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Biology subjects

Yagan, M.

Publications and source records attributed to Yagan, M..

3 recordsLinked to original sources

Myelin transcription factors 1 and 3 have overlapping but distinct roles in insulin secretion and survival of human β cells

Aims/hypothesisGenetic and environmental factors work together to cause islet beta-cell failure, leading to type 2 diabetes (T2D). How these factors are integrated to regulate beta cells remains largely unclear. Based on our previous findings that the family of Myelin transcription factors (MYT1, MYT1L, and ST18) prevents mouse beta-cell failure by repressing the overactivation of stress response, their regulation by obesity-related nutrition signals in human beta cells, and their association with T2D, we postulate that these factors prevent human beta-cell failure under normal physiology and obesity-related stress. MethodsMYT1 or ST18 were knocked down in primary human beta cells using shRNA. Beta-cell survival, secretory function, and gene expression were examined after islet cells were cultured in vitro or xenotransplanted into mice under normal or obesity-related stress. ResultsIn culture, MYT1-knockdown (KD) caused beta-cell death, while ST18-KD compromised glucose-stimulated insulin secretion. Under obesity-induced stress as xenotransplants, ST18-KD also caused beta-cell death. Accordingly, MYT1-KD deregulated several genes and genesets in cell death and cellular stress response, while ST18-KD deregulated those regulating stress response, mitochondria, and ion channels. Corresponding to these gene expression changes, ST18-KD reduces glucose-stimulated Ca2+ influx in beta cells. In addition, the MYT1- and ST18-regulated genes are enriched for T2D-associated loci, with an enrichment of 2.05-fold relative to random distribution. Conclusions/interpretationThe MYT TFs complement each other to integrate genetic and environmental factors to prevent beta-cell failure and T2D, with their major effects exerted on beta-cell viability and/or Ca2+ influx. Graphical AbstractNutrient-responsive transcription factors MYT1 and ST18 regulate human beta-cell survival and secretory functions. Under low metabolic stress, MYT1 regulates cell survival while ST18 regulates insulin secretion. Under high metabolic stress, ST18 also regulates beta-cell survival. MYT1, at least partly, regulates cell survival through stress-related apoptotic processes, while ST18 regulates insulin secretion via Ca2+ influx. Research in context summaryO_ST_ABSBackgroundC_ST_ABSO_LIThe myelin transcription factors (MYT TFs, including MYT1, MYT1l, and ST18) prevent mouse beta-cell failure by depressing the overactivation of stress-response genes. C_LIO_LISNPs in all three MYT loci are associated with human type 2 diabetes. C_LIO_LIThe expression and nuclear localization of MYT1 and ST18 were increased in primary human beta cells under acute metabolic stress but downregulated in type 2 diabetes. C_LIO_LIThe co-knockdown of MYT1, MYT1L, and ST18 in a human beta-cell line resulted in apoptosis. C_LI Key questionO_LIHow does MYT1 or ST18 regulate human beta-cell function and survival? C_LI New findingsO_LIMYT1 prevents human beta-cell death under normal and metabolic stress conditions, corresponding to deregulation of a few genes involved in cell death under cellular stress. C_LIO_LIST18 promotes insulin secretion under normal physiological conditions by regulating Ca2+ influx and prevents beta-cell death under metabolic stress. C_LIO_LIThe MYT1- and ST18-regulated genes are enriched for type 2 diabetes-risk loci. C_LI Clinical impactO_LIRegulators of the MYT-TF activities could be explored to delay/prevent beta-cell failure and the development of type 2 diabetes. C_LI

cell biology↗

Pancreatic islet alpha cells regulate microtubule stability in neighboring beta cells to tune insulin secretion and induce functional heterogeneity in individual mouse and human islets

We have reported that the microtubule (MT) network in {beta} cells attenuates this function by withdrawing insulin secretory granules (ISGs) away from the plasma membrane. Thus, high glucose-induced MT remodeling is required for robust glucose-stimulated insulin secretion (GSIS). We now show that -cell secreted hormones, Gcg and/or Glp1, regulate the MT stability in {beta} cells. Activating the receptors of Gcg or Glp1 (GcgR or Glp1R) with chemical agonists induces MT destabilization in {beta} ells in the absence of high glucose. In contrast, inhibiting these receptors with antagonists attenuates high glucose-induced MT destabilization. Supporting the significance of this regulation, the MT networks in {beta} cells of islets with higher /{beta} cell ratio are less stable than those with lower /{beta} cell ratio. Within each individual islet, {beta} cells that are located close to cells show faster MTs remodeling upon glucose stimulation than those away. Consequently, islets with higher /{beta} cell ratio secrete more insulin in response to high glucose and plasma membrane depolarization, which is recapitulated by direct Gcg stimulation. These combined results reveal a new MT-dependent pathway by which cells, using Gcg and or Glp1-mediated paracrine signaling, tune {beta}-cell secretion. In addition, the different -{beta} cell ratios in individual islets lead to their heterogeneous secretory responses, which may be important for handling secretory function needs under different physiological conditions. HighlightsO_LIGcg sensitizes glucose-induced MT remodeling in mouse and human {beta} cells C_LIO_LIMT density in single islets anti-correlates with /{beta} cell ratio C_LIO_LIGSIS levels in single islets positively correlate with /{beta} cell ratio C_LIO_LIDifferent /{beta} cell ratio contributes to heterogeneity of single islet GSIS C_LI

cell biology↗

Atf4 protects islet beta-cell identity and function under acute glucose-induced stress but promotes beta-cell failure in the presence of free fatty acid

Glucolipotoxicity, caused by combined hyperglycemia and hyperlipidemia, results in {beta}-cell failure and type 2 diabetes (T2D) via cellular stress-related mechanisms. Activating transcription factor 4 (Atf4) is an essential effector of stress response. We show here that Atf4 expression in {beta}-cells is dispensable for glucose homeostasis in young mice, but it is required for {beta}-cell function during aging and under obesity-related metabolic stress. Henceforth, aged Atf4-deficient {beta}-cells display compromised secretory function under acute hyperglycemia. In contrast, they are resistant to acute free fatty acid-induced loss-of identity and dysfunction. At molecular level, Atf4-deficient {beta}-cells down-regulate genes involved in protein translation, reducing {beta}-cell identity gene products under high glucose. They also upregulate several genes involved in lipid metabolism or signaling, likely contributing to their resistance to free fatty acid-induced dysfunction. These results suggest that Atf4 activation is required for {beta}-cell identity and function under high glucose, but this paradoxically induces {beta}-cell failure in the presence of high levels of free fatty acids. Different branches of Atf4 activity could be manipulated for protecting {beta}-cells from metabolic stress-induced failure. HighlightsO_LIAtf4 is dispensable in {beta}-cells in young mice C_LIO_LIAtf4 protects {beta}-cells under high glucose C_LIO_LIAtf4 exacerbate fatty acid-induced {beta}-cell defects C_LIO_LIAtf4 activates translation but depresses lipid-metabolism C_LI

genetics↗