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A High-content In Vitro Pancreatic Islet β-cell Replication Discovery Platform
Published on: July 16, 2016
Endoplasmic reticulum stress in pancreatic β cells induces incretin desensitization and β-cell dysfunction via
Ji-Hye Lee1,2, Hanguk Ryu1, Hyejin Lee1
1Department of New Biology, Daegu Gyeongbuk Institute of Science and Technology, Daegu, Republic of Korea.
Abstract:
Pancreatic β-cell dysfunction and eventual loss are key steps in the progression of type 2 diabetes (T2D). Endoplasmic reticulum (ER) stress responses, especially those mediated by the protein kinase RNA-like ER kinase and activating transcription factor 4 (PERK-ATF4) pathway, have been implicated in promoting these β-cell pathologies. However, the exact molecular events surrounding the role of the PERK-ATF4 pathway in β-cell dysfunction remain unknown. Here, we report our discovery that ATF4 promotes the expression of PDE4D, which disrupts β-cell function via a downregulation of cAMP signaling. We found that β-cell-specific transgenic expression of ATF4 led to early β-cell dysfunction and loss, a phenotype that resembles accelerated T2D. Expression of ATF4, rather than C/EBP homologous protein (CHOP), promoted PDE4D expression, reduced cAMP signaling, and attenuated responses to incretins and elevated glucose. Furthermore, we found that β-cells of leptin receptor-deficient diabetic (db/db) mice had elevated nuclear localization of ATF4 and PDE4D expression, accompanied by impaired β-cell function. Accordingly, pharmacological inhibition of the ATF4 pathway attenuated PDE4D expression in the islets and promoted incretin-simulated glucose tolerance and insulin secretion in db/db mice. Finally, we found that inhibiting PDE4 activity with selective pharmacological inhibitors improved β-cell function in both db/db mice and β-cell-specific ATF4 transgenic mice. In summary, our results indicate that ER stress causes β-cell failure via ATF4-mediated PDE4D production, suggesting the ATF4-PDE4D pathway could be a therapeutic target for protecting β-cell function during the progression of T2D.NEW & NOTEWORTHY Endoplasmic reticulum stress has been implied to cause multiple β-cell pathologies during the progression of type 2 diabetes (T2D). However, the precise molecular events underlying this remain unknown. Here, we discovered that elevated ATF4 activity, which was seen in T2D β cells, attenuated β-cell proliferation and impaired insulin secretion via PDE4D-mediated downregulation of cAMP signaling. Additionally, we demonstrated that pharmacological inhibition of the ATF4 pathway or PDE4D activity alleviated β-cell dysfunction, suggesting its therapeutic usefulness against T2D.
Insights
Endoplasmic reticulum stress impairs pancreatic beta-cell function in type 2 diabetes (T2D) via the PERK-ATF4 pathway. This study reveals ATF4 upregulates PDE4D, reducing cAMP signaling and leading to beta-cell failure, a targetable pathway for T2D therapeutics.
Area of Science:
- Endocrinology and Metabolism
- Cellular and Molecular Biology
- Diabetes Research
Background:
- Pancreatic beta-cell dysfunction and loss are central to type 2 diabetes (T2D) progression.
- Endoplasmic reticulum (ER) stress, particularly via the PERK-ATF4 pathway, is implicated in beta-cell pathology.
- The precise molecular mechanisms linking ER stress to beta-cell dysfunction remain incompletely understood.
Purpose of the Study:
- To elucidate the molecular events by which the PERK-ATF4 pathway mediates beta-cell dysfunction.
- To investigate the role of ATF4 in regulating phosphodiesterase 4D (PDE4D) expression and cAMP signaling.
- To evaluate the therapeutic potential of targeting the ATF4-PDE4D pathway in T2D.
Main Methods:
- Generated beta-cell-specific transgenic mice overexpressing ATF4.
- Utilized leptin receptor-deficient (db/db) mice models of T2D.
- Employed pharmacological inhibition of the ATF4 pathway and PDE4 activity.
- Assessed beta-cell function, insulin secretion, and cAMP signaling.
Main Results:
- Overexpression of ATF4 in beta-cells mimicked accelerated T2D phenotypes, including dysfunction and loss.
- ATF4, not CHOP, directly promoted PDE4D expression, leading to reduced cAMP signaling and impaired incretin/glucose responses.
- Diabetic db/db mice exhibited elevated nuclear ATF4 and PDE4D expression, correlating with impaired beta-cell function.
- Pharmacological inhibition of ATF4 or PDE4 improved glucose tolerance and insulin secretion in db/db and ATF4 transgenic mice.
Conclusions:
- ER stress contributes to beta-cell failure in T2D through ATF4-mediated upregulation of PDE4D.
- The ATF4-PDE4D axis disrupts beta-cell function by downregulating cAMP signaling.
- Targeting the ATF4-PDE4D pathway represents a promising therapeutic strategy for preserving beta-cell function in T2D.
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