Anti-Insulin B Cells Are Poised for Antigen Presentation in Type 1 Diabetes.
Jamie L FeltonDamian MasedaRachel H BonamiChrys HulbertJames W ThomasPublished in: Journal of immunology (Baltimore, Md. : 1950) (2018)
Early breaches in B cell tolerance are central to type 1 diabetes progression in mouse and man. Conventional BCR transgenic mouse models (VH125.Tg NOD) reveal the power of B cell specificity to drive disease as APCs. However, in conventional fixed IgM models, comprehensive assessment of B cell development is limited. To provide more accurate insight into the developmental and functional fates of anti-insulin B cells, we generated a new NOD model (VH125SDNOD) in which anti-insulin VDJH125 is targeted to the IgH chain locus to generate a small (1-2%) population of class switch-competent insulin-binding B cells. Tracking of this rare population in a polyclonal repertoire reveals that anti-insulin B cells are preferentially skewed into marginal zone and late transitional subsets known to have increased sensitivity to proinflammatory signals. Additionally, IL-10 production, characteristic of regulatory B cell subsets, is increased. In contrast to conventional models, class switch-competent anti-insulin B cells proliferate normally in response to mitogenic stimuli but remain functionally silent for insulin autoantibody production. Diabetes development is accelerated, which demonstrates the power of anti-insulin B cells to exacerbate disease without differentiation into Ab-forming or plasma cells. Autoreactive T cell responses in VH125SDNOD mice are not restricted to insulin autoantigens, as evidenced by increased IFN-γ production to a broad array of diabetes-associated epitopes. Together, these results independently validate the pathogenic role of anti-insulin B cells in type 1 diabetes, underscore their diverse developmental fates, and demonstrate the pathologic potential of coupling a critical β cell specificity to predominantly proinflammatory Ag-presenting B cell subsets.
Keyphrases
- type diabetes
- glycemic control
- cardiovascular disease
- insulin resistance
- induced apoptosis
- peripheral blood
- magnetic resonance
- stem cells
- squamous cell carcinoma
- immune response
- mouse model
- lymph node
- single cell
- high resolution
- acute lymphoblastic leukemia
- adipose tissue
- cell cycle arrest
- quantum dots
- cell death
- skeletal muscle
- magnetic resonance imaging
- oxidative stress
- case report
- cancer therapy
- neoadjuvant chemotherapy
- tyrosine kinase
- genome wide
- contrast enhanced
- endoplasmic reticulum stress