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Updated: Jun 27, 2025

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Published on: March 17, 2014
Metformin inhibits nerve growth factor-induced sympathetic neuron differentiation through p35/CDK5 inhibition
Muhammet Oner1, Mei-Chih Chen2, Pang-Ting Cheng1
1Department of Life Sciences, National Chung Hsing University, Taichung, Taiwan.
Abstract:
The authors' previous research has shown the pivotal roles of cyclin-dependent kinase 5 (CDK5) and its regulatory protein p35 in nerve growth factor (NGF)-induced differentiation of sympathetic neurons in PC12 cells. During the process of differentiation, neurons are susceptible to environmental influences, including the effects of drugs. Metformin is commonly used in the treatment of diabetes and its associated symptoms, particularly in diabetic neuropathy, which is characterized by dysregulation of the sympathetic neurons. However, the impacts of metformin on sympathetic neuronal differentiation remain unknown. In this study, we investigated the impact of metformin on NGF-induced sympathetic neuronal differentiation using rat pheochromocytoma PC12 cells as a model. We examined the regulation of TrkA-p35/CDK5 signaling in NGF-induced PC12 differentiation. Our results demonstrate that metformin reduces NGF-induced PC12 differentiation by inactivating the TrkA receptor, subsequently inhibiting ERK and EGR1. Inhibition of this cascade ultimately leads to the downregulation of p35/CDK5 in PC12 cells. Furthermore, metformin inhibits the activation of the presynaptic protein Synapsin-I, a substrate of CDK5, in PC12 differentiation. In addition, metformin alters axonal and synaptic bouton formation by inhibiting p35 at both the axons and axon terminals in fully differentiated PC12 cells. In summary, our study elucidates that metformin inhibits sympathetic neuronal differentiation in PC12 cells by disrupting TrkA/ERK/EGR1 and p35/CDK5 signaling. This research contributes to uncovering a novel signaling mechanism in drug response during sympathetic neuronal differentiation, enhancing our understanding of the intricate molecular processes governing this critical aspect of neurodevelopment.NEW & NOTEWORTHY This study unveils a novel mechanism influenced by metformin during sympathetic neuronal differentiation. By elucidating its inhibitory effects from the nerve growth factor (NGF) receptor, TrkA, to the p35/CDK5 signaling pathways, we advance our understanding of metformin's mechanisms of action and emphasize its potential significance in the context of drug responses during sympathetic neuronal differentiation.
Insights
Metformin inhibits nerve growth factor-induced sympathetic neuronal differentiation in PC12 cells by disrupting TrkA/ERK/EGR1 and p35/CDK5 signaling pathways, affecting axonal and synaptic development.
Area of Science:
- Neuroscience
- Cell Biology
- Pharmacology
Background:
- Cyclin-dependent kinase 5 (CDK5) and p35 are crucial for nerve growth factor (NGF)-induced sympathetic neuronal differentiation.
- Metformin is used for diabetes and diabetic neuropathy, but its effect on sympathetic neuronal differentiation is unknown.
Purpose of the Study:
- To investigate the impact of metformin on NGF-induced sympathetic neuronal differentiation in PC12 cells.
- To examine the regulation of TrkA-p35/CDK5 signaling by metformin.
Main Methods:
- Utilized rat pheochromocytoma (PC12) cells as a model system.
- Assessed NGF-induced differentiation and signaling pathways including TrkA, ERK, EGR1, p35/CDK5, and Synapsin-I.
- Examined effects on axonal and synaptic bouton formation.
Main Results:
- Metformin reduced NGF-induced PC12 cell differentiation.
- Metformin inactivated the TrkA receptor, inhibiting ERK and EGR1 signaling.
- Downregulation of p35/CDK5 and inhibition of Synapsin-I activation were observed.
- Metformin altered axonal and synaptic formation by inhibiting p35.
Conclusions:
- Metformin inhibits sympathetic neuronal differentiation by disrupting TrkA/ERK/EGR1 and p35/CDK5 signaling.
- This reveals a novel drug response mechanism during sympathetic neuronal differentiation.
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