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Published on: July 27, 2013
Role of c-Abl-GSK3β Signaling in MPP+-Induced Autophagy-Lysosomal Dysfunction
Yixian Ren1, Jialong Chen1, Xian Wu1
1Department of Occupational Health and Occupational Medicine, School of Public Health, Southern Medical University, Guangzhou, Guangdong Province 510515, China.
Abstract:
Impairment in autophagy-lysosomal pathway (ALP) results in accumulation of misfolded proteins and dysfunctional organelles, which is the hallmark of neurodegenerative diseases including Parkinson's disease (PD). Recent studies revealed activated nonreceptor tyrosine kinase Abelson (c-Abl) in PD models and brain specimen of PD patients. Inhibition of c-Abl through pharmacological inhibitors has been shown to enhance ALP function and provide neuroprotective effects in cells and animal models of PD. However, the molecular mechanisms of neuroprotective effects underlying c-Abl inhibition remain elusive. In this study, STI-571, a c-Abl inhibitor, rescued the ALP function through facilitating the nuclear translocation of TFEB and protected against MPP+-induced neuronal cell death. Furthermore, siRNA-mediated knock-down or pharmacological inhibition of GSK3β mitigated the MPP+-induced neuronal cell death, which was achieved through promoting TFEB nuclear localization and subsequently reversing the function of ALP. Intriguingly, either DPH, c-Abl activator, or MPP+ led to the activation of GSK3β, which is a negative regulator of TFEB. In addition, c-Abl directly interacted with GSK3β and catalyzed its phosphorylation at tyrosine 216, and their interaction was enhanced under MPP+ treatment. In contrast, STI-571 abrogated phosphorylation of GSK3β-Tyr216 induced by MPP+ in SN4741 cells and in primary midbrain neurons. Taken together, these results demonstrate that GSK3β is a novel c-Abl substrate, and c-Abl-GSk3β pathway mediates MPP+-induced ALP defects and neuronal cell death, which may represent a potential therapeutic target for PD.
Insights
Inhibition of c-Abl kinase enhances the autophagy-lysosomal pathway (ALP) and protects neurons in Parkinson's disease (PD) models. The study reveals a novel c-Abl-GSK3β pathway crucial for neuroprotection.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Impaired autophagy-lysosomal pathway (ALP) is linked to neurodegenerative diseases like Parkinson's disease (PD).
- Activated nonreceptor tyrosine kinase Abelson (c-Abl) is observed in PD models and patients.
- The precise mechanisms of c-Abl inhibition's neuroprotective effects remain unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms by which c-Abl inhibition confers neuroprotection in Parkinson's disease.
- To investigate the role of the c-Abl-GSK3β pathway in ALP function and neuronal cell death.
Main Methods:
- Utilized STI-571 (c-Abl inhibitor) and siRNA to modulate c-Abl and GSK3β.
- Assessed ALP function, TFEB nuclear translocation, and neuronal cell death.
- Examined the interaction and phosphorylation of c-Abl and GSK3β using cell and primary neuron models.
Main Results:
- STI-571 treatment rescued ALP function by promoting TFEB nuclear translocation and protected against MPP+-induced neuronal death.
- GSK3β inhibition also promoted TFEB nuclear localization and reversed ALP dysfunction.
- c-Abl directly phosphorylated GSK3β at Tyr216, and this interaction was enhanced by MPP+ but abrogated by STI-571.
Conclusions:
- GSK3β is identified as a novel substrate of c-Abl.
- The c-Abl-GSK3β pathway mediates MPP+-induced ALP defects and neuronal cell death in Parkinson's disease.
- This pathway presents a potential therapeutic target for Parkinson's disease treatment.
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