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Conn, K. L.

Publications and source records attributed to Conn, K. L..

2 recordsLinked to original sources

Neurotropic and non-neurotropic equid alphaherpesvirus 1 (EHV1) mobilize most histones within viral replication compartments

Equid alphaherpesvirus 1 (EHV1) is a DNA virus that causes severe disease outcomes in equids. Some EHV1 strains are neurotropic and cause disease in the central nervous system, whereas others are non-neurotropic and can cause negative reproductive outcomes. The molecular mechanisms that govern pathotype of individual EHV1 strains are not understood. However, EHV1 replication in the presence of epigenetic inhibitors suggests that neurotropic and non-neurotropic EHV1 are differentially susceptible to epigenetic silencing. Aside from this evidence, little is known about EHV1 chromatin or its regulation. Here, we used fluorescence recovery after photobleaching to characterize EHV1 lytic chromatin dynamics. Infection with neurotropic or non-neurotropic EHV1 mobilized all histones. Canonical (H2A, H2B, H3.1, H4) or variant (H2A.B, H2A.Z, H2A.X, macroH2A, H3.3) core and linker H1.2 histones were equally mobilized by either strain. Thus, there were no vast differences in histone mobility during neurotropic or non-neurotropic EHV1 infection. All histones except for H2A.B were more mobile within EHV1 replication compartments (RCs) than the surrounding infected-cell chromatin. The differential mobility of histones within domains enriched for viral or cellular chromatin is consistent with distinct mechanisms to assemble and regulate the chromatin associated with viral or host DNA. Histones were further mobilized within RCs in cells in which infection had further progressed. Such mobilization indicates that increased levels of EHV1 transcription, DNA replication, or protein expression directly or indirectly mobilize histones. The high histone mobility within EHV1 RCs is consistent with assembly of EHV1 genomes in very dynamic and unstable nucleosomes. These data support a model in which EHV1 limits genome silencing by preventing stable chromatin assembly, or destabilizing the chromatin assembled, with viral genomes during lytic infection. We propose that manipulation of histone dynamics represents a novel mechanism of epigenetic regulation adopted by alphaherpesviruses to maintain genome accessibility and prevent gene silencing. Author summaryDNA viruses are subjected to epigenetic regulation that silences or promotes gene expression. Multiple epigenetic mechanisms contribute to stabilize chromatin to silence gene expression or destabilize it to promote gene expression. Knowledge of the mechanisms whereby viruses prevent or overcome genome silencing and promote expression of their genes is important to understand how viruses, including alphaherpesviruses, take over the host cell to establish productive infection. Here we show that EHV1 broadly mobilizes histones within nuclear domains enriched in viral chromatin. Histone mobilization destabilizes chromatin and is consistent with the assembly of EHV1 genomes in dynamic, unstable nucleosomes. The manipulation of histone mobility is a phenomenon first described for the alphaherpesvirus herpes simplex virus 1 (HSV1). The conserved approach to dysregulate chromatin dynamics and mobilize histones represents a unique means whereby herpesviruses destabilize chromatin. Understanding the mechanisms that mobilize histones during infection will increase our general understanding of epigenetic regulation, which is important in the pathogenesis of infectious diseases and also of developmental or genetic ones. Moreover, knowledge of the processes whereby herpesviruses destabilize chromatin will support the development of novel therapeutics to maintain viral genomes in stable, silenced chromatin to prevent productive infection and development of associated diseases.

molecular biology↗

Daxx mediated histone H3.3 deposition on HSV-1 DNA restricts genome decompaction and the progression of immediate-early transcription

Herpesviruses are ubiquitous pathogens that cause a wide range of disease. Upon nuclear entry, their genomes associate with histones and chromatin modifying enzymes that regulate the progression of viral transcription and outcome of infection. While the composition and modification of viral chromatin has been extensively studied on bulk populations of infected cells by chromatin immunoprecipitation, this key regulatory process remains poorly defined at single-genome resolution. Here we use high-resolution quantitative imaging to investigate the spatial proximity of canonical and variant histones at individual Herpes Simplex Virus 1 (HSV-1) genomes within the first 90 minutes of infection. We identify significant population heterogeneity in the stable enrichment and spatial proximity of canonical histones (H2A, H2B, H3.1) at viral DNA (vDNA) relative to established promyelocytic leukaemia nuclear body (PML-NB) host factors that are actively recruited to viral genomes upon nuclear entry. We show the replication-independent histone H3.3/H4 chaperone Daxx to cooperate with PML to mediate the enrichment and spatial localization of variant histone H3.3 at vDNA that limits the rate of HSV-1 genome decompaction to restrict the progress of immediate-early (IE) transcription. This host response is counteracted by the viral ubiquitin ligase ICP0, which degrades PML to disperse Daxx and variant histone H3.3 from vDNA to stimulate the progression of viral genome expansion, IE transcription, and onset of HSV-1 replication. Our data support a model of intermediate and sequential histone assembly initiated by Daxx that limits the rate of HSV-1 genome decompaction independently of the stable enrichment of histones H2A and H2B at vDNA required to facilitate canonical nucleosome assembly. We identify HSV-1 genome decompaction upon nuclear infection to play a key role in the initiation and functional outcome of HSV-1 lytic infection, findings pertinent to the transcriptional regulation of many nuclear replicating herpesvirus pathogens.

microbiology↗