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Targeted Neuronal Injury for the Non-Invasive Disconnection of Brain Circuitry
Published on: September 27, 2020
Redox-Related Neuronal Death and Crosstalk as Drug Targets: Focus on Epilepsy
Xiao-Yuan Mao1,2,3, Hong-Hao Zhou1,2,3, Wei-Lin Jin4,5
1Department of Clinical Pharmacology, Xiangya Hospital, Central South University, Changsha, China.
Abstract:
Cell death has a vital role in embryonic development and organismal homeostasis. Biochemical, pharmacological, behavioral, and electrophysiological evidences support the idea that dysregulation of cell death programs are involved in neuropathological conditions like epilepsy. The brain is particularly vulnerable to oxidative damage due to higher oxygen consumption and lower endogenous antioxidant defense than other bodily organ. Thus, in this review, we focused on the comprehensive summarization of evidence for redox-associated cell death pathways including apoptosis, autophagy, necroptosis, and pyroptosis in epilepsy and the oxidative stress-related signaling in this process. We specially proposed that the molecular crosstalk of various redox-linked neuronal cell death modalities might occur in seizure onset and/or epileptic conditions according to the published data. Additionally, abundance of polyunsaturated fatty acids in neuronal membrane makes the brain susceptible to lipid peroxidation. This presumption was then formalized in the proposal that ferroptosis, a novel type of lipid reactive oxygen species (ROS)-dependent regulatory cell death, is likely to be a critical mechanism for the emergence of epileptic phenotype. Targeting ferroptosis process or combination treatment with multiple cell death pathway inhibitors may shed new light on the therapy of epilepsy.
Insights
This review explores how different types of cell death, including ferroptosis, contribute to epilepsy. Targeting these pathways, especially ferroptosis, may offer new epilepsy treatments.
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Cell death is crucial for development and homeostasis.
- Dysregulated cell death programs are implicated in neuropathological conditions like epilepsy.
- The brain's high oxygen consumption and lower antioxidant capacity make it vulnerable to oxidative damage.
Purpose of the Study:
- To comprehensively summarize evidence for redox-associated cell death pathways in epilepsy.
- To explore the role of oxidative stress-related signaling in epilepsy.
- To propose ferroptosis as a critical mechanism in epilepsy development.
Main Methods:
- Review of existing biochemical, pharmacological, behavioral, and electrophysiological evidence.
- Analysis of oxidative stress-related signaling pathways.
- Examination of lipid peroxidation in neuronal membranes.
Main Results:
- Multiple redox-associated cell death pathways (apoptosis, autophagy, necroptosis, pyroptosis) are linked to epilepsy.
- Molecular crosstalk between these cell death modalities may occur during seizures.
- Ferroptosis, a lipid peroxidation-dependent cell death, is proposed as a key mechanism for epileptic phenotypes.
Conclusions:
- Targeting ferroptosis pathways could be a novel therapeutic strategy for epilepsy.
- Combination treatments inhibiting multiple cell death pathways may offer new avenues for epilepsy therapy.
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