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A High-content In Vitro Pancreatic Islet β-cell Replication Discovery Platform
Published on: July 16, 2016
Identification of reversible and druggable pathways to improve beta-cell function and survival in Type 2 diabetes
Smithamol Sithara1, Tamsyn Crowley2, Ken Walder1
1School of Medicine, IMPACT, Institute for Innovation in Physical and Mental Health and Clinical Translation, Deakin University, Geelong, Australia.
Abstract:
Targeting β-cell failure could prevent, delay or even partially reverse Type 2 diabetes. However, development of such drugs is limited as the molecular pathogenesis is complex and incompletely understood. Further, while β-cell failure can be modeled experimentally, only some of the molecular changes will be pathogenic. Therefore, we used a novel approach to identify molecular pathways that are not only changed in a diabetes-like state but also are reversible and can be targeted by drugs. INS1E cells were cultured in high glucose (HG, 20 mM) for 72 h or HG for an initial 24 h followed by drug addition (exendin-4, metformin and sodium salicylate) for the remaining 48 h. RNAseq (Illumina TruSeq), gene set enrichment analysis (GSEA) and pathway analysis (using Broad Institute, Reactome, KEGG and Biocarta platforms) were used to identify changes in molecular pathways. HG decreased function and increased apoptosis in INS1E cells with drugs partially reversing these effects. HG resulted in upregulation of 109 pathways while drug treatment downregulated 44 pathways with 21 pathways in common. Interestingly, while hyperglycemia extensively upregulated metabolic pathways, they were not altered with drug treatment, rather pathways involved in the cell cycle featured more heavily. GSEA for hyperglycemia identified many known pathways validating the applicability of our cell model to human disease. However, only a fraction of these pathways were downregulated with drug treatment, highlighting the importance of considering druggable pathways. Overall, this provides a powerful approach and resource for identifying appropriate targets for the development of β-cell drugs.
Insights
Targeting beta-cell failure may reverse Type 2 diabetes. This study identified reversible molecular pathways in beta-cells affected by high glucose, offering new drug targets for diabetes treatment.
Area of Science:
- Endocrinology
- Molecular Biology
- Pharmacology
Background:
- Type 2 diabetes is linked to beta-cell failure, but its complex molecular basis hinders drug development.
- Existing models of beta-cell failure may not distinguish pathogenic from non-pathogenic molecular changes.
Purpose of the Study:
- To identify molecular pathways in beta-cells that are altered by a diabetes-like state, reversible, and druggable.
- To establish a novel approach for discovering therapeutic targets for Type 2 diabetes.
Main Methods:
- Utilized INS1E cells cultured in high glucose (HG) conditions.
- Applied RNA sequencing (RNAseq), gene set enrichment analysis (GSEA), and pathway analysis.
- Investigated the effects of exendin-4, metformin, and sodium salicylate on HG-induced changes.
Main Results:
- High glucose decreased beta-cell function and increased apoptosis, with partial reversal by drug treatment.
- HG upregulated 109 pathways; drug treatment downregulated 44, with 21 common pathways.
- Drug treatment primarily affected cell cycle pathways, not the metabolic pathways upregulated by hyperglycemia.
Conclusions:
- This study presents a powerful method for identifying druggable pathways relevant to beta-cell dysfunction in Type 2 diabetes.
- Focusing on reversible and targeted pathways is crucial for developing effective beta-cell therapies.
- The findings provide a valuable resource for future drug development aimed at preventing or reversing Type 2 diabetes.
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