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Biology subjects

Shanina, I.

Publications and source records attributed to Shanina, I..

5 recordsLinked to original sources

Epstein-Barr virus infection promotes Th1-mediated disease in a humanized immune mouse model of multiple sclerosis

Infection with the human-tropic Epstein-Barr virus (EBV) is a strong risk factor for multiple sclerosis (MS), though the underlying mechanisms remain unclear. To investigate the immunomodulatory effects of latent EBV infection, we induced experimental autoimmune encephalomyelitis (EAE) in immunocompromised mice humanized with peripheral blood mononuclear cells (PBMCs) from individuals with or without a history of EBV infection and/or a diagnosis of relapsing MS. HuPBMC EAE mice generated from EBV seronegative healthy donors were less susceptible to developing severe clinical disease than EBV seropositive healthy donor and RRMS cohorts. Donor EBV seropositivity and RRMS led to a significant incremental increase in the number of brain and spinal cord infiltrating effector T cells, in the absence of viral reactivation, due to enhanced proliferation of donor T cells and reduced regulatory T cell expansion. The data indicate that a history of EBV infection, further compounded by a diagnosis of RRMS, promotes T cell-mediated disease in a novel humanized mouse model of MS. SUMMARYIn a novel humanized mouse model of multiple sclerosis (MS), donor history of Epstein-Barr virus (EBV) infection exacerbates disease severity by skewing the balance of effector and regulatory T cells in the brain and spinal cord. These results reveal an immunomodulatory mechanism by which latent EBV infection could predispose to the development of autoimmune disease.

immunology↗

Beta-cell Cre expression and reduced Ins1 gene dosage protect mice from type 1 diabetes

A central goal of physiological research is the understanding of cell-specific roles of disease-associated genes. Cre-mediated recombineering is the tool of choice for cell type-specific analysis of gene function in pre-clinical models. In the type 1 diabetes research field, multiple lines of NOD mice have been engineered to express Cre recombinase in pancreatic {beta}-cells using insulin promoter fragments, but tissue promiscuity remains a concern. Constitutive Ins1tm1.1(cre)Thor (Ins1Cre) mice on the C57/bl6-J background has high {beta}-cell specificity and with no reported off-target effects. We explored if NOD:Ins1Cre mice could be used to investigate {beta}-cell gene deletion in type 1 diabetes disease modeling. We studied wildtype (Ins1WT/WT), Ins1 heterozygous (Ins1Cre/WT or Ins1Neo/WT), and Ins1 null (Ins1Cre/Neo) littermates on a NOD background. Female Ins1Neo/WT mice exhibited significant protection from diabetes, with further near-complete protection in Ins1Cre/WT mice. The effects of combined neomycin and Cre knock-in in Ins1Neo/Cre mice were not additive to the Cre knock-in alone. In Ins1Neo/Cre mice, protection from diabetes was associated with reduced insulitis at 12 weeks of age. Collectively, these data confirm previous reports that loss of Ins1 alleles protects NOD mice from diabetes development and demonstrates, for the first time, that Cre itself may have additional protective effects. This has significant implications for the experimental design and interpretation of pre-clinical type 1 diabetes studies using {beta}-cell-specific Cre in NOD mice.

immunology↗

Age-associated B cells are critical for the control of latent gammaherpesvirus 68 infection

Age-associated B cells (ABCs; CD19+CD11c+T-bet+) are a unique population that are increased in an array of viral infections, though their role during latent infection is largely unexplored. Here, we use murine gammaherpesvirus 68 ({gamma}HV68) to demonstrate that ABCs remain elevated long-term during latent infection and express IFN{gamma} and TNF. Using a strain of {gamma}HV68 that is cleared following acute infection, we show that ABCs persist in the absence of latent virus, though their expression of IFN{gamma} and TNF is decreased. With a fluorescent virus we demonstrate that ABCs are infected with {gamma}HV68 at similar rates to other previously activated B cells. We find that mice without ABCs display defects in anti-viral IgG2a/c antibodies and are more susceptible to {gamma}HV68 reactivation when challenged with heterologous infection. Together, these results indicate that ABCs are a persistent effector subset during latent viral infection that restrains {gamma}HV68 reactivation.

immunology↗

Gammaherpesvirus infection licenses age-associated B cells for pathogenicity in MS and EAE

While age-associated B cells (ABCs) are known to expand and persist following viral infection and during autoimmunity, their interactions are yet to be studied together in these contexts. Epstein-Barr virus (EBV) infection has long been implicated in multiple sclerosis (MS), and it is not known whether ABCs could play a role in mediating viral contribution to autoimmunity. Here, we show that the circulating ABC population is expanded in people with MS and that EBV infection and MS status differentially impact the circulating ABC phenotype. We then directly compared ABCs during viral infection and autoimmunity using mouse models of EBV, gammaherpesvirus 68 ({gamma}HV68), and MS, experimental autoimmune encephalomyelitis (EAE). We observed that splenic ABCs are expanded in a sex-biased manner during both latent virus infection and EAE, and each event drives the ABC population to opposing phenotypes. We have previously shown that latent{gamma} HV68 infection exacerbates EAE and here we show that mice lacking ABCs fail to display{gamma} HV68-enhanced disease. Collectively, these findings indicate that latent viral infection and central nervous system autoimmunity differentially impact the ABC population and suggests that viral infections such as EBV prime ABCs to contribute pathogenically in MS.

immunology↗

Latent gammaherpesvirus exacerbates arthritis and requires age-associated B cells

Epstein-Barr virus (EBV) infection is associated with rheumatoid arthritis (RA) in adults, though the nature of the relationship remains unknown. Herein, we examine the contribution of viral infection to the severity of arthritis in mice. We provide the first evidence that latent gammaherpesvirus infection enhances clinical arthritis, modeling EBVs role in RA. Mice latently infected with a murine analog of EBV, gammaherpesvirus 68 ({gamma}HV68), develop more severe collagen-induced arthritis and a Th1-skewed immune profile reminiscent of human disease. We demonstrate that disease enhancement requires viral latency and is not due to active virus stimulation of the immune response. Age-associated B cells (ABCs) are associated with several human autoimmune diseases, including arthritis, though their contribution to disease is not well understood. Using ABC knockout mice, we provide the first evidence that ABCs are mechanistically required for viral enhancement of disease, thereby establishing that latent gammaherpesvirus infection stimulates ABCs to provoke arthritis. Conflict of interest statementThe authors have declared that no conflict of interest exists.

immunology↗