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Updated: Jul 28, 2026

Experimental Approaches to Study Mitochondrial Localization and Function of a Nuclear Cell Cycle Kinase, Cdk1
Published on: February 25, 2016
Phosphoproteome and transcriptome analysis of the neuronal response to a CDK5 inhibitor
Frank Gillardon1, Peter Steinlein, Erich Bürger
1Boehringer Ingelheim Pharma GmbH & Co. KG, CNS Research, Biberach an der Riss, Germany. frank.gillardon@bc.boehringer-ingelheim.com
Abstract:
In Alzheimer's disease and amyotrophic lateral sclerosis deregulation of cyclin-dependent kinase 5 (CDK5) causes hyperphosphorylation of tau and neurofilament proteins, respectively, leading to neuronal cell death. We have demonstrated recently that pharmacological inhibition of CDK5 protects neurons under various stressful conditions (Weishaupt J. H., et al., Molec. Cell. Neurosci. 2003, 24, 489-502). To get an overview on the cellular mechanisms of action we analyzed global changes in protein phosphorylation in cultured cerebellar granule neurons by [(32)P]orthophosphate labeling after administration of a CDK5 inhibitor. Since CDK5 has recently been shown to phosphorylate and inactivate transcription factor MEF2, we included gene expression profiling using cDNA microarrays. By two-dimensional gel electrophoresis and matrix assisted laser desorption/ionisation-time of flight (MALDI-TOF)-mass spectrometry we identified several phosphoproteins that were modulated by compound administration. Among them syndapin I which is involved in vesicle recycling, and dynein light intermediate chain 2 which represents a regulatory subunit of the dynein protein complex. These findings are consistent with the known physiological function of CDK5 in synaptic signaling and axonal transport. Moreover, we detected phosphoproteins acting in neuronal surival and/or neurite outgrowth, such as cofilin and collapsin response mediator protein. Subsequent testing in cell cultures revealed that the CDK5 inhibitor blocked mitochondrial translocation of pro-apoptotic cofilin in cerebellar granule neurons and enhanced neurite outgrowth in dorsal root ganglia. Numerous genes exhibiting MEF2 consensus binding sequences were modulated by CDK5 inhibitor treatment. Among them some that may contribute to neurite elongation or neuronal survival, but also several genes functioning in synaptic transmission. Taken together, phosphoproteome and transcriptome analysis indicate that the compound promotes both neuronal survival and neurite outgrowth, but also may affect synaptic function in cultured neurons.
Insights
Pharmacological inhibition of cyclin-dependent kinase 5 (CDK5) protects neurons by modulating protein phosphorylation and gene expression, promoting neuronal survival and neurite outgrowth.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Deregulation of cyclin-dependent kinase 5 (CDK5) contributes to neuronal cell death in Alzheimer's disease and amyotrophic lateral sclerosis.
- Previous research demonstrated that pharmacological inhibition of CDK5 protects neurons under stress.
- CDK5 phosphorylates and inactivates the transcription factor MEF2.
Purpose of the Study:
- To investigate the cellular mechanisms underlying CDK5 inhibition-mediated neuroprotection.
- To analyze global changes in protein phosphorylation and gene expression in response to a CDK5 inhibitor.
- To identify specific phosphoproteins and genes modulated by CDK5 inhibition.
Main Methods:
- Cultured cerebellar granule neurons were treated with a CDK5 inhibitor.
- Global protein phosphorylation was analyzed using [(32)P]orthophosphate labeling.
- Gene expression profiling was performed using cDNA microarrays.
- Phosphoproteins were identified using 2D gel electrophoresis and MALDI-TOF mass spectrometry.
- Specific cellular functions were tested in cell cultures.
Main Results:
- Several phosphoproteins, including syndapin I and dynein light intermediate chain 2, were modulated by CDK5 inhibition.
- Phosphoproteins involved in neuronal survival and neurite outgrowth, such as cofilin and collapsin response mediator protein, were identified.
- CDK5 inhibition blocked mitochondrial translocation of pro-apoptotic cofilin and enhanced neurite outgrowth.
- Numerous genes with MEF2 binding sequences were modulated, including those related to neurite elongation, neuronal survival, and synaptic transmission.
Conclusions:
- CDK5 inhibition promotes neuronal survival and neurite outgrowth.
- The compound may also influence synaptic function.
- Phosphoproteome and transcriptome analyses provide insights into the cellular mechanisms of CDK5 inhibition.
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