In vitro Inactivation of Latent HSV by Targeted Mutagenesis Using an HSV-specific Homing Endonuclease.

Mol Ther Nucleic Acids

1] Vaccine and Infectious Disease Division, Fred Hutchinson Cancer Research Center, Seattle, Washington, USA [2] Department of Laboratory Medicine, University of Washington, Seattle, Washington, USA.

Published: February 2014

AI Article Synopsis

  • Following an acute infection, herpes simplex virus (HSV) can lie dormant in sensory neurons and reactivate, leading to recurrent outbreaks.
  • Current antiviral drugs don't eliminate the dormant virus and can't stop reactivation once treatment stops.
  • A promising strategy involves using engineered endonucleases to create mutations in the latent HSV genome, which shows potential in reducing viral reactivation and affects how the virus behaves in infected cells.

Article Abstract

Following acute infection, herpes simplex virus (HSV) establishes latency in sensory neurons, from which it can reactivate and cause recurrent disease. Available antiviral therapies do not affect latent viral genomes; therefore, they do not prevent reactivation following therapy cessation. One possible curative approach involves the introduction of DNA double strand breaks in latent HSV genomes by rare-cutting endonucleases, leading to mutagenesis of essential viral genes. We tested this approach in an in vitro HSV latency model using the engineered homing endonuclease (HE) HSV1m5, which recognizes a sequence in the HSV-1 gene UL19, encoding the virion protein VP5. Coexpression of the 3'-exonuclease Trex2 with HEs increased HE-mediated mutagenesis frequencies up to sixfold. Following HSV1m5/Trex2 delivery with adeno-associated viral (AAV) vectors, the target site was mutated in latent HSV genomes with no detectable cell toxicity. Importantly, HSV production by latently infected cells after reactivation was decreased after HSV1m5/Trex2 exposure. Exposure to histone deacetylase inhibitors prior to HSV1m5/Trex2 treatment increased mutagenesis frequencies of latent HSV genomes another two- to fivefold, suggesting that chromatin modification may be a useful adjunct to gene-targeting approaches. These results support the continuing development of HEs and other nucleases (ZFNs, TALENs, CRISPRs) for cure of chronic viral infections.Molecular Therapy-Nucleic Acids (2014) 3, e1; doi:10.1038/mtna.2013.75; published online 4 February 2014.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3951911PMC
http://dx.doi.org/10.1038/mtna.2013.75DOI Listing

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