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Gewurz, Benjamin

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Gewurz

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Benjamin

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Gewurz, Benjamin

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Now showing 1 - 2 of 2
  • Publication

    NF-κB and IRF7 Pathway Activation by Epstein-Barr Virus Latent Membrane Protein 1

    (MDPI, 2013) Ersing, Ina; Bernhardt, Katharina; Gewurz, Benjamin

    The principal Epstein-Barr virus (EBV) oncoprotein, Latent Membrane Protein 1 (LMP1), is expressed in most EBV-associated human malignancies. LMP1 mimics CD40 receptor signaling to provide infected cells with constitutive NF-κB, MAP kinase, IRF7, and PI3 kinase pathway stimulation. EBV-transformed B-cells are particularly dependent on constitutive NF-κB activity, and rapidly undergo apoptosis upon NF-κB blockade. Here, we review LMP1 function, with special attention to current understanding of the molecular mechanisms of LMP1-mediated NF-κB and IRF7 pathway activation. Recent advances include the elucidation of transmembrane motifs important for LMP1 trafficking and ligand-independent signaling, analysis of genome-wide LMP1 gene targets, and the identification of novel cell proteins that mediate LMP1 NF-κB and IRF7 pathway activation.

  • Publication

    A Temporal Proteomic Map of Epstein-Barr Virus Lytic Replication in B Cells

    (Cell Press, 2017) Ersing, Ina; Nobre, Luis; Wang, Liang Wei; Soday, Lior; Ma, Yijie; Paulo, Joao; Narita, Yohei; Ashbaugh, Camille W.; Jiang, Chang; Grayson, Nicholas E.; Kieff, Elliott; Gygi, Steven; Weekes, Michael P.; Gewurz, Benjamin

    Summary Epstein-Barr virus (EBV) replication contributes to multiple human diseases, including infectious mononucleosis, nasopharyngeal carcinoma, B cell lymphomas, and oral hairy leukoplakia. We performed systematic quantitative analyses of temporal changes in host and EBV proteins during lytic replication to gain insights into virus-host interactions, using conditional Burkitt lymphoma models of type I and II EBV infection. We quantified profiles of >8,000 cellular and 69 EBV proteins, including >500 plasma membrane proteins, providing temporal views of the lytic B cell proteome and EBV virome. Our approach revealed EBV-induced remodeling of cell cycle, innate and adaptive immune pathways, including upregulation of the complement cascade and proteasomal degradation of the B cell receptor complex, conserved between EBV types I and II. Cross-comparison with proteomic analyses of human cytomegalovirus infection and of a Kaposi-sarcoma-associated herpesvirus immunoevasin identified host factors targeted by multiple herpesviruses. Our results provide an important resource for studies of EBV replication.