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Role of mTORC1 Controlling Proteostasis after Brain Ischemia
Maria J Perez-Alvarez1,2,3, Mario Villa Gonzalez1,2, Irene Benito-Cuesta1,3
1Centro de Biología Molecular Severo Ochoa, CSIC-UAM, Madrid, Spain.
Abstract:
Intense efforts are being undertaken to understand the pathophysiological mechanisms triggered after brain ischemia and to develop effective pharmacological treatments. However, the underlying molecular mechanisms are complex and not completely understood. One of the main problems is the fact that the ischemic damage is time-dependent and ranges from negligible to massive, involving different cell types such as neurons, astrocytes, microglia, endothelial cells, and some blood-derived cells (neutrophils, lymphocytes, etc.). Thus, approaching such a complicated cellular response generates a more complex combination of molecular mechanisms, in which cell death, cellular damage, stress and repair are intermixed. For this reason, animal and cellular model systems are needed in order to dissect and clarify which molecular mechanisms have to be promoted and/or blocked. Brain ischemia may be analyzed from two different perspectives: that of oxygen deprivation (hypoxic damage per se) and that of deprivation of glucose/serum factors. For investigations of ischemic stroke, middle cerebral artery occlusion (MCAO) is the preferred in vivo model, and uses two different approaches: transient (tMCAO), where reperfusion is permitted; or permanent (pMCAO). As a complement to this model, many laboratories expose different primary cortical neuron or neuronal cell lines to oxygen-glucose deprivation (OGD). This ex vivo model permits the analysis of the impact of hypoxic damage and the specific response of different cell types implicated in vivo, such as neurons, glia or endothelial cells. Using in vivo and neuronal OGD models, it was recently established that mTORC1 (mammalian Target of Rapamycin Complex-1), a protein complex downstream of PI3K-Akt pathway, is one of the players deregulated after ischemia and OGD. In addition, neuroprotective intervention either by estradiol or by specific AT2R agonists shows an important regulatory role for the mTORC1 activity, for instance regulating vascular endothelial growth factor (VEGF) levels. This evidence highlights the importance of understanding the role of mTORC1 in neuronal death/survival processes, as it could be a potential therapeutic target. This review summarizes the state-of-the-art of the complex kinase mTORC1 focusing in upstream and downstream pathways, their role in central nervous system and their relationship with autophagy, apoptosis and neuroprotection/neurodegeneration after ischemia/hypoxia.
Insights
Understanding the mammalian Target of Rapamycin Complex-1 (mTORC1) is crucial for developing new treatments for brain ischemia. This protein kinase plays a key role in neuronal survival and death following ischemic events.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Brain ischemia triggers complex, time-dependent cellular responses involving multiple cell types.
- Understanding the molecular mechanisms of ischemic damage is essential for developing effective treatments.
- Current models include in vivo middle cerebral artery occlusion (MCAO) and ex vivo oxygen-glucose deprivation (OGD).
Purpose of the Study:
- To review the role of mammalian Target of Rapamycin Complex-1 (mTORC1) in the central nervous system after ischemia/hypoxia.
- To elucidate the upstream and downstream pathways of mTORC1 relevant to neuroprotection and neurodegeneration.
- To explore mTORC1's relationship with autophagy and apoptosis in the context of brain ischemia.
Main Methods:
- Review of existing literature on mTORC1 signaling in brain ischemia.
- Analysis of data from in vivo MCAO and ex vivo OGD models.
- Examination of neuroprotective interventions and their effects on mTORC1 activity.
Main Results:
- mTORC1 is deregulated following ischemia and OGD, impacting neuronal survival/death.
- Neuroprotective agents like estradiol and AT2R agonists modulate mTORC1 activity.
- mTORC1 influences vascular endothelial growth factor (VEGF) levels, relevant to ischemia.
Conclusions:
- mTORC1 is a critical mediator in neuronal responses to ischemia/hypoxia.
- Targeting mTORC1 pathways offers potential therapeutic strategies for stroke and other ischemic brain injuries.
- Further research into mTORC1's role in autophagy and apoptosis is warranted for neuroprotection.
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