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Leete, P.

Publications and source records attributed to Leete, P..

2 recordsLinked to original sources

Small things matter: Lack of extra-islet beta cells in Type 1 diabetes

Recent 3D analyses reported abundant, small beta-cell-rich endocrine objects (EOs) in the human pancreas. Here, we assessed morphological parameters of >262,000 EOs in pancreas sections from 220 donors with or without type 1 diabetes (T1D), ranging in age and disease duration. We observe many insulin (Ins)+/glucagon (Gluc)-EOs in donors without diabetes. Their relative contribution to the total endocrine area is greatest in early life (0-2y) but reduces thereafter. Strikingly, we show the virtual absence of Ins+Gluc- EOs in individuals with T1D, where only the medium and large EOs retain beta cells. We also report a lower EO density in T1D, especially in individuals diagnosed in early life. These findings suggest that extra-islet beta cells are impacted in the development of T1D, and their early loss is a characteristic feature. This new understanding has important implications for defining beta-cell mass, which may inform future screening and treatment strategies in T1D. HighlightsO_LIThe present extensive 2D studies confirm and extend recent 3D analyses of human pancreata, demonstrating that 50% of endocrine objects (EOs) are much smaller than classical islets of Langerhans and consist predominantly of beta cells (Ins+). C_LIO_LISmall insulin+ EOs comprise the largest proportion of the total endocrine area in early childhood and persist throughout the life course in donors without diabetes. C_LIO_LIThere is a shift towards larger EO size with increasing age, with the most pronounced changes in size occurring in the first few years of life. C_LIO_LISmall Ins+ EOs are virtually absent in individuals with type 1 diabetes, while the persisting EOs with beta cells are larger, suggesting a selective destruction of beta cells in small EOs. C_LIO_LIDevelopment of type 1 diabetes, particularly at an early age, is associated with fewer larger EOs in adulthood. This implies that the lack or early destruction of small Ins+ EOs may be detrimental to the generation of larger EOs. C_LI

pathology↗

Gene expression profiling reveals B cells are highly educated by the pancreatic environment during autoimmune diabetes

B cells play an important role in driving the development of type 1 diabetes, however, it remains unclear how they contribute to local beta-cell destruction during disease progression. Using gene expression profiling of B cell subsets in the pancreas and pancreatic lymph nodes, we reveal that B cells are highly modified by the inflamed pancreatic tissue and can be distinguished by their transcriptional profile from those in the lymph node. We identified both a discrete and a core shared gene expression profile in islet CD19+CD138- and CD19+CD138+ B cell subsets, the latter known to have enriched autoreactivity during diabetes development. Upon localisation to pancreatic islets, CD138+ B cells overexpressed genes associated with adhesion molecules and growth factors compared to CD138- B cells. Their shared signature displayed gene expression changes related to the differentiation of antibody-secreting cells and gene regulatory networks associated with interferon signalling pathways, pro-inflammatory cytokines and toll-like receptor activation. Finally, abundant TLR7 expression was detected in islet B cells, and was enhanced specifically in CD138+ B cells. Our study, therefore, provides a detailed transcriptional analysis of islet B cells identifying specific gene signatures and interaction networks that point towards a functional role for B cells in driving autoimmune diabetes.

immunology↗