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A High-content In Vitro Pancreatic Islet β-cell Replication Discovery Platform
Published on: July 16, 2016
FAM151A Regulates Insulin Secretion in Pancreatic β-Cells and Is Implicated in Pathogenesis of Type 2 Diabetes
Jing Zhu1, Chenchen Li2, Shuaishuai Zhu3
1Shanghai Institute of Nutrition and Health, University of Chinese Academy of Sciences, Shanghai, China.
Background:
The pathophysiology of type 2 diabetes mellitus (T2DM) is characterized by insulin resistance in peripheral tissues and dysfunction of β-cells. However, the molecular mechanisms underlying β-cell dysfunction remain incompletely understood.
Methods:
Analysis of single-cell RNA sequencing of T2DM islets was used to elucidate changes in family with sequence similarity 151 member A (Fam151a) expression. Deletion of Fam151a in INS-1E cells and mice was used to investigate the function of this gene in insulin secretion. Metabolic profiling and metabolomics analyses were used to decipher the effects of FAM151A on metabolic pathways.
Results:
Using single-cell RNA sequencing, we identified that Fam151a was significantly downregulated in pancreatic β-cells under T2DM conditions. We next investigated the potential functions of FAM151A in β-cells in vitro and in vivo. FAM151A was localized in the endoplasmic reticulum, and its expression was reduced by high-glucose treatment in INS-1E cells. Genetic deletion of Fam151a in INS-1E cells resulted in proinsulin accumulation, insulin vesicle retention, and impaired insulin secretion. A mouse model with pancreatic β-cell-specific deletion of Fam151a displayed reductions in glucose- and potassium chloride (KCl)-stimulated insulin secretion, and impaired glucose tolerance, without alterations in insulin sensitivity or islet morphology. Integrated metabolic profiling and metabolomics analyses revealed that cellular Fam151a deficiency affects the adenosine triphosphate/adenosine diphosphate ratio, glycolysis, the pentose phosphate pathway, and the purine synthesis pathway.
Conclusion:
Our study identifies FAM151A as a key regulator of insulin secretion in β-cells, providing a potential therapeutic target for the management of T2DM.
Insights
Family with sequence similarity 151 member A (Fam151a) is crucial for pancreatic beta-cell function in type 2 diabetes. Its downregulation impairs insulin secretion and glucose tolerance, suggesting Fam151a as a therapeutic target.
Area of Science:
- Endocrinology
- Molecular Biology
- Metabolic Diseases
Background:
- Type 2 diabetes mellitus (T2DM) pathophysiology involves insulin resistance and pancreatic beta-cell dysfunction.
- The precise molecular mechanisms driving beta-cell dysfunction in T2DM remain unclear.
Purpose of the Study:
- To investigate the role of Family with sequence similarity 151 member A (Fam151a) in pancreatic beta-cell function and its relevance to T2DM.
- To explore FAM151A as a potential therapeutic target for T2DM management.
Main Methods:
- Single-cell RNA sequencing of T2DM islets to assess Fam151a expression.
- In vitro (INS-1E cells) and in vivo (mouse models) genetic deletion of Fam151a.
- Analysis of insulin secretion, glucose tolerance, insulin sensitivity, and islet morphology.
- Metabolic profiling and metabolomics to identify affected pathways.
Main Results:
- Fam151a expression was significantly downregulated in pancreatic beta-cells from T2DM models.
- Fam151a deletion in beta-cells led to impaired insulin secretion, proinsulin accumulation, and reduced glucose tolerance.
- Cellular Fam151a deficiency impacted ATP/ADP ratios, glycolysis, pentose phosphate pathway, and purine synthesis.
Conclusions:
- FAM151A is identified as a critical regulator of insulin secretion in pancreatic beta-cells.
- FAM151A deficiency contributes to T2DM pathophysiology by disrupting beta-cell function and metabolism.
- Targeting FAM151A presents a potential therapeutic strategy for T2DM.
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