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Oldenburg, D. G.

Publications and source records attributed to Oldenburg, D. G..

5 recordsLinked to original sources

Uracil-DNA Glycosylase of Murine Gammaherpesvirus 68 Binds Cognate Viral Replication Factors Independently of its Catalytic Residues

Herpesviruses are large double-stranded DNA viruses that encode core replication proteins and accessory factors involved in nucleotide metabolism and DNA repair. Mammalian Uracil-DNA glycosylases (UNG) excise deleterious uracil residues from their genomic DNA. Each herpesvirus UNG studied to date has demonstrated conservation of the enzymatic function to excise uracil residues from DNA. We previously reported that a murine gammaherpesvirus (MHV68) with a stop codon in ORF46 (ORF46.stop) that encodes for vUNG was defective in lytic replication and latency in vivo. However, a mutant virus that expressed a catalytically inactive vUNG (ORF46.CM) had no replication defect, unless coupled with additional mutations in the catalytic motif of the viral dUTPase (ORF54.CM). The disparate phenotypes observed in the vUNG mutants led us to explore the non-enzymatic properties of vUNG. Immunoprecipitation of vUNG followed by mass spectrometry in MHV68-infected fibroblasts identified a complex comprised of the cognate viral DNA polymerase, vPOL encoded by ORF9, and the viral DNA polymerase processivity factor, vPPF encoded by ORF59. MHV68 vUNG colocalized with vPOL and vPPF in subnuclear structures consistent with viral replication compartments. In reciprocal co-immunoprecipitations, the vUNG formed a complex with the vPOL and vPPF upon transfection with either factor alone, or in combination. Last, we determined that key catalytic residues of vUNG are not required for interactions with vPOL and vPPF upon transfection or in the context of infection. We conclude that the vUNG of MHV68 associates with vPOL and vPPF independently of its catalytic activity. IMPORTANCEGammaherpesviruses encode a uracil-DNA glycosylase (vUNG) that is presumed to excise uracil residues from viral genomes. We previously identified the vUNG enzymatic activity, but not the protein itself, as dispensable for gammaherpesvirus replication in vivo. In this study, we report a non-enzymatic role for the viral UNG of a murine gammaherpesvirus to form a complex with two key components of the viral DNA replication machinery. Understanding the role of the vUNG in this viral DNA replication complex may inform the development of antiviral drugs that combat gammaherpesvirus associated cancers.

microbiology↗

Gammaherpesvirus ncRNAs share conserved features of binding and virulence despite lack of sequence conservation

Gammaherpesvirus ({gamma}HV) non-coding RNAs (ncRNAs) are integral modulators of viral infection. The {gamma}HVs engage RNA polymerase III (pol III)-dependent transcription of both host and viral ncRNAs, which contribute to viral establishment, gene expression, and pathogenesis. Viral ncRNAs, such as the EBV-encoded RNAs (EBERs), reportedly interact with multiple host RNA-binding proteins (RBPs) and contribute to inflammatory responses implicated in the development of malignancies. Here, we examined RBP interactions of the pol III-transcribed tRNA-miRNA encoded non-coding RNAs (TMERs) of murine {gamma}HV68, and the potential contributions of these and the related EBERs to in vivo pathogenesis. Using sequential enzymatic treatments, we found that several TMER1 forms retain a 5-triphosphate, lending the possibility of recognition by the innate immune sensor RIG-I. We further examined the interactions of TMERs and EBERs with host RBPs, and found that multiple TMERs and EBERs interact with the La protein, though minimal interaction was detected with RIG-I during primary virus infection. Finally, we investigated the contributions of the TMERs and EBERs to disease in an immune-compromised mouse model with a series of viral recombinants. We found that expression of multiple single TMERs, or the EBERs expressed in place of the TMERs, was capable of restoring virulence to a viral recombinant lacking expression of all TMERs. Ultimately, these studies demonstrate that divergent pol III-transcribed {gamma}HV ncRNAs share interaction characteristics with two host RBPs and conserved contributions to disease, despite little to no significant sequence conservation. These findings support a model of convergent functions of the sequence-variable pol III-transcribed {gamma}HV ncRNAs. IMPORTANCEViruses manipulate the infected cell and host inflammatory responses through expression of coding and non-coding RNAs. The gammaherpesviruses are a subfamily of herpesviruses associated with chronic inflammatory diseases and malignancies, especially in immune-compromised individuals. Among these, the human Epstein-Barr virus and murine gammaherpesvirus 68 ({gamma}HV68) express highly abundant, RNA polymerase III-dependent, short non-coding RNAs. Whether these sequence-divergent ncRNAs have conserved functional properties is unknown. By using viral recombinants to allow direct comparison of these ncRNAs during primary infection, we find that the sequence-divergent ncRNAs of {gamma}HV68 and EBV share a conserved property to bind to the host RNA binding protein, La, and function interchangeably to facilitate in vivo pathogenesis. These studies demonstrate that abundant, RNA polymerase III-dependent viral ncRNAs can potently function to alter the host cell landscape and promote disease in a sequence-independent manner.

