Please use this identifier to cite or link to this item: https://doi.org/10.1073/pnas.1811580115
Title: Structure and architecture of immature and mature murine leukemia virus capsids
Authors: Qu, Kun 
Glass, Barbel
Dolezal, Michal
Schur, Florian KM
Murciano, Brice
Rein, Alan
Rumlova, Michaela
Ruml, Tomas
Krausslich, Hans-Georg
Briggs, John AG
Keywords: Science & Technology
Multidisciplinary Sciences
Science & Technology - Other Topics
murine leukemia virus
retrovirus
cryoelectron tomography
capsid
maturation
ROUS-SARCOMA-VIRUS
CRYOELECTRON MICROSCOPY
ENVELOPE PROTEIN
GAG PROTEIN
IN-SITU
HIV-1
MATURATION
PARTICLES
REVEALS
MODEL
Issue Date: 11-Dec-2018
Publisher: NATL ACAD SCIENCES
Citation: Qu, Kun, Glass, Barbel, Dolezal, Michal, Schur, Florian KM, Murciano, Brice, Rein, Alan, Rumlova, Michaela, Ruml, Tomas, Krausslich, Hans-Georg, Briggs, John AG (2018-12-11). Structure and architecture of immature and mature murine leukemia virus capsids. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA 115 (50) : E11751-E11760. ScholarBank@NUS Repository. https://doi.org/10.1073/pnas.1811580115
Abstract: Retroviruses assemble and bud from infected cells in an immature form and require proteolytic maturation for infectivity. The CA (capsid) domains of the Gag polyproteins assemble a protein lattice as a truncated sphere in the immature virion. Proteolytic cleavage of Gag induces dramatic structural rearrangements; a subset of cleaved CA subsequently assembles into the mature core, whose architecture varies among retroviruses. Murine leukemia virus (MLV) is the prototypical γ-retrovirus and serves as the basis of retroviral vectors, but the structure of the MLV CA layer is unknown. Here we have combined X-ray crystallography with cryoelectron tomography to determine the structures of immature and mature MLV CA layers within authentic viral particles. This reveals the structural changes associated with maturation, and, by comparison with HIV-1, uncovers conserved and variable features. In contrast to HIV-1, most MLV CA is used for assembly of the mature core, which adopts variable, multilayered morphologies and does not form a closed structure. Unlike in HIV-1, there is similarity between protein-protein interfaces in the immature MLV CA layer and those in the mature CA layer, and structural maturation of MLV could be achieved through domain rotations that largely maintain hexameric interactions. Nevertheless, the dramatic architectural change on maturation indicates that extensive disassembly and reassembly are required for mature core growth. The core morphology suggests that wrapping of the genome in CA sheets may be sufficient to protect the MLV ribonucleoprotein during cell entry.
Source Title: PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
URI: https://scholarbank.nus.edu.sg/handle/10635/247690
ISSN: 0027-8424
1091-6490
DOI: 10.1073/pnas.1811580115
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