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Flot, J.

Publications and source records attributed to Flot, J..

2 recordsLinked to original sources

Fixed Nonsynonymous vOka Mutations in IE62 Drive Varicella-Zoster Virus Attenuation in Human Skin

The live, attenuated vaccine for Varicella-Zoster Virus (VZV) protects against chickenpox in children and adults. However, the vaccine strain Oka (vOka) establishes latency and may reactivate. The molecular basis of vOka attenuation remains unknown. We investigated whether three high-frequency single-nucleotide polymorphisms (SNPs) that differentiate vOka from parental strain Oka (pOka) are responsible: S628G and R958G in the immediate-early regulatory protein IE62, and *130R in the membrane protein ORF0. We evaluated how these fixed SNPs mediate the attenuated growth phenotype of VZV and diminish skin pathology by creating recombinant pOka VZV carrying these SNPs in the wild-type background. These were assessed in cells and human skin organ cultures (SOCs). In epithelial and fibroblast cell lines, the individual IE62 mutations slightly delayed viral growth at 8 - 24 hours post-infection but not in human epidermal keratinocytes (htert-HEK). The fixed ORF62 SNPs also affected ORF62 transcription, IE62 protein abundance at early times, and delayed IE62 accumulation in the cytoplasm later during infection. The *130R mutation in ORF0 conferred a growth advantage in culture, suggesting it is an adaptation to cell culture. While there was donor-to-donor variability and differences in overall virus spread in SOC, the R958G and *130R conferred an attenuated growth phenotype similar to that of vOka in SOC. Histopathologic analysis of VZV-infected skin sections revealed that, similar to vOka, S628G and R958G in IE62 limited the spread of VZV skin lesions. Our findings underscore the critical roles of conserved vOka SNPs in understanding the attenuation of the live vaccine strain vOka.

microbiology↗

A human sensory neuron model for varicella-zoster virus latency and reactivation in vitro.

Varicella-zoster virus (VZV) is a ubiquitous human neurotropic alphaherpesvirus that establishes lifelong latency in sensory ganglionic neurons. Subsequent viral reactivation causes herpes zoster, a morbid disease often complicated by neuropathic pain. Mechanisms underlying VZV latency and reactivation are not understood, mostly due to the lack of permissive animal models and challenges of current in vitro latency modelling. Here, we evaluated HD10.6 cells, a simplified and easily expandable human sensory neuron line to model VZV latency and reactivation. Mature HD10.6 (mHD10.6) differentiated neurons supported productive VZV infection, viral DNA replication, production of infectious progeny, and viral spread in cultures. VZV infection was associated with limited cytopathic effects and ultrastructural changes. Infecting mHD10.6 neurons with cell-free VZV in the presence of antivirals resulted in a quiescent-persistent state, characterized by persistent VZV genomes with restricted VZV gene expression and absence of infectious virus. Importantly, VZV could be reactivated by treatment with capsaicin, as evidenced by increased lytic viral transcription and virus spread. In conclusion, this study establishes human HD10.6 neurons as a novel and scalable in vitro model for studying VZV latency and reactivation to identify virus and host factors governing latency that may serve as therapeutic targets to restrict VZV reactivation. ImportanceMost individuals carry latent varicella-zoster virus (VZV) in their dorsal root ganglia (DRG), which can reactivate to cause shingles and chronic pain. The mechanisms by which VZV establishes latency and triggers of reactivation are incompletely understood. Current platforms for the study of VZV latency do not easily support functional experiments (ganglia) or are difficult to expand and complicated by mixed neuronal populations (stem cell-derived neurons). Here, we demonstrate that matured HD10.6 (mHD10.6) cells derived from immortalized human DRG-derived neurons provide a clonal, scalable, and easy-to-expand platform for studying lytic, latent, and reactivated VZV infection in sensory neurons. We propose that the HD10.6 platform could provide the basis to conduct studies on the viral latent state that have hitherto not been possible.

microbiology↗