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Use of a Piglet Model for the Study of Anesthetic-induced Developmental Neurotoxicity (AIDN): A Translational Neuroscience Approach
Published on: June 11, 2017
Inhibition of aberrant cyclin-dependent kinase 5 activity attenuates isoflurane neurotoxicity in the developing brain
Wen-Yuan Wang1, Yan Luo2, Li-Jie Jia2
1Department of Anesthesiology, Zhejiang Provincial People's Hospital, Shangtang Road 158, Hangzhou 310014, China.
Abstract:
Aberrant CDK5 activity is implicated in a number of neurodegenerative disorders. Isoflurane exposure leads to neuronal apoptosis, and subsequent learning and memory defects in the developing brain. The present study was designed to examine whether and how CDK5 activity plays a role in developmental isoflurane neurotoxicity. Rat pups and hippocampal neuronal cultures were exposed to 1.5% isoflurane for 4 h. The protein and mRNA levels of CDK5, p35 and p25 were detected by western blot and QReal-Time PCR. CDK5 activity was evaluated in vitro using Histone H1 as a substrate. Roscovitine (an inhibitor of CDK5) was applied before isoflurane treatment, cleaved Caspase-3, Bcl-2, Bax, MEF2 and phospho-MEF2A-Ser-408 expressions were determined. Dominant-Negative CDK5 was transfected before isoflurane treatment. Neuronal apoptosis was evaluated by Flow cytometry (FCM) and TUNEL-staining. Cognitive functions were assessed by Morris water maze. We found that isoflurane treatment led to an aberrant CDK5 activation due to its activator p25 that was cleaved from p35 by calpain. Inhibition of CDK5 activity with Roscovitine enhanced Bcl-2, and decreased cleaved Caspase-3 and Bax expressions. In addition, isoflurane exposure resulted in a decrease of MEF2 and increase of phospho-MEF2A-Ser-408, which were rescued by Roscovitine or Dominant-Negative CDK5 transfection. Dominant-Negative CDK5 transfection also decreased the percentage of TUNEL-positive cells in isoflurane neurotoxicity. Moreover, Roscovitine remarkably alleviated the learning and memory deficits induced by postnatal isoflurane exposure. These results indicated that aberrant CDK5 activity-dependent MEF2 phosphorylation mediates developmental isoflurane neurotoxicity. Inhibition of CDK5 overactivation contributes to the relief of isoflurane neurotoxicity in the developing brain.
Insights
Aberrant CDK5 activation contributes to isoflurane-induced neurotoxicity in developing brains. Inhibiting CDK5 activity protects against neuronal apoptosis and cognitive deficits.
Area of Science:
- Neuroscience
- Developmental Biology
- Pharmacology
Background:
- Aberrant Cyclin-Dependent Kinase 5 (CDK5) activity is linked to neurodegenerative diseases.
- Isoflurane anesthesia can cause neuronal apoptosis and cognitive impairment in developing brains.
Purpose of the Study:
- To investigate the role of CDK5 activity in isoflurane-induced neurotoxicity during brain development.
- To determine if inhibiting CDK5 can mitigate isoflurane's adverse effects on neuronal survival and cognitive function.
Main Methods:
- Exposed rat pups and hippocampal neuronal cultures to isoflurane.
- Assessed CDK5, p35, and p25 levels and CDK5 activity.
- Utilized Roscovitine (CDK5 inhibitor) and Dominant-Negative CDK5 transfection.
- Evaluated neuronal apoptosis (Flow cytometry, TUNEL), gene expression (Western blot, QReal-Time PCR), and cognitive function (Morris water maze).
Main Results:
- Isoflurane increased CDK5 activation via p25 cleavage.
- CDK5 inhibition (Roscovitine) reduced apoptosis markers (cleaved Caspase-3, Bax) and increased survival markers (Bcl-2).
- Isoflurane altered MEF2 phosphorylation (increased phospho-MEF2A-Ser-408), which was reversed by CDK5 inhibition.
- CDK5 inhibition ameliorated isoflurane-induced learning and memory deficits.
Conclusions:
- Aberrant CDK5 activity, specifically MEF2 phosphorylation, mediates developmental neurotoxicity from isoflurane exposure.
- Inhibiting CDK5 overactivation offers a potential therapeutic strategy to protect the developing brain from anesthetic-induced damage.
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