北海道大学 · 医学
伊賀梨教授の研究室は、インフルエンザウイルスやSARS-CoV-2をはじめとするRNAウイルスの複製機構とウイルス免疫逃避機構を、構造生物学的・分子生物学的アプローチを用いて解明しています。特に、ウイルスのキャップ修飾機構(2'-Oメチル化)に注目し、宿主酵素とウイルス酵素の機能的相互作用を解明するとともに、新規の抗ウイルス薬の創出をめざした薬剤スクリーニング研究を展開しています。また、ウイルス由来遺伝子のゲノム内埋め込み(エンドージェネス)の可能性についても探求しており、ウイルスと宿主の共進化を解明する基盤を構築しています。
Figures are computed from collected data and may differ slightly.
The pandemic influenza virus (2009 H1N1) was recently introduced into the human population. The hemagglutinin (HA) gene of 2009 H1N1 is derived from "classical swine H1N1" virus, which likely shares a common ancestor with the human H1N1 virus that caused the pandemic in 1918, whose descendant viruses are still circulating in the human population with highly altered antigenicity of HA. However, information on the structural basis to compare the HA antigenicity among 2009 H1N1, the 1918 pandemic,
Orthomyxo- and bunyaviruses steal the 5' cap portion of host RNAs to prime their own transcription in a process called "cap snatching." We report that RNA modification of the cap portion by host 2'-O-ribose methyltransferase 1 (MTr1) is essential for the initiation of influenza A and B virus replication, but not for other cap-snatching viruses. We identified with in silico compound screening and functional analysis a derivative of a natural product from <i>Streptomyces</i>, called trifluoromethy
The SARS-CoV-2 infection cycle is a multistage process that relies on functional interactions between the host and the pathogen. Here, we repurposed antiviral drugs against both viral and host enzymes to pharmaceutically block methylation of the viral RNA 2'-O-ribose cap needed for viral immune escape. We find that the host cap 2'-O-ribose methyltransferase MTr1 can compensate for loss of viral NSP16 methyltransferase in facilitating virus replication. Concomitant inhibition of MTr1 and NSP16 ef
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