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Updated: May 27, 2026

Measurement of γHV68 Infection in Mice
Published on: November 22, 2011
Measurement of γHV68 infection in mice
Sara Dolatshahi Pirooz1, Joo-Hyung Lee, Zhen Zhao
1Department of Molecular Microbiology and Immunology, University of Southern California, Los Angeles, USA.
Abstract:
γ-Herpesviruses (γ-HVs) are notable for their ability to establish latent infections of lymphoid cells(1). The narrow host range of human γ-HVs, such as EBV and KSHV, has severely hindered detailed pathogenic studies. Murine γ-herpesvirus 68 (γHV68) shares extensive genetic and biological similarities with human γ-HVs and is a natural pathogen of murid rodents(2). As such, evaluation of γHV68 infection of mice inbred strains at different stages of viral infection provides an important model for understanding viral lifecycle and pathogenesis during γ-HVs infection. Upon intranasal inoculation, γHV68 infection results in acute viremia in the lung that is later resolved into a latent infection of splenocytes and other cells, which may be reactivated throughout the life of the host(3,4). In this protocol, we will describe how to use the plaque assay to assess infectious virus titer in the lung homogenates on Vero cell monolayers at the early stage (5 - 7 days) of post-intranasal infection (dpi). While acute infection is largely cleared 2 - 3 weeks postinfection, a latent infection of γHV68 is established around 14 dpi and maintained later on in the spleen of the mice. Latent infection usually affects a very small population of cells in the infected tissues, whereby the virus stays dormant and shuts off most of its gene expression. Latently-infected splenocytes spontaneously reactivate virus upon explanting into tissue culture, which can be recapitulated by an infectious center (IC) assay to determine the viral latent load. To further estimate the amount of viral genome copies in the acutely and/or latently infected tissues, quantitative real-time PCR (qPCR) is used for its maximal sensitivity and accuracy. The combined analyses of the results of qPCR and plaque assay, and/or IC assay will reveal the spatiotemporal profiles of viral replication and infectivity in vivo.
Insights
Murine gamma-herpesvirus 68 (γHV68) in mice models viral infections. This study details methods to track γHV68 replication and latency using plaque assays, infectious center assays, and qPCR for better understanding of gamma-herpesvirus (γ-HV) pathogenesis.
Area of Science:
- Virology
- Immunology
- Infectious Diseases
Background:
- Gamma-herpesviruses (γ-HVs) establish latent infections in lymphoid cells, but human γ-HVs have a narrow host range, limiting research.
- Murine gamma-herpesvirus 68 (γHV68) is a rodent pathogen sharing similarities with human γ-HVs, making it a valuable model for studying γ-HV infections.
- Understanding γHV68 infection dynamics in mice is crucial for elucidating γ-HV lifecycle and pathogenesis.
Purpose of the Study:
- To describe a protocol for assessing infectious virus titer in mouse lung homogenates using plaque assays.
- To detail methods for evaluating viral latency and replication dynamics in mice infected with γHV68.
- To provide a comprehensive approach for analyzing viral spatiotemporal profiles using multiple quantitative assays.
Main Methods:
- Intranasal inoculation of mice with γHV68.
- Plaque assay on Vero cell monolayers to determine infectious virus titer in lung homogenates (5-7 days post-infection).
- Infectious center (IC) assay to determine viral latent load in splenocytes.
- Quantitative real-time PCR (qPCR) to quantify viral genome copies in infected tissues.
Main Results:
- The protocol allows for the assessment of acute γHV68 infection in the lungs.
- It enables the determination of latent viral load in splenocytes.
- Combined qPCR and plaque/IC assays reveal spatiotemporal profiles of viral replication and infectivity.
Conclusions:
- This protocol provides a robust framework for studying γHV68 infection in mice.
- The combined use of plaque assays, IC assays, and qPCR offers a comprehensive analysis of viral lifecycle and pathogenesis.
- This model is essential for advancing the understanding of gamma-herpesvirus infections and developing therapeutic strategies.

