Herpes Simplex Virus DNA Synthesis Is Not a Decisive Regulatory Event in the Initiation of Lytic Viral Protein Expression in Neurons In Vivo during Primary Infection or Reactivation from Latency
Open Access
- 1 January 2006
- journal article
- Published by American Society for Microbiology in Journal of Virology
- Vol. 80 (1) , 38-50
- https://doi.org/10.1128/jvi.80.1.38-50.2006
Abstract
The herpes simplex virus genome can enter a repressed transcriptional state (latency) in sensory neurons of the host nervous system. Although reduced permissiveness of the neuronal environment is widely accepted as a causal factor, the molecular pathway(s) directing and maintaining the viral genome in the latent state remains undefined. Over the past decade, the field has been strongly influenced by the observations of Kosz-Vnenchak et al., which have been interpreted to indicate that, in sensory neurons in vivo, a critical level of viral DNA synthesis within the neuron is required for sufficient viral immediate-early (IE) and early (E) gene expression (M. Kosz-Vnenchak, J. Jacobson, D. M. Coen, and D. M. Knipe, J. Virol. 67:5383-5393, 1993). The levels of IE and E genes are, in turn, thought to regulate the decision to enter the lytic cycle or latency. We have reexamined this issue using new strategies for in situ detection and quantification of viral gene expression in whole tissues. Our results using thymidine kinase-null and rescued mutants as well as wild-type strains in conjunction with viral DNA synthesis blockers demonstrate that (i) despite inhibition of viral DNA replication, many neurons express lytic viral proteins, including IE proteins, during acute infection in the ganglion; (ii) at early times postinoculation, the number of neurons expressing viral proteins in the ganglion is not reduced by inhibition of viral DNA replication; and (iii) following a reactivation stimulus, the numbers of neurons and apparent levels of lytic viral proteins, including IE proteins, are not reduced by inhibition of viral DNA replication. We conclude that viral DNA replication in the neuron per se does not regulate IE gene expression or entry into the lytic cycle.Keywords
This publication has 53 references indexed in Scilit:
- Comparison of Herpes Simplex Virus Reactivation in Ganglia In Vivo and in Explants Demonstrates Quantitative and Qualitative DifferencesJournal of Virology, 2004
- Quantitative Analysis of Herpes Simplex Virus Reactivation In Vivo Demonstrates that Reactivation in the Nervous System Is Not Inhibited at Early Times PostinoculationJournal of Virology, 2003
- Early Intervention with High?Dose Acyclovir Treatment during Primary Herpes Simplex Virus Infection Reduces Latency and Subsequent Reactivation in the Nervous System In VivoThe Journal of Infectious Diseases, 2001
- Herpes Simplex Virus Type 1 Latency-Associated Transcript Gene Promotes Neuronal SurvivalJournal of Virology, 2001
- A Temporal Analysis of Acyclovir Inhibition of Induced Herpes Simplex Virus Type 1 In Vivo Reactivation in the Mouse Trigeminal GangliaThe Journal of Infectious Diseases, 1999
- Role of cis-acting sequences of the ICPO promoter of herpes simplex virus type 1 in viral pathogenesis, latency and reactivationJournal of General Virology, 1996
- The DNA Sequences of the Long Repeat Region and Adjoining Parts of the Long Unique Region in the Genome of Herpes Simplex Virus Type 1Journal of General Virology, 1988
- The Complete DNA Sequence of the Long Unique Region in the Genome of Herpes Simplex Virus Type 1Journal of General Virology, 1988
- The pathogenicity of thymidine kinase-deficient mutants of herpes simplex virus in miceEpidemiology and Infection, 1978
- Induction of Both Thymidine and Deoxycytidine Kinase Activity by Herpes VirusesJournal of General Virology, 1974