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Biology subjects

Felton, J. L.

Publications and source records attributed to Felton, J. L..

2 recordsLinked to original sources

Altered B Cell Metabolic Pathways Characterize Type 1 Diabetes Progression

Type 1 diabetes (T1D) results in immune-mediated destruction of insulin-producing beta cells in the pancreas. B cells have been identified as critical, pathogenic antigen presenting cells and their specificity drives disease progression. At the same time, immunosuppressive, IL-10- producing regulatory B cells (Bregs) have been shown to play protective roles in mouse models of several autoimmune diseases, including rheumatoid arthritis and multiple sclerosis. In these models, microenvironmental stimuli induce regulatory B cell differentiation. Specifically, signaling through hypoxia-inducible factor 1 (HIF-1) drives a glycolytic flux that facilitates Breg expansion. While Breg frequencies are decreased in individuals with T1D compared to healthy controls, the role B regs play, how microenvironmental stimuli influence their differentiation, and whether this is altered in T1D progression, which is characterized by progressive, systemic hyperglycemia, are less clear. Here we examine the relationship between B cell differentiation, cellular metabolism, and HIF-1 to reveal that in a mouse model of autoimmune diabetes, B cells have distinct metabolic characteristics that change with disease progression. Further, response to hypoxia in autoimmune B cells is distinct from the response by non-autoimmune, control B cells. Together, these data suggest that dysregulated HIF signaling may skew the B cell repertoire toward inflammatory, rather than regulatory B cell subsets to drive T1D development. Consequently, HIF-1 activation to expand regulatory B cell populations may be a viable option for immune modulation.

immunology↗

Pharmacological inhibition of tyrosine protein-kinase 2 reduces islet inflammation and delays type 1 diabetes onset in mice

Tyrosine protein-kinase 2 (TYK2), a member of the Janus kinase family, mediates inflammatory signaling through multiple cytokines, including interferon- (IFN), interleukin (IL)-12, and IL-23. Missense mutations in TYK2 are associated with protection against type 1 diabetes (T1D), and inhibition of TYK2 shows promise in the management of other autoimmune conditions. Here, we evaluated the effects of specific TYK2 inhibitors (TYK2is) in pre-clinical models of T1D. First, human {beta} cells, cadaveric donor islets, and iPSC-derived islets were treated in vitro with IFN in combination with a small molecule TYK2i (BMS-986165 or a related molecule BMS-986202). TYK2 inhibition prevented IFN-induced {beta} cell HLA class I up-regulation, endoplasmic reticulum stress, and chemokine production. In co-culture studies, pre-treatment of {beta} cells with a TYK2i prevented IFN-induced activation of T cells targeting an epitope of insulin. In vivo administration of BMS-986202 in two mouse models of T1D (RIP-LCMV-GP mice and NOD mice) reduced systemic and tissue-localized inflammation, prevented {beta} cell death, and delayed T1D onset. Transcriptional phenotyping of pancreatic islets, pancreatic lymph nodes (PLN), and spleen during early disease pathogenesis highlighted a role for TYK2 inhibition in modulating signaling pathways associated with inflammation, translational control, stress signaling, secretory function, immunity, and diabetes. Additionally, TYK2i treatment changed the composition of innate and adaptive immune cell populations in the blood and disease target tissues, resulting in an immune phenotype with a diminished capacity for {beta} cell destruction. Overall, these findings indicate that TYK2i has beneficial effects in both the immune and endocrine compartments in models of T1D, thus supporting a path forward for testing TYK2 inhibitors in human T1D.

physiology↗