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Purification of Viral DNA for the Identification of Associated Viral and Cellular Proteins
Published on: August 31, 2017
Investigating the biology of alpha herpesviruses with MS-based proteomics
Esteban A Engel1, Ren Song1, Orkide O Koyuncu1
1Department of Molecular Biology and Princeton Neuroscience Institute, Princeton University, Princeton, USA.
Abstract:
Viruses are intracellular parasites that can only replicate and spread in cells of susceptible hosts. Alpha herpesviruses (α-HVs) contain double-stranded DNA genomes of at least 120 kb, encoding for 70 or more genes. The viral genome is contained in an icosahedral capsid that is surrounded by a proteinaceous tegument layer and a lipid envelope. Infection starts in epithelial cells and spreads to the peripheral nervous system. In the natural host, α-HVs establish a chronic latent infection that can be reactivated and rarely spread to the CNS. In the nonnatural host, viral infection will in most cases spread to the CNS with often fatal outcome. The host response plays a crucial role in the outcome of viral infection. α-HVs do not encode all the genes required for viral replication and spread. They need a variety of host gene products including RNA polymerase, ribosomes, dynein, and kinesin. As a result, the infected cell is dramatically different from the uninfected cell revealing a complex and dynamic interplay of viral and host components required to complete the virus life cycle. In this review, we describe the pivotal contribution of MS-based proteomics studies over the past 15 years to understand the complicated life cycle and pathogenesis of four α-HV species from the alphaherpesvirinae subfamily: Herpes simplex virus-1, varicella zoster virus, pseudorabies virus and bovine herpes virus-1. We describe the viral proteome dynamics during host infection and the host proteomic response to counteract such pathogens.
Insights
Alpha herpesviruses (α-HVs) are DNA viruses requiring host cell machinery for replication. Proteomics studies reveal complex viral and host interactions during infection and pathogenesis.
Area of Science:
- Virology
- Molecular Biology
- Proteomics
Background:
- Alpha herpesviruses (α-HVs) are double-stranded DNA viruses that function as intracellular parasites.
- They establish chronic latent infections in natural hosts and can cause severe disease in non-natural hosts, often involving the central nervous system (CNS).
- Viral replication and spread depend on a complex interplay between viral and host cell components.
Purpose of the Study:
- To review the contribution of mass spectrometry (MS)-based proteomics to understanding α-HV life cycle and pathogenesis.
- To analyze viral proteome dynamics during host infection.
- To examine the host proteomic response to α-HV infection.
Main Methods:
- Review of MS-based proteomics studies conducted over the past 15 years.
- Analysis of viral and host proteomes during infection with specific α-HV species.
Main Results:
- Proteomics has elucidated the intricate interactions between α-HVs and host cells.
- Dynamics of the viral proteome and host response during infection have been characterized.
- Key host factors essential for viral replication and spread have been identified.
Conclusions:
- MS-based proteomics is crucial for deciphering α-HV biology and pathogenesis.
- Understanding the viral-host proteomic interplay is vital for developing therapeutic strategies.
- This review highlights advancements in α-HV research through proteomic approaches.
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