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Publication : Coregulator Sin3a Promotes Postnatal Murine β-Cell Fitness by Regulating Genes in Ca<sup>2+</sup> Homeostasis, Cell Survival, Vesicle Biosynthesis, Glucose Metabolism, and Stress Response.

First Author  Yang X Year  2020
Journal  Diabetes Volume  69
Issue  6 Pages  1219-1231
PubMed ID  32245798 Mgi Jnum  J:293336
Mgi Id  MGI:6445939 Doi  10.2337/db19-0721
Citation  Yang X, et al. (2020) Coregulator Sin3a Promotes Postnatal Murine beta-Cell Fitness by Regulating Genes in Ca(2+) Homeostasis, Cell Survival, Vesicle Biosynthesis, Glucose Metabolism, and Stress Response. Diabetes 69(6):1219-1231
abstractText  Swi-independent 3a and 3b (Sin3a and Sin3b) are paralogous transcriptional coregulators that direct cellular differentiation, survival, and function. Here, we report that mouse Sin3a and Sin3b are coproduced in most pancreatic cells during embryogenesis but become much more enriched in endocrine cells in adults, implying continued essential roles in mature endocrine cell function. Mice with loss of Sin3a in endocrine progenitors were normal during early postnatal stages but gradually developed diabetes before weaning. These physiological defects were preceded by the compromised survival, insulin-vesicle packaging, insulin secretion, and nutrient-induced Ca(2+) influx of Sin3a-deficient beta-cells. RNA sequencing coupled with candidate chromatin immunoprecipitation assays revealed several genes that could be directly regulated by Sin3a in beta-cells, which modulate Ca(2+)/ion transport, cell survival, vesicle/membrane trafficking, glucose metabolism, and stress responses. Finally, mice with loss of both Sin3a and Sin3b in multipotent embryonic pancreatic progenitors had significantly reduced islet cell mass at birth, caused by decreased endocrine progenitor production and increased beta-cell death. These findings highlight the stage-specific requirements for the presumed "general" coregulators Sin3a and Sin3b in islet beta-cells, with Sin3a being dispensable for differentiation but required for postnatal function and survival.
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