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Acute Brain Trauma in Mice Followed By Longitudinal Two-photon Imaging
Published on: April 6, 2014
Involvement of aberrant cyclin-dependent kinase 5/p25 activity in experimental traumatic brain injury
Mohammad A Yousuf1, Chunfeng Tan1, Melissa I Torres-Altoro1
1Department of Psychiatry, The University of Texas Southwestern Medical Center, Dallas, Texas, USA.
Abstract:
Traumatic brain injury (TBI) is associated with adverse effects on brain functions, including sensation, language, emotions and/or cognition. Therapies for improving outcomes following TBI are limited. A better understanding of the pathophysiological mechanisms of TBI may suggest novel treatment strategies to facilitate recovery and improve treatment outcome. Aberrant activation of cyclin-dependent kinase 5 (Cdk5) has been implicated in neuronal injury and neurodegeneration. Cdk5 is a neuronal protein kinase activated via interaction with its cofactor p35 that regulates numerous neuronal functions, including synaptic remodeling and cognition. However, conversion of p35 to p25 via Ca(2+) -dependent activation of calpain results in an aberrantly active Cdk5/p25 complex that is associated with neuronal damage and cell death. Here, we show that mice subjected to controlled cortical impact (CCI), a well-established experimental TBI model, exhibit increased p25 levels and consistently elevated Cdk5-dependent phosphorylation of microtubule-associated protein tau and retinoblastoma (Rb) protein in hippocampal lysates. Moreover, CCI-induced neuroinflammation as indicated by increased astrocytic activation and number of reactive microglia. Brain-wide conditional Cdk5 knockout mice (Cdk5 cKO) subjected to CCI exhibited significantly reduced edema, ventricular dilation, and injury area. Finally, neurophysiological recordings revealed that CCI attenuated excitatory post-synaptic potential field responses in the hippocampal CA3-CA1 pathway 24 h after injury. This neurophysiological deficit was attenuated in Cdk5 cKO mice. Thus, TBI induces increased levels of p25 generation and aberrant Cdk5 activity, which contributes to pathophysiological processes underlying TBI progression. Hence, selectively preventing aberrant Cdk5 activity may be an effective acute strategy to improve recovery from TBI. Traumatic brain injury (TBI) increases astrogliosis and microglial activation. Moreover, TBI deregulates Ca(2+) -homeostasis triggering p25 production. The protein kinase Cdk5 is aberrantly activated by p25 leading to phosphorylation of substrates including tau and Rb protein. Loss of Cdk5 attenuates TBI lesion size, indicating that Cdk5 is a critical player in TBI pathogenesis and thus may be a suitable therapeutic target for TBI.
Insights
Traumatic brain injury (TBI) increases the damaging Cdk5/p25 complex, leading to neuroinflammation and cognitive deficits. Inhibiting aberrant Cdk5 activity may improve TBI recovery.
Area of Science:
- Neuroscience
- Cell Biology
- Pathophysiology
Background:
- Traumatic brain injury (TBI) impairs brain functions and has limited therapeutic options.
- Aberrant activation of cyclin-dependent kinase 5 (Cdk5) is linked to neuronal injury and neurodegeneration.
- The conversion of p35 to p25 generates a hyperactive Cdk5/p25 complex implicated in neuronal damage.
Purpose of the Study:
- To investigate the role of aberrant Cdk5 activity in TBI pathogenesis.
- To explore Cdk5 as a potential therapeutic target for TBI.
Main Methods:
- Controlled cortical impact (CCI) model of TBI in mice.
- Analysis of p25 levels, Cdk5-dependent phosphorylation of tau and Rb protein.
- Assessment of neuroinflammation (astrogliosis, microglial activation).
- Evaluation of brain edema, ventricular dilation, and injury area in Cdk5 conditional knockout (cKO) mice.
- Neurophysiological recordings of hippocampal CA3-CA1 pathway responses.
Main Results:
- CCI increased p25 levels and Cdk5 activity in mouse hippocampus.
- CCI induced neuroinflammation, edema, and neuronal damage.
- Cdk5 cKO mice subjected to CCI showed reduced injury and neuroinflammation.
- CCI impaired hippocampal synaptic function, an effect attenuated in Cdk5 cKO mice.
Conclusions:
- TBI triggers p25 production and aberrant Cdk5 activation, contributing to TBI pathology.
- Cdk5 plays a critical role in TBI progression and associated neuroinflammation.
- Targeting aberrant Cdk5 activity presents a promising therapeutic strategy for acute TBI treatment.

