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Published on: November 6, 2017
Apoptosis signalling pathways in seizure-induced neuronal death and epilepsy
1Department of Physiology and Medical Physics, Royal College of Surgeons in Ireland, Dublin, Ireland. davhenshall@rcsi.ie
Abstract:
Delineating the molecular pathways underlying seizure-induced neuronal death may yield novel strategies for brain protection against prolonged or repetitive seizures. Glutamate-mediated excitotoxicity and necrosis is a primary contributing mechanism but seizures also activate programmed (apoptotic) cell death pathways. Apoptosis signalling pathways are typically initiated following perturbation of intracellular organelle function (intrinsic pathway) or by activated cell-surface-expressed death receptors (extrinsic pathway), with signalling cascades orchestrated in part by the Bcl-2 and caspase gene families. In this review, evidence for these pathways from experimental seizure modelling and clinical material from patients with intractable temporal lobe epilepsy is examined. Seizures cause mitochondrial dysfunction and activate intrinsic pathway components including pro-apoptotic Bcl-2 family proteins and caspases, processes that may be partly calcium-induced. The ER (endoplasmic reticulum) has emerged as a major intrinsic pathway trigger for apoptosis and its function may also be compromised following seizures and in epilepsy. The extrinsic, death-receptor-dependent pathway is also rapidly engaged following experimental seizures and in patient brain, supporting a previously unexpected apical role for a calcium-independent pathway. When considered alongside emerging functions of apoptosis-regulatory proteins in non-cell-death processes, including regulating intracellular calcium release and neuronal (re)structuring, apoptosis signalling pathways can be viewed as an important developing focus of research into how to obviate the deleterious impact of seizures on the brain.
Insights
Seizures trigger programmed cell death (apoptosis) via intrinsic and extrinsic pathways, involving mitochondria and endoplasmic reticulum. Understanding these molecular pathways is key to developing brain protection strategies against seizure-induced neuronal death.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Seizure-induced neuronal death contributes to brain damage.
- Glutamate excitotoxicity and necrosis are known mechanisms.
- Programmed cell death (apoptosis) pathways are also activated during seizures.
Purpose of the Study:
- To review molecular pathways of seizure-induced neuronal death.
- To examine evidence from experimental models and epilepsy patients.
- To explore potential brain protection strategies.
Main Methods:
- Review of experimental seizure modeling studies.
- Analysis of clinical material from temporal lobe epilepsy patients.
- Examination of intrinsic (mitochondrial, ER) and extrinsic (death receptor) apoptosis pathways.
Main Results:
- Seizures activate intrinsic apoptosis via mitochondrial dysfunction and endoplasmic reticulum stress.
- Pro-apoptotic Bcl-2 family proteins and caspases are implicated.
- Extrinsic apoptosis pathways are rapidly engaged, suggesting a calcium-independent role.
- Apoptosis regulators have non-cell-death functions, including calcium signaling and neuronal restructuring.
Conclusions:
- Both intrinsic and extrinsic apoptosis pathways are crucial in seizure-induced neuronal death.
- Targeting apoptosis pathways offers potential for neuroprotection.
- Emerging roles of apoptosis regulators in neuronal function warrant further investigation.
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