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Updated: Nov 2, 2025

Modeling Neuronal Death and Degeneration in Mouse Primary Cerebellar Granule Neurons
Published on: November 6, 2017
Molecular mechanisms of cell death in neurological diseases
Diane Moujalled1,2, Andreas Strasser3,4, Jeffrey R Liddell5
1The Walter and Eliza Hall Institute, Parkