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Manabu Igarashi

Hokkaido University · Medicine

About the Lab

Professor Manabu Igarashi's research lab focuses on viral pathogenesis and host-virus interactions, with a central emphasis on understanding the molecular mechanisms of RNA virus replication, particularly influenza and SARS-CoV-2. The lab investigates viral cap modification pathways, host factors involved in immune evasion, and the development of broad-spectrum antiviral therapeutics targeting host enzymes such as MTr1. Key research directions include structural virology, host-directed antiviral strategies, and the discovery of endogenous antiviral elements in vertebrate genomes. The lab integrates structural modeling, functional virology, and in silico drug screening to identify novel therapeutic targets and inhibitors.

viral cap modificationhost-directed antiviralsinfluenza virusSARS-CoV-2MTr1 inhibition

Research Overview

Papers
5
Total Citations
93
Papers (5y)
25
Primary Field
Medicine

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
25total
2022
2023
2024
2025
2026
Citations per year (5y)
189total
20222023202420252026

Selected Papers

7
1
Article|175 citations·2009
Predicting the Antigenic Structure of the Pandemic (H1N1) 2009 Influenza Virus Hemagglutinin
Manabu Igarashi, Kimihito Ito, Reiko Yoshida, Daisuke Tomabechi, Hiroshi Kida, Ayato Takada
SJR Q1FWCI 10.0PLoS ONEOA

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,

EpidemiologyMedicine
2
Article|71 citations·2008
Genetically destined potentials for N-linked glycosylation of influenza virus hemagglutinin
Manabu Igarashi, Kimihito Ito, Hiroshi Kida, Ayato Takada
SJR Q2FWCI 4.6Virology
EpidemiologyMedicine
3
Article|41 citations·2023
Inhibition of cellular RNA methyltransferase abrogates influenza virus capping and replication
Yuta Tsukamoto, Takahiro Hiono, Shintaro Yamada, Keita Matsuno, Aileen Faist, Tobias Claff, Jianyu Hou, Vigneshwaran Namasivayam, Anja vom Hemdt, Satoko Sugimoto, Jin Ying Ng, Maria H. Christensen
SJR Q1FWCI 8.8Science

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

EpidemiologyMedicine
4
Article|39 citations·2022
Attenuation of <scp>SARS‐CoV</scp> ‐2 replication and associated inflammation by concomitant targeting of viral and host cap 2'‐O‐ribose methyltransferases
Valter Bergant, Shintaro Yamada, Vincent Grass, Yuta Tsukamoto, Teresa M. Lavacca, Karsten Krey, Maria‐Teresa Mühlhofer, Sabine Wittmann, Armin Ensser, Alexandra Herrmann, Anja vom Hemdt, Yuriko Tomita
SJR Q1FWCI 4.0The EMBO JournalOA

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

OncologyMedicine
5
Article|33 citations·2017
Putative endogenous filovirus VP35-like protein potentially functions as an IFN antagonist but not a polymerase cofactor
Tatsunari Kondoh, Rashid Manzoor, Naganori Nao, Junki Maruyama, Wakako Furuyama, Hiroko Miyamoto, Asako Shigeno, Makoto Kuroda, Keita Matsuno, Daisuke Fujikura, Masahiro Kajihara, Reiko Yoshida
SJR Q1FWCI 3.4PLoS ONEOA

It has been proposed that some non-retroviral RNA virus genes are integrated into vertebrate genomes. Endogenous filovirus-like elements (EFLs) have been discovered in some mammalian genomes. However, their potential roles in ebolavirus infection are unclear. A filovirus VP35-like element (mlEFL35) is found in the little brown bat (Myotis lucifugus) genome. Putative mlEFL35-derived protein (mlEFL35p) contains nearly full-length amino acid sequences corresponding to ebolavirus VP35. Ebola virus V

Infectious DiseasesMedicine
6
Article|29 citations·2002
A direct ab initio molecular dynamics study of the finite temperature effects on the hyperfine coupling constant of methyl radical–water complexes
Manabu Igarashi, Teruo Ishibashi, Hiroto Tachikawa
FWCI 0.5Journal of Molecular Structure THEOCHEM
Organic ChemistryChemistry
7
Article|25 citations·1998
Ab initio molecular orbital study on the gas phase SN2 reaction F− + CH3Cl → CH3F + Cl−
Manabu Igarashi, Hiroto Tachikawa
SJR Q3FWCI 1.6International Journal of Mass Spectrometry
Atomic and Molecular Physics, and OpticsPhysics and Astronomy

Research Areas

Infectious DiseasesEpidemiologyMolecular BiologyAgronomy and Crop SciencePublic Health, Environmental and Occupational HealthAnimal Science and Zoology

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