EMD-15859
Rosellinia necatrix megabirnavirus 1-W779 full capsid with Crown protein
EMD-15859
Single-particle3.3 Å
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Map released: 22/02/2023
Last modified: 24/07/2024
Sample Organism:
Rosellinia necatrix megabirnavirus 1/W779
Sample: Rosellinia necatrix megabirnavirus 1/W779
Fitted models: 8b59 (Avg. Q-score: 0.529)
Deposition Authors: Wang H
,
Okamoto K
,
Miyazaki N
,
Suzuki N
Sample: Rosellinia necatrix megabirnavirus 1/W779
Fitted models: 8b59 (Avg. Q-score: 0.529)
Deposition Authors: Wang H
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Capsid structure of a fungal dsRNA megabirnavirus reveals its previously unidentified surface architecture.
Wang H
,
Salaipeth L,
Miyazaki N
,
Suzuki N,
Okamoto K
(2023) PLoS Pathog , 19 , e1011162 - e1011162
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(2023) PLoS Pathog , 19 , e1011162 - e1011162
Abstract:
Rosellinia necatrix megabirnavirus 1-W779 (RnMBV1) is a non-enveloped icosahedral double-stranded (ds)RNA virus that infects the ascomycete fungus Rosellinia necatrix, a causative agent that induces a lethal plant disease white root rot. Herein, we have first resolved the atomic structure of the RnMBV1 capsid at 3.2 Å resolution using cryo-electron microscopy (cryo-EM) single-particle analysis. Compared with other non-enveloped icosahedral dsRNA viruses, the RnMBV1 capsid protein structure exhibits an extra-long C-terminal arm and a surface protrusion domain. In addition, the previously unrecognized crown proteins are identified in a symmetry-expanded cryo-EM model and are present over the 3-fold axes. These exclusive structural features of the RnMBV1 capsid could have been acquired for playing essential roles in transmission and/or particle assembly of the megabirnaviruses. Our findings, therefore, will reinforce the understanding of how the structural and molecular machineries of the megabirnaviruses influence the virulence of the disease-related ascomycete fungus.
Rosellinia necatrix megabirnavirus 1-W779 (RnMBV1) is a non-enveloped icosahedral double-stranded (ds)RNA virus that infects the ascomycete fungus Rosellinia necatrix, a causative agent that induces a lethal plant disease white root rot. Herein, we have first resolved the atomic structure of the RnMBV1 capsid at 3.2 Å resolution using cryo-electron microscopy (cryo-EM) single-particle analysis. Compared with other non-enveloped icosahedral dsRNA viruses, the RnMBV1 capsid protein structure exhibits an extra-long C-terminal arm and a surface protrusion domain. In addition, the previously unrecognized crown proteins are identified in a symmetry-expanded cryo-EM model and are present over the 3-fold axes. These exclusive structural features of the RnMBV1 capsid could have been acquired for playing essential roles in transmission and/or particle assembly of the megabirnaviruses. Our findings, therefore, will reinforce the understanding of how the structural and molecular machineries of the megabirnaviruses influence the virulence of the disease-related ascomycete fungus.