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Suppression of the host antiviral response by non-infectious varicella zoster virus extracellular vesicles

  • Christy S. Niemeyer
  • , Seth Frietze
  • , Christina Coughlan
  • , Serena W.R. Lewis
  • , Sara Bustos Lopez
  • , Anthony J. Saviola
  • , Kirk C. Hansen
  • , Eva M. Medina
  • , James E. Hassell
  • , Sophie Kogut
  • , Vicki Traina-Dorge
  • , Maria A. Nagel
  • , Kimberley D. Bruce
  • , Diego Restrepo
  • , Ravi Mahalingam
  • , Andrew N. Bubak
  • University of Colorado Anschutz Medical Campus
  • University of Vermont
  • Tulane University

Research output: Contribution to journalArticlepeer-review

15 Scopus citations

Abstract

Varicella zoster virus (VZV) reactivates from ganglionic sensory neurons to produce herpes zoster (shingles) in a unilateral dermatomal distribution, typically in the thoracic region. Reactivation not only heightens the risk of stroke and other neurological complications but also increases susceptibility to co-infections with various viral and bacterial pathogens at sites distant from the original infection. The mechanism by which VZV results in complications remote from the initial foci remains unclear. Small extracellular vesicles (sEVs) are membranous signaling structures that can deliver proteins and nucleic acids to modify the function of distal cells and tissues during normal physiological conditions. Although viruses have been documented to exploit the sEV machinery to propagate infection, the role of non-infectious sEVs released from VZV-infected neurons in viral spread and disease has not been studied. Using multi-omic approaches, we characterized the content of sEVs released from VZV-infected human sensory neurons (VZV sEVs). One viral protein was detected (immediate-early 62), as well as numerous immunosuppressive and vascular disease-associated host proteins and miRNAs that were absent in sEVs from uninfected neurons. Notably, VZV sEVs are non-infectious yet transcriptionally altered primary human cells, suppressing the antiviral type 1 interferon response and promoting neuroinvasion of a secondary pathogen in vivo. These results challenge our understanding of VZV infection, proposing that the virus may contribute to distant pathologies through non-infectious sEVs beyond the primary infection site. Furthermore, this study provides a previously undescribed immune-evasion mechanism induced by VZV that highlights the significance of non-infectious sEVs in early VZV pathogenesis.

Original languageEnglish
JournalJournal of Virology
Volume98
Issue number8
DOIs
StatePublished - Aug 2024

Keywords

  • antiviral
  • exosomes
  • extracellular vesicles
  • immune evasion
  • interferons
  • varicella zoster virus
  • vascular disease

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