EMD-17031
Double-ring nucleocapsid of the Respiratory Syncytial Virus
EMD-17031
Single-particle2.9 Å
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Map released: 27/09/2023
Last modified: 27/09/2023
Sample Organism:
Human respiratory syncytial virus A strain Long,
Respiratory syncytial virus,
Trichoplusia ni
Sample: Double ring nucleocapsid of the human Respiratory Syncytial Virus
Fitted models: 8oou (Avg. Q-score: 0.585)
Deposition Authors: Gonnin L
,
Desfosses A
,
Gutsche I
Sample: Double ring nucleocapsid of the human Respiratory Syncytial Virus
Fitted models: 8oou (Avg. Q-score: 0.585)
Deposition Authors: Gonnin L
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Structural landscape of the respiratory syncytial virus nucleocapsids.
Gonnin L
,
Desfosses A
,
Bacia-Verloop M,
Chevret D,
Galloux M,
Eleouet JF,
Gutsche I
(2023) Nat Commun , 14 , 5732 - 5732
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(2023) Nat Commun , 14 , 5732 - 5732
Abstract:
Human Respiratory Syncytial Virus (HRSV) is a prevalent cause of severe respiratory infections in children and the elderly. The helical HRSV nucleocapsid is a template for the viral RNA synthesis and a scaffold for the virion assembly. This cryo-electron microscopy analysis reveals the non-canonical arrangement of the HRSV nucleocapsid helix, composed of 16 nucleoproteins per asymmetric unit, and the resulting systematic variations in the RNA accessibility. We demonstrate that this unique helical symmetry originates from longitudinal interactions by the C-terminal arm of the HRSV nucleoprotein. We explore the polymorphism of the nucleocapsid-like assemblies, report five structures of the full-length particles and two alternative arrangements formed by a C-terminally truncated nucleoprotein mutant, and demonstrate the functional importance of the identified longitudinal interfaces. We put all these findings in the context of the HRSV RNA synthesis machinery and delineate the structural basis for its further investigation.
Human Respiratory Syncytial Virus (HRSV) is a prevalent cause of severe respiratory infections in children and the elderly. The helical HRSV nucleocapsid is a template for the viral RNA synthesis and a scaffold for the virion assembly. This cryo-electron microscopy analysis reveals the non-canonical arrangement of the HRSV nucleocapsid helix, composed of 16 nucleoproteins per asymmetric unit, and the resulting systematic variations in the RNA accessibility. We demonstrate that this unique helical symmetry originates from longitudinal interactions by the C-terminal arm of the HRSV nucleoprotein. We explore the polymorphism of the nucleocapsid-like assemblies, report five structures of the full-length particles and two alternative arrangements formed by a C-terminally truncated nucleoprotein mutant, and demonstrate the functional importance of the identified longitudinal interfaces. We put all these findings in the context of the HRSV RNA synthesis machinery and delineate the structural basis for its further investigation.