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Luong, K. T. Y.

Publications and source records attributed to Luong, K. T. Y..

2 recordsLinked to original sources

Axonal entry and retrograde transport define HSV-1 latency establishment and reactivation potential in neurons

Herpes simplex virus 1 (HSV-1) establishes life-long latency in peripheral neurons following neuroinvasion, yet the early determinants governing latency versus productive infection remain poorly understood. Available in vitro models bypass the physiological route of infection by directly infecting neuronal cell bodies under antiviral suppression. Here, we established a compartmented axonal infection model that recapitulates HSV-1 neuroinvasion and latency establishment without pharmacological inhibitors. Using primary superior cervical ganglion (SCG) neurons, we demonstrated that low-dose axonal infection consistently establishes latency, whereas higher axonal doses or direct somatic infection led to productive replication. Latently infected neurons exhibit accumulation of the latency-associated transcript (LAT) and can be efficiently reactivated by UV-inactivated virus or VP16 expression. Remarkably, productive infection can be induced during low-dose axonal infection by simultaneous exposure of neuronal cell bodies, but not axons, to replication-deficient virions, implicating tegument delivery in soma overrides latency establishment. Conversely, excess replication-incompetent particles in axons suppress productive outcomes and subsequent reactivations, suggesting competition for retrograde transport. Together, these findings identify axonal entry and transport as critical regulatory checkpoints in HSV-1 latency establishment and suggest that interference with retrograde trafficking may represent a strategy to limit neuroinvasion and life-long reactivations.

microbiology↗

Differential Sensitivity of HSV-1 and PRV to IFN-{lambda} Reveals a Neuron-Specific Antiviral Role for RSAD2

Alpha herpesviruses (-HV) initially infect mucosal epithelial cells and subsequently establish lifelong latency in the peripheral nervous system (PNS). Herpes simplex virus-1 (HSV-1), a human pathogen persisting in the majority of the adult population, shares neuroinvasive properties with Pseudorabies virus (PRV), a swine -HV, commonly used as a model -HV. Utilizing primary peripheral neuronal cultures, we previously showed that IFN-{lambda} pre-treatment significantly reduced PRV yield. In this paper, we further characterized the early and late neuronal responses to IFN-{lambda} by RNA-seq, and the antiviral potential of this response against HSV-1. Notably, HSV-1 exhibited neuron-specific resistance to IFN-{lambda} mediated antiviral responses both in murine primary neurons and human neuronal cells. An ICP34.5-deficient HSV-1 ({Delta}34.5) mutant showed IFN-{lambda} sensitivity in neurons, while replicating normally in untreated neurons showing that ICP34.5 is responsible for the neuron specific IFN-{lambda} resistance of HSV-1. Our results further demonstrate that RSAD2 is strongly induced by IFN-{lambda} in neurons, localizing to ER-associated membranes, and effectively restricting -HV protein synthesis in the absence of ICP34.5. siRNA-mediated RSAD2 knockdown in IFN-{lambda}-primed primary neurons largely restored replication of {Delta}34.5 HSV-1, highlighting the role of this IFN-{lambda} induced host factor in neuronal infections. Together, neuronal IFN-{lambda}-induced RSAD2 and HSV-1 ICP34.5 define a neuron-specific antagonistic mechanism that collectively determines the replication efficiency of HSV-1 in the PNS.

microbiology↗