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Updated: Aug 20, 2026

Modeling Neuronal Death and Degeneration in Mouse Primary Cerebellar Granule Neurons
Published on: November 6, 2017
Caspase-dependent and -independent neuronal death: two distinct pathways to neuronal injury
1Department of Neurology and Pathology, Columbia University, USA. ls76@columbia.edu
Abstract:
Caspases are cysteine proteases that mediate apoptotic death in a variety of cellular systems, including neurons. Caspases are activated through extrinsic or intrinsic pathways. The latter is used by most neurons in most situations. In this pathway, release of mitochondrial cytochrome c into the cytoplasm induces formation of the apoptosome, which leads to the activation of caspase 9 and subsequently other caspases. Recent data demonstrate that when caspase activation is inhibited at or downstream of the apoptosome, neurons undergo a delayed, caspase-independent death. Furthermore, there are instances, most notably following excitotoxic injury and calcium overload, in which the direct cell death pathway elicited differs from classical apoptosis. The molecular and biochemical features of such caspase-independent, nonapoptotic forms of neuronal death are just beginning to be elucidated, but alterations at the level of the mitochondria and noncaspase proteases play significant roles. Mitochondrial alterations in caspase-independent death may include energy depletion, generation of free radicals, opening of the permeability transition pore, and release of cytotoxic proteins, such as apoptosis-inducing factor. The particular mechanisms employed can be context dependent. In disease states, in which a combination of apoptotic and nonapoptotic death occurs, therapeutic strategies need to take into account both caspase-dependent and -independent pathways.
Insights
Neurons can die through caspase-dependent apoptosis or caspase-independent pathways. Understanding these distinct neuronal death mechanisms is crucial for developing effective therapeutic strategies.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Caspases are key proteases mediating programmed cell death (apoptosis) in neurons.
- Neuronal apoptosis is typically initiated via intrinsic or extrinsic pathways, with the intrinsic pathway involving mitochondrial cytochrome c release and apoptosome formation.
Purpose of the Study:
- To explore the mechanisms of caspase-independent neuronal death.
- To differentiate caspase-independent death from classical apoptosis, particularly in conditions like excitotoxicity and calcium overload.
Main Methods:
- Review of recent data on neuronal death pathways.
- Analysis of molecular and biochemical alterations in caspase-independent death.
Main Results:
- Inhibition of caspase activation at or downstream of the apoptosome leads to delayed, caspase-independent neuronal death.
- Caspase-independent neuronal death involves mitochondrial alterations (e.g., energy depletion, free radical generation, permeability transition pore opening, apoptosis-inducing factor release) and non-caspase proteases.
Conclusions:
- Neuronal death can occur via both caspase-dependent (apoptotic) and caspase-independent pathways.
- Mitochondrial dysfunction and non-caspase proteases are critical in caspase-independent neuronal death.
- Therapeutic strategies for neurological diseases must consider both death pathways.
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