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MicroRNA‑152 regulates insulin secretion and pancreatic β cell proliferation by targeting PI3Kα
Li Chen1, Haiyun Qian2, Junli Xue1
1Department of Endocrinology, Jingzhou Central Hospital, The Second Clinical Medical College, Yangtze University, Jingzhou, Hubei 434020, P.R. China.
Abstract:
An increasing number of microRNAs (miRNAs/miRs) are reported to have important roles in diabetes. Glucose‑stimulated insulin secretion and pancreatic β cell proliferation are essential in the control of metabolic disorder, however, the underlying molecular mechanisms remain unclear. The present study investigated the function of miR‑152 in diabetes. The results of reverse transcription‑quantitative polymerase chain reaction demonstrated that miR‑152 levels in the blood were markedly reduced in patients with diabetes compared with nondiabetic controls. In addition, a high blood glucose concentration was significantly associated with reduced miR‑152 expression. Furthermore, overexpression of miR‑152 using miR‑152 mimics promoted the proliferation of INS‑1 and MIN6 cells, as determined by an MTT assay, in addition to insulin secretion, while knockdown of miR‑152 using an inhibitor led to the opposite effects. Phosphatidylinositol 3‑kinase (PI3K) signaling has been reported to inhibit insulin secretion, however, the regulation of PI3K in the pancreatic β cell is poorly understood. The present study identified that PI3K catalytic subunit α (PI3Kα) was a direct target gene of miR‑152 using a luciferase reporter assay, and miR‑152 inhibited the expression of PI3Kα at the protein level, which was determined by western blotting. Therefore, the regulation of insulin secretion and pancreatic β cell proliferation may occur via the miR‑152/PI3Kα axis. The overexpression of PI3Kα in INS‑1 and MIN6 cells partially reduced the effects of miR‑152 overexpression on insulin secretion. Consistently, PI3Kα levels were reduced in murine pancreatic islets following treatment with 20 mM glucose, and increased in blood samples from patients with diabetes compared with healthy individuals. In conclusion, the results of the present study demonstrate that miR‑152 may have an important role in pancreatic β cell function, and established an association between miR‑152 and the PI3Kα axis. Therefore, targeting PI3Kα may be a potential therapeutic option for diabetes.
Insights
MicroRNA-152 (miR-152) is reduced in diabetes and promotes pancreatic beta cell function and insulin secretion by inhibiting PI3Kα. Targeting PI3Kα may offer a new diabetes therapy.
Area of Science:
- Molecular Biology
- Endocrinology
- Metabolic Disorders
Background:
- MicroRNAs (miRNAs) play crucial roles in diabetes pathogenesis.
- Mechanisms regulating glucose-stimulated insulin secretion and pancreatic beta cell proliferation are not fully understood.
- The role of miR-152 in diabetes requires further investigation.
Purpose of the Study:
- To investigate the function of miR-152 in diabetes.
- To elucidate the molecular mechanisms underlying miR-152's role in pancreatic beta cell function.
- To explore the potential therapeutic implications of the miR-152/PI3Kα axis in diabetes.
Main Methods:
- Reverse transcription-quantitative polymerase chain reaction (RT-qPCR) to measure miR-152 levels.
- MTT assay to assess cell proliferation.
- Luciferase reporter assay and western blotting to identify and validate miR-152 targets.
- Overexpression and knockdown studies using miR-152 mimics and inhibitors.
Main Results:
- miR-152 levels were significantly reduced in patients with diabetes and correlated with high blood glucose.
- Overexpression of miR-152 promoted INS-1 and MIN6 cell proliferation and insulin secretion.
- miR-152 directly targeted and inhibited phosphatidylinositol 3-kinase catalytic subunit alpha (PI3Kα) expression.
- PI3Kα overexpression partially reversed the effects of miR-152 on insulin secretion.
Conclusions:
- miR-152 plays a critical role in regulating pancreatic beta cell function and insulin secretion.
- The miR-152/PI3Kα axis is a key pathway involved in diabetes.
- Targeting PI3Kα represents a potential therapeutic strategy for managing diabetes.
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