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Deregulated Protein Kinases: Friend and Foe in Ischemic Stroke
Sandeep Appunni1, Deepika Gupta2, Muni Rubens3
1Department of Biochemistry, Government Medical College, Kozhikode, Kerala, India.
Abstract:
Ischemic stroke is the third leading cause of mortality worldwide, but its medical management is still limited to the use of thrombolytics as a lifesaving option. Multiple molecular deregulations of the protein kinase family occur during the period of ischemia/reperfusion. However, experimental studies have shown that alterations in the expression of essential protein kinases and their pharmacological modulation can modify the neuropathological milieu and hasten neurophysiological recovery. This review highlights the role of key protein kinase members and their implications in the evolution of stroke pathophysiology. Activation of ROCK-, MAPK-, and GSK-3β-mediated pathways following neuronal ischemia/reperfusion injury in experimental conditions aggravate the neuropathology and delays recovery. Targeting ROCK, MAPK, and GSK-3β will potentially enhance myelin regeneration, improve blood-brain barrier (BBB) function, and suppress inflammation, which ameliorates neuronal survival. Conversely, protein kinases such as PKA, Akt, PKCα, PKCε, Trk, and PERK salvage neurons post-ischemia by mechanisms including enhanced toxin metabolism, restoring BBB integrity, neurotrophic effects, and apoptosis suppression. Certain protein kinases such as ERK1/2, JNK, and AMPK have favourable and unfavourable effects in salvaging ischemia-injured neurons. Targeting multiple protein kinase-mediated pathways simultaneously may improve neuronal recovery post-ischemia.
Insights
Protein kinases play a crucial role in stroke recovery. Targeting specific pathways like ROCK, MAPK, and GSK-3β may improve outcomes, while others like PKA and Akt offer neuroprotection.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Ischemic stroke is a leading cause of death with limited treatment options.
- Protein kinase deregulation is a key feature of ischemia/reperfusion injury.
- Modulating protein kinases can impact neuropathology and recovery.
Purpose of the Study:
- To review the role of protein kinases in stroke pathophysiology.
- To highlight therapeutic targets for enhancing neurophysiological recovery post-stroke.
Main Methods:
- Literature review of experimental studies on protein kinases in ischemic stroke.
- Analysis of signaling pathways implicated in neuronal injury and survival.
Main Results:
- ROCK, MAPK, and GSK-3β activation worsen stroke outcomes.
- Targeting these kinases may promote myelin regeneration, BBB function, and reduce inflammation.
- PKA, Akt, PKC, Trk, and PERK show neuroprotective effects.
- ERK1/2, JNK, and AMPK have dual roles.
Conclusions:
- Targeting specific protein kinases offers potential therapeutic strategies for ischemic stroke.
- Simultaneous modulation of multiple kinase pathways may optimize neuronal recovery.
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