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Density Gradient Ultracentrifugation for Investigating Endocytic Recycling in Mammalian Cells
Published on: June 30, 2021
Infection-Induced Changes Within the Endocytic Recycling Compartment Suggest a Roadmap of Human Cytomegalovirus
William L Close1, James E Glassbrook1, Stephen J Gurczynski2
1Department of Microbiology, Immunology and Biochemistry, Wayne State University School of Medicine, Detroit, MI, United States.
Abstract:
Human cytomegalovirus (HCMV) is an important pathogen in developing fetuses, neonates, and individuals with compromised immune systems. Gaps in our understanding of the mechanisms required for virion assembly stand in the way of development of antivirals targeting late stages of viral replication. During infection, HCMV causes a dramatic reorganization of the host endosecretory system, leading to the formation of the cytoplasmic virion assembly complex (cVAC), the site of virion assembly. As part of cVAC biogenesis, the composition and behavior of endosecretory organelles change. To gain more comprehensive understanding of the impact HCMV infection has on components of the cellular endocytic recycling compartment (ERC), we used previously published transcriptional and proteomic datasets to predict changes in the directionality of ERC trafficking. We identified infection-associated changes in gene expression that suggest shifts in the balance between endocytic and exocytic recycling pathways, leading to formation of a secretory trap within the cVAC. Conversely, there was a corresponding shift favoring outbound secretory vesicle trafficking, indicating a potential role in virion egress. These observations are consistent with previous studies describing sequestration of signaling molecules, such as IL-6, and the synaptic vesicle-like properties of mature HCMV virions. Our analysis enabled development of a refined model incorporating old and new information related to the behavior of the ERC during HCMV replication. While limited by the paucity of integrated systems-level data, the model provides an informed basis for development of experimentally testable hypotheses related to mechanisms involved in HCMV virion maturation and egress. Information from such experiments will provide a robust roadmap for rational development of novel antivirals for HCMV and related viruses.
Insights
Human cytomegalovirus (HCMV) infection reorganizes cellular trafficking pathways, creating a "secretory trap" essential for virion assembly and egress. This finding aids in developing new antivirals targeting HCMV replication.
Area of Science:
- Virology
- Cell Biology
- Molecular Biology
Background:
- Human cytomegalovirus (HCMV) poses significant risks to vulnerable populations, including fetuses, neonates, and immunocompromised individuals.
- Understanding HCMV virion assembly is crucial for developing targeted antiviral therapies.
- HCMV infection dramatically alters host cell endosecretory pathways, forming a cytoplasmic virion assembly complex (cVAC).
Purpose of the Study:
- To investigate the impact of HCMV infection on the endocytic recycling compartment (ERC).
- To predict alterations in ERC trafficking directionality during HCMV replication.
- To refine models of HCMV virion assembly and egress.
Main Methods:
- Analysis of existing transcriptional and proteomic datasets from HCMV-infected cells.
- Prediction of changes in ERC trafficking pathways.
- Development of an integrated model of ERC behavior during HCMV infection.
Main Results:
- HCMV infection induces shifts in gene expression, altering the balance between endocytic and exocytic recycling.
- A 'secretory trap' is formed within the cVAC, sequestering cellular components.
- Outbound secretory vesicle trafficking is enhanced, suggesting a role in virion egress.
Conclusions:
- HCMV infection manipulates cellular trafficking to facilitate virion assembly and release.
- The refined model provides a basis for generating testable hypotheses on HCMV maturation and egress.
- This research offers a roadmap for developing novel HCMV antivirals.
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