Pin1 inhibition activates cyclin D and produces neurodegenerative pathology
Kutay Deniz Atabay1, Arzu Karabay
1Molecular Biology and Genetics Department, Istanbul Technical University, Ayazağa Kampüsü, Maslak, Istanbul/Turkey.
Abstract:
Abnormal cell cycle events are increasingly becoming important attributes of neurodegenerative pathology. Pin1 is a crucial target of neurodegeneration in relation to its functions regarding these abnormal cell cycle events in neurons. Pin1 is majorly involved in many aspects of cell cycle regulation and it has also been suggested to have a neuroprotective function against neurodegenerative pathologies. Oxidative dysregulation of Pin1 affects not only normal tau regulation, eventually causing tangle formation, but also cell cycle regulation in neurons. Presence of cell cycle proteins has been shown in many neurodegenerative diseases. Importantly, many of these proteins have physical interactions with Pin1. Hence, understanding Pin1's role in abnormal cell cycle re-entry is critical in terms of finding new approaches for the future therapeutic options treating neurodegenerative pathologies. Here, we show that inhibition of Pin1 by its selective inhibitor juglone leads to up-regulation of cyclinD1, phospho-tau, and caspase 3, producing apoptosis in cultured rat hippocampal neurons. We also observed axonal retraction with a change in sub-cellular localizations of cyclins. Therefore, Pin1 dysregulation, in relation to its role in cell cycle regulation in neurons, may have profound effects in the progression of neurodegenerative pathology, making it a possible crucial target behind many neurodegenerative diseases.
Insights
Pin1 inhibition in neurons triggers cell cycle abnormalities, apoptosis, and axonal damage. This highlights Pin1
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Abnormal cell cycle events are hallmarks of neurodegenerative diseases.
- Pin1 (Peptidyl-prolyl cis-trans isomerase) plays a role in cell cycle regulation and neuroprotection.
- Oxidative stress can dysregulate Pin1, impacting tau regulation and neuronal cell cycle control.
Purpose of the Study:
- To investigate the role of Pin1 in neuronal cell cycle regulation.
- To determine the effects of Pin1 inhibition on neuronal apoptosis and morphology.
- To explore Pin1 as a potential therapeutic target for neurodegenerative pathologies.
Main Methods:
- Utilized juglone, a selective Pin1 inhibitor.
- Cultured rat hippocampal neurons.
- Assessed levels of cyclin D1, phospho-tau, and caspase 3.
- Observed changes in axonal morphology and protein localization.
Main Results:
- Pin1 inhibition by juglone upregulated cyclin D1, phospho-tau, and caspase 3.
- Induced apoptosis in cultured rat hippocampal neurons.
- Caused axonal retraction and altered subcellular localization of cyclins.
Conclusions:
- Pin1 dysregulation contributes to neurodegenerative pathology progression.
- Pin1's role in neuronal cell cycle control is critical.
- Pin1 inhibition exacerbates neurotoxic events, suggesting its importance as a therapeutic target.
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