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Published on: June 5, 2010
Measles Virus Forms Inclusion Bodies with Properties of Liquid Organelles
Yuqin Zhou1, Justin M Su1, Charles E Samuel2
1Department of Molecular, Cellular and Developmental Biology, University of California, Santa Barbara, California, USA.
Abstract:
Nonsegmented negative-strand RNA viruses, including measles virus (MeV), a member of the Paramyxoviridae family, are assumed to replicate in cytoplasmic inclusion bodies. These cytoplasmic viral factories are not membrane bound, and they serve to concentrate the viral RNA replication machinery. Although inclusion bodies are a prominent feature in MeV-infected cells, their biogenesis and regulation are not well understood. Here, we show that infection with MeV triggers inclusion body formation via liquid-liquid phase separation (LLPS), a process underlying the formation of membraneless organelles. We find that the viral nucleoprotein (N) and phosphoprotein (P) are sufficient to trigger MeV phase separation, with the C-terminal domains of the viral N and P proteins playing a critical role in the phase transition. We provide evidence suggesting that the phosphorylation of P and dynein-mediated transport facilitate the growth of these organelles, implying that they may have key regulatory roles in the biophysical assembly process. In addition, our findings support the notion that these inclusions change from liquid to gel-like structures as a function of time after infection, leaving open the intriguing possibility that the dynamics of these organelles can be tuned during infection to optimally suit the changing needs during the viral replication cycle. Our study provides novel insight into the process of formation of viral inclusion factories, and taken together with earlier studies, suggests that Mononegavirales have broadly evolved to utilize LLPS as a common strategy to assemble cytoplasmic replication factories in infected cells.IMPORTANCE Measles virus remains a pathogen of significant global concern. Despite an effective vaccine, outbreaks continue to occur, and globally ∼100,000 measles-related deaths are seen annually. Understanding the molecular basis of virus-host interactions that impact the efficiency of virus replication is essential for the further development of prophylactic and therapeutic strategies. Measles virus replication occurs in the cytoplasm in association with discrete bodies, though little is known of the nature of the inclusion body structures. We recently established that the cellular protein WD repeat-containing protein 5 (WDR5) enhances MeV growth and is enriched in cytoplasmic viral inclusion bodies that include viral proteins responsible for RNA replication. Here, we show that MeV N and P proteins are sufficient to trigger the formation of WDR5-containing inclusion bodies, that these structures display properties characteristic of phase-separated liquid organelles, and that P phosphorylation together with the host dynein motor affect the efficiency of the liquid-liquid phase separation process.
Insights
Measles virus (MeV) inclusion bodies form through liquid-liquid phase separation (LLPS), driven by viral proteins N and P. This process, regulated by P phosphorylation and dynein transport, is crucial for MeV replication.
Area of Science:
- Virology
- Cell Biology
- Biophysics
Background:
- Nonsegmented negative-strand RNA viruses, like measles virus (MeV), replicate in cytoplasmic inclusion bodies.
- The biogenesis and regulation of these viral factories remain poorly understood.
- Understanding MeV replication mechanisms is vital for developing new therapies.
Purpose of the Study:
- To investigate the mechanism of MeV inclusion body formation.
- To determine the role of viral proteins and host factors in this process.
- To explore the biophysical properties of MeV replication factories.
Main Methods:
- Studied measles virus (MeV) infection in cell cultures.
- Utilized techniques to observe and analyze viral inclusion bodies.
- Investigated the roles of viral nucleoprotein (N) and phosphoprotein (P), P phosphorylation, and dynein-mediated transport.
Main Results:
- MeV infection induces inclusion body formation via liquid-liquid phase separation (LLPS).
- Viral N and P proteins are sufficient to trigger LLPS, with C-terminal domains being critical.
- P phosphorylation and dynein transport influence organelle growth and dynamics.
- Inclusions transition from liquid to gel-like states over time.
Conclusions:
- MeV utilizes LLPS to assemble cytoplasmic replication factories.
- LLPS is likely a conserved strategy among *Mononegavirales*.
- The dynamic nature of these organelles may be regulated during infection.
- Host factors like WDR5 are enriched in these phase-separated structures.
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