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Pdcd2l Promotes Palmitate-Induced Pancreatic Beta-Cell Apoptosis as a FoxO1 Target Gene
Ye Yin1,2, Wei Yong1, Jiani Yu1
1Key Laboratory of Human Functional Genomics of Jiangsu Province, Nanjing Medical University, Nanjing, China.
Abstract:
Transcription factor FoxO1 is a key regulator of the insulin-signaling pathway, and is reported to play important roles in pancreatic β cell differentiation, proliferation, apoptosis and stress resistance. The multifunctional nature of FoxO1 is due to its regulation of various downstream targets. Previous studies in our lab identified potential FoxO1 target genes using the ChIP-DSL technique and one of those genes, Pdcd2l, was selected for further study. We found that the expression of Pdcd2l was increased with palmitate treatment; the luciferase assay result revealed that enhanced Pdcd2l promoter activity was responsible for the elevation of Pdcd2l expression. ChIP-PCR was performed to confirm the combination of FoxO1 to Pdcd2l promoter, result showing that FoxO1 could bind to Pdcd2l promoter and this binding was further enhanced after palmitate treatment. Overexpression of FoxO1 significantly induced Pdcd2l promoter activity, leading to increased mRNA level; consistently, interference of FoxO1 abolished the increment of Pdcd2l gene expression triggered by palmitate treatment. In addition, overexpression of Pdcd2l could further increase the percentage of apoptotic cells induced by palmitate incubation, whilst interference of Pdcd2l partially reversed the palmitate-induced apoptosis together with activated Caspase-3, indicating that the latter may play a part in this process. Therefore, in this study, we confirmed the binding of FoxO1 to the Pdcd2l gene promoter and studied the role of Pdcd2l in β cells for the first time. Our results suggested that FoxO1 may exert its activity partially through the regulation of Pdcd2l in palmitate-induced β cell apoptosis and could help to clarify the molecular mechanisms of β cell failure in type 2 diabetes.
Insights
Transcription factor FoxO1 regulates pancreatic beta cell function. This study shows FoxO1 directly controls Pdcd2l expression, which exacerbates palmitate-induced beta cell apoptosis, offering insights into type 2 diabetes mechanisms.
Area of Science:
- Molecular Biology
- Endocrinology
- Cell Biology
Background:
- Transcription factor FoxO1 is crucial for insulin signaling and pancreatic beta cell function.
- FoxO1 regulates beta cell differentiation, proliferation, apoptosis, and stress resistance.
- Identifying FoxO1 target genes is key to understanding its multifaceted roles.
Purpose of the Study:
- To investigate the role of the potential FoxO1 target gene, Pdcd2l, in pancreatic beta cells.
- To elucidate the regulatory mechanism of Pdcd2l expression by FoxO1.
- To determine the involvement of Pdcd2l in palmitate-induced beta cell apoptosis.
Main Methods:
- Chromatin immunoprecipitation followed by deep sequencing (ChIP-DSL) to identify FoxO1 targets.
- Luciferase assays to assess promoter activity.
- Chromatin immunoprecipitation followed by polymerase chain reaction (ChIP-PCR) to confirm FoxO1 binding.
- Gene overexpression and interference techniques.
- Assessment of cell apoptosis and Caspase-3 activity.
Main Results:
- Palmitate treatment increased Pdcd2l expression and promoter activity.
- FoxO1 directly binds to the Pdcd2l promoter, with binding enhanced by palmitate.
- FoxO1 overexpression induced Pdcd2l expression; FoxO1 interference abolished palmitate-induced Pdcd2l upregulation.
- Pdcd2l overexpression exacerbated palmitate-induced apoptosis, while Pdcd2l interference partially reversed it.
Conclusions:
- FoxO1 directly regulates Pdcd2l expression in pancreatic beta cells.
- Pdcd2l plays a significant role in palmitate-induced beta cell apoptosis.
- FoxO1 may contribute to beta cell failure in type 2 diabetes through Pdcd2l regulation.
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