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Isx9 Regulates Calbindin D28K Expression in Pancreatic β Cells and Promotes β Cell Survival and Function
Julien B Pujol1, Eija Heikkila2, Claudia Savoia3
1Department of Cell Biology, Nestle Institute of Health Sciences, EPFL Campus, 1015 Lausanne, Switzerland. julienpujol@hotmail.com.
Abstract:
Pancreatic β-cell dysfunction and death contribute to the onset of diabetes, and novel strategies of β-cell function and survival under diabetogenic conditions need to be explored. We previously demonstrated that Isx9, a small molecule based on the isoxazole scaffold, drives neuroendocrine phenotypes by increasing the expression of genes required for β-cell function and improves glycemia in a model of β cell regeneration. We further investigated the role of Isx9 in β-cell survival. We find that Isx9 drives the expression of Calbindin-D28K (D28K), a key regulator of calcium homeostasis, and plays a cytoprotective role through its calcium buffering capacity in β cells. Isx9 increased the activity of the calcineurin (CN)/cytoplasmic nuclear factor of the activated T-cells (NFAT) transcription factor, a key regulator of D28K, and improved the recruitment of NFATc1, cAMP response element-binding protein (CREB), and p300 to the D28K promoter. We found that nutrient stimulation increased D28K plasma membrane enrichment and modulated calcium channel activity in order to regulate glucose-induced insulin secretion. Isx9-mediated expression of D28K protected β cells against chronic stress induced by serum withdrawal or chronic inflammation by reducing caspase 3 activity. Consequently, Isx9 improved human islet function after transplantation in NOD-SCID mice in a streptozotocin-induced diabetes model. In summary, Isx9 significantly regulates expression of genes relevant to β cell survival and function, and may be an attractive therapy to treat diabetes and improve islet function post-transplantation.
Insights
The small molecule Isx9 enhances pancreatic beta-cell survival and function by increasing Calbindin-D28K expression, offering a potential therapy for diabetes and improving islet transplantation outcomes.
Area of Science:
- Endocrinology and Metabolism
- Cell Biology
- Molecular Medicine
Background:
- Pancreatic beta-cell dysfunction and death are central to diabetes development.
- Novel strategies targeting beta-cell function and survival are crucial.
- Previous work showed Isx9 enhances beta-cell function and regeneration.
Purpose of the Study:
- To investigate the role of Isx9 in beta-cell survival.
- To elucidate the molecular mechanisms by which Isx9 promotes beta-cell protection.
- To evaluate Isx9's therapeutic potential in diabetes and islet transplantation.
Main Methods:
- Assessed Isx9's effect on Calbindin-D28K (D28K) expression and its role in calcium homeostasis.
- Investigated Isx9's impact on the calcineurin/NFAT pathway and transcription factor recruitment to the D28K promoter.
- Evaluated Isx9-mediated D28K expression's protective effects against beta-cell stress (serum withdrawal, inflammation) and its efficacy in a mouse model of diabetes and islet transplantation.
Main Results:
- Isx9 drives D28K expression, a key regulator of calcium homeostasis, conferring cytoprotection to beta cells.
- Isx9 activates the CN/NFAT pathway, enhancing NFATc1, CREB, and p300 recruitment to the D28K promoter.
- Isx9-induced D28K expression protected beta cells from chronic stress and improved human islet function post-transplantation in a diabetic mouse model.
Conclusions:
- Isx9 significantly regulates genes vital for beta-cell survival and function.
- Isx9's ability to enhance D28K expression offers a promising therapeutic avenue for diabetes treatment.
- Isx9 demonstrates potential for improving islet function after transplantation.
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