RNA methyltransferase PCIF1 as a critical ally of SARS CoV-2 for viral replication.

molecular biology↗

The spike gene is a major determinant for the SARS-CoV-2 Omicron-BA.1 phenotype

Variant of concern (VOC) Omicron-BA1 has achieved global predominance in early 2022. Therefore, surveillance and comprehensive characterization of Omicron-BA.1 in advanced primary cell culture systems and multiple animal models is urgently needed. Here, we characterized Omicron-BA.1 and recombinant Omicron-BA.1 spike gene mutants in comparison with VOC Delta in well-differentiated primary human nasal and bronchial epithelial cells in vitro, followed by in vivo fitness characterization in naive hamsters, ferrets and hACE2-expressing mice, and in immunized hACE2-mice. We demonstrate a spike-mediated enhancement of early replication of Omicron-BA.1 in nasal epithelial cultures, but limited replication in bronchial epithelial cultures. In Syrian hamsters, Delta showed dominance over Omicron-BA.1 and in ferrets, Omicron-BA.1 infection was abortive. In mice expressing the authentic hACE2-receptor, Delta and a Delta spike clone also showed dominance over Omicron-BA.1 and an Omicron-BA.1 spike clone, respectively. Interestingly, in naive K18-hACE2 mice, we observed Delta spike-mediated increased replication and pathogenicity and Omicron-BA.1 spike-mediated reduced replication and pathogenicity, suggesting that the spike gene is a major determinant of both Delta and Omicron-BA.1 replication and pathogenicity. Finally, the Omicron-BA.1 spike clone was less well controlled by mRNA-vaccination in K18-hACE2-mice and became more competitive compared to the progenitor and Delta spike clones, suggesting that spike gene-mediated immune evasion is another important factor that led to Omicron-BA.1 dominance.

microbiology↗