microbiology↗

IKKalpha-Mediated Non-canonical NF-kappaB Signaling is Required to Support Murine Gammaherpesvirus 68 Latency In Vivo

Non-canonical NF-kappaB signaling is activated in B cells via TNF receptor superfamily members CD40, Lymphotoxin beta-R, and BAFF-R. The non-canonical pathway is required at multiple stages of B-cell maturation and differentiation, including the germinal center reaction. However, the role of this pathway in gammaherpesvirus latency is not well understood. Murine gammaherpesvirus 68 (MHV68) is a genetically tractable system used to define pathogenic determinants. Mice lacking the BAFF-R exhibit defects in splenic follicle formation and are greatly reduced for MHV68 latency. We report a novel approach to disrupt non-canonical NF-kappaB signaling exclusively in cells infected with MHV68. We engineered a recombinant virus that expresses a dominant negative form of IKKalpha, named IKK-SA, with S176A and S180A mutations that prevent phosphorylation by NIK. We controlled for the transgene insertion by introducing two all-frame stop codons into the IKK-SA gene. The IKK-SA mutant but not the IKK-SA.STOP control virus impaired LTbetaR-mediated activation of NF-kappaB p52 upon fibroblast infection. IKK-SA expression did not impact replication in primary fibroblasts or in the lungs of mice following intranasal inoculation. However, the IKK-SA mutant was severely defective in colonization of the spleen and in the establishment of latency compared to the IKK-SA.STOP control and WT MHV68 at 16 dpi. Reactivation was undetectable in splenocytes infected with the IKK-SA mutant, but reactivation in peritoneal cells was not impacted by IKK-SA. Taken together, the non-canonical NF-kappaB signaling pathway is essential for the establishment of latency in the secondary lymphoid organs of mice infected with the murine gammaherpesvirus pathogen MHV68. IMPORTANCEThe latency programs of the human gammaherpesviruses EBV and KSHV are associated with B cell lymphomas. It is critical to understand the signaling pathways that are used by gammaherpesviruses to establish and maintain latency in primary B cells. We used a novel approach to block non-canonical NF-kappaB signaling only in the infected cells of mice. We generated a recombinant virus that expresses a dominant negative mutant of IKKalpha that is non-responsive to upstream activation. Latency was reduced in a route- and cell type-dependent manner in mice infected with this recombinant virus. These findings identify a significant role for the non-canonical NF-kappaB signaling pathway that might provide a novel target to prevent latent infection of B cells with oncogenic gammaherpesviruses.

microbiology↗

Lytic Replication and Reactivation from B cells Is Not Required for Maintaining Gammaherpesvirus Latency in vivo

