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Published on: March 1, 2019
Interaction of the coronavirus infectious bronchitis virus membrane protein with beta-actin and its implication in
Jibin Wang1, Shouguo Fang, Han Xiao
1School of Biological Sciences, Nanyang Technological University, Singapore, Singapore.
Abstract:
Coronavirus M protein is an essential component of virion and plays pivotal roles in virion assembly, budding and maturation. The M protein is integrated into the viral envelope with three transmembrane domains flanked by a short amino-terminal ectodomain and a large carboxy-terminal endodomain. In this study, we showed co-purification of the M protein from coronavirus infectious bronchitis virus (IBV) with actin. To understand the cellular factors that may be involved in virion assembly, budding and maturation processes, IBV M was used as the bait in a yeast two-hybrid screen, resulting in the identification of beta-actin as a potentially interacting partner. This interaction was subsequently confirmed by coimmunoprecipitation and immunofluorescence microscopy in mammalian cells, and mutation of amino acids A159 and K160 on the M protein abolished the interaction. Introduction of the A159-K160 mutation into an infectious IBV clone system blocks the infectivity of the clone, although viral RNA replication and subgenomic mRNA transcription were actively detected. Disruption of actin filaments with cell-permeable agent cytochalasin D at early stages of the infection cycle led to the detection of viral protein synthesis in infected cells but not release of virus particles to the cultured media. However, the same treatment at late stages of the infection cycle did not affect the release of virus particles to the media, suggesting that disruption of the actin filaments might block virion assembly and budding, but not release of the virus particles. This study reveals an essential function of actin in the replication cycle of coronavirus.
Insights
The coronavirus M protein interacts with beta-actin, a key cellular factor. Disrupting actin filaments blocks virus assembly and budding, revealing actin's essential role in coronavirus replication.
Area of Science:
- Virology
- Cell Biology
- Molecular Biology
Background:
- The coronavirus M protein is crucial for virion assembly, budding, and maturation.
- M protein is embedded in the viral envelope, featuring transmembrane domains and distinct endo/ectodomains.
Purpose of the Study:
- To identify cellular factors interacting with the IBV M protein.
- To elucidate the role of M protein-interacting factors in coronavirus replication.
Main Methods:
- Yeast two-hybrid screening using IBV M protein as bait.
- Co-immunoprecipitation and immunofluorescence microscopy in mammalian cells.
- Site-directed mutagenesis of IBV M protein (A159-K160) and analysis of viral infectivity.
- Treatment with cytochalasin D to disrupt actin filaments.
Main Results:
- Beta-actin was identified as an interacting partner of the IBV M protein.
- The interaction between M protein and beta-actin was confirmed in mammalian cells.
- Mutating amino acids A159 and K160 on M protein abolished beta-actin interaction and viral infectivity.
- Disruption of actin filaments inhibited virion assembly and budding but not virus release.
Conclusions:
- Actin is essential for coronavirus virion assembly and budding.
- The M protein-actin interaction is critical for infectious coronavirus particle formation.
- Targeting actin dynamics may represent a strategy to inhibit coronavirus replication.
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