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Phosphoinositide-3-kinase/akt survival signal pathways are implicated in neuronal survival after stroke
Heng Zhao1, Robert M Sapolsky, Gary K Steinberg
1Departments of Neurosurgery and Stanford Stroke Center, Stanford University, Stanford, CA, USA. hzhao@stanford.ed
Abstract:
In recent years, the phosphoinositide-3-kinase/Akt cell survival signaling pathway has been increasingly researched in the field of stroke. Akt activity is suggested to be upregulated by phosphorylation through the activation of receptor tyrosine kinases by growth factors. Although the upstream signaling components phosphoinositide-dependent protein kinase (PDK)1 and integrinlinked kinase enhance the activity of Akt, phosphatase and tensin homolog deleted on chromosome 10 (PTEN) decreases it. Upon activation, Akt phosphorylates an array of molecules, including glycogen synthase kinase3beta (GSK3beta), forkhead homolog in rhabdomyosarcoma (FKHR), and Bcl-2-associated death protein, thereby blocking mitochondrial cytochrome c release and caspase activity. Generally, the level of Akt phosphorylation at site Ser 473 (P-Akt) transiently increases after focal ischemia, whereas the levels of phosphorylation of PTEN, PDK1, forkhead transcription factor, and GSK3beta decrease. Numerous compounds (such as growth factors, estrogen, free radical scavengers, and other neuroprotectants) reduce ischemic damage, possibly by upregulating P-Akt. However, preconditioning and hypothermia block ischemic damage by inhibiting an increase of P-Akt. Inhibition of the Akt pathway blocks the protective effect of preconditioning and hypothermia, suggesting the Akt pathway contributes to their protective effects and that the P-Akt level does not represent its true kinase activity. Together, attenuation of the Akt pathway dysfunction contributes to neuronal survival after stroke.
Insights
The phosphoinositide-3-kinase/Akt pathway is crucial for neuronal survival after stroke. Its modulation by various factors influences outcomes, highlighting its therapeutic potential in stroke treatment.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- The phosphoinositide-3-kinase/Akt signaling pathway regulates cell survival and is implicated in stroke pathophysiology.
- Key components include PDK1 and integrin-linked kinase (enhancers) and PTEN (inhibitor).
- Akt activation leads to phosphorylation of targets like GSK3beta and FKHR, inhibiting apoptosis.
Purpose of the Study:
- To review the role of the Akt pathway in stroke.
- To explore upstream and downstream signaling mechanisms.
- To discuss the impact of various interventions on Akt activity and stroke outcomes.
Main Methods:
- Literature review of studies on Akt signaling in stroke.
- Analysis of molecular mechanisms regulating Akt activity (phosphorylation, upstream/downstream effectors).
- Examination of the effects of neuroprotective agents, preconditioning, and hypothermia on Akt pathway.
Main Results:
- Akt phosphorylation (P-Akt) typically increases post-ischemia but decreases with preconditioning and hypothermia.
- PTEN, PDK1, and GSK3beta phosphorylation levels generally decrease after focal ischemia.
- Interventions like growth factors may upregulate P-Akt, while preconditioning/hypothermia inhibit its increase, yet still rely on the Akt pathway for protection.
Conclusions:
- The Akt pathway plays a complex role in neuronal survival after stroke.
- While P-Akt levels can be misleading, the pathway's integrity is vital for neuroprotection.
- Targeting Akt pathway dysfunction offers potential therapeutic strategies for stroke recovery.
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