Gammaherpesviruses (GHVs) are lymphotropic tumor viruses with a biphasic infectious cycle. Lytic replication at the primary site of infection is necessary for GHVs to spread throughout the host and establish latency in distal sites. Dissemination is mediated by infected B cells that traffic hematogenously from draining lymph nodes to peripheral lymphoid organs, such as the spleen. B cells serve as the major reservoir for viral latency, and it is hypothesized that periodic reactivation from latently infected B cells contributes to maintaining long-term chronic infection. While fundamentally important to an understanding of GHV biology, aspects of B cell infection in latency establishment and maintenance are incompletely defined, especially roles for lytic replication and reactivation in this cell type. To address this knowledge gap and overcome limitations of replication-defective viruses, we generated a recombinant murine gammaherpesvirus 68 (MHV68) in which ORF50, the gene that encodes the essential immediate-early replication and transcription activator protein (RTA), was flanked by loxP sites to enable conditional ablation of lytic replication by ORF50 deletion in cells that express Cre recombinase. Following infection of mice that encode Cre in B cells with this virus, splenomegaly and viral reactivation from splenocytes were significantly reduced, however the number of latently infected splenocytes was equivalent to WT MHV68. Despite ORF50 deletion, MHV68 latency was maintained over time in spleens of mice at levels approximating WT, reactivation-competent MHV68. Stimulation of polyclonal B cell activation and proliferation by treating mice with lipopolysaccharide (LPS), which promotes MHV68 reactivation ex vivo, yielded equivalent increases in the number of latently infected cells for both ORF50-deleted and WT MHV68, even when mice were simultaneously treated with the antiviral drug cidofovir. Together, these data demonstrate that lytic replication in B cells is not required for MHV68 latency establishment and maintenance and further indicate that B cell proliferation, and not reactivation per se, is a major mechanism for maintaining latent viral genomes in the host. IMPORTANCEGammaherpesviruses establish lifelong chronic infections in cells of the immune system and place infected hosts at risk for developing lymphomas and other diseases. It is hypothesized that gammaherpesviruses must initiate acute infection in these cells to establish and maintain long-term infection, but this has not been directly tested. We report here the use of a viral genetic system that allows for cell-type-specific deletion of a viral gene that is essential for replication and reactivation. We employ this system in an in vivo model to reveal that viral replication is not required to initiate or maintain infection within immune cells.

microbiology↗

Deletion of Murine Gammaherpesvirus Gene M2 in AID-Expressing B Cells Impairs Host Colonization and Viral Reactivation

Gammaherpesviruses (GHVs) are DNA tumor viruses that establish life-long, chronic infections in lymphocytes of humans and other mammals. GHV infections are associated with numerous cancers, especially in immune compromised hosts. While it is known that GHVs utilize host germinal center (GC) B cell responses during latency establishment, an understanding of how viral gene products function in specific B cell subsets to regulate this process is incomplete. Using murine gammaherpesvirus 68 (MHV68) as a small-animal model to define mechanisms of GHV pathogenesis in vivo, we generated a virus in which the M2 gene was flanked by loxP sites (M2.loxP), enabling the use of Cre-lox technology to define M2 function in specific cell types in infection and disease. The M2 gene encodes a protein that is highly expressed in GC B cells that promotes plasma cell differentiation and viral reactivation. M2 was efficiently deleted in Cre-expressing cells, and the presence of loxP sites flanking M2 did not alter viral replication or latency in mice that do not express Cre. In contrast, M2.loxP MHV68 exhibited a deficit in latency establishment and reactivation that resembled M2-null virus, following intranasal (IN) infection of mice that express Cre in all B cells (CD19-Cre). Nearly identical phenotypes were observed for M2.loxP MHV68 in mice that express Cre in germinal center (GC) B cells (AID-Cre). However, neither colonization of draining lymph nodes after IN infection nor the spleen after intraperitoneal (IP) infection required M2, although the reactivation defect was retained. Together, these data confirm that M2 function is B cell-specific and demonstrate that M2 primarily functions in AID-expressing cells to facilitate MHV68 dissemination to distal latency reservoirs within the host and reactivation from latency. Our study reveals that a viral latency gene functions within a distinct subset of cells to facilitate host colonization. IMPORTANCEGammaherpesviruses establish life-long chronic infections in cells of the immune system that can lead to lymphomas and other diseases. To facilitate colonization of a host, gammaherpesviruses encode gene products that manipulate processes involved in cellular proliferation and differentiation. Whether and how these viral gene products function in specific cells of the immune system is poorly defined. We report here the use of a viral genetic system that allows for deletion of specific viral genes in discrete populations of cells. We employ this system in an in vivo model to demonstrate cell-type-specific requirements for a particular viral gene. Our findings reveal that a viral gene product can function in distinct cellular subsets to direct gammaherpesvirus pathogenesis.

microbiology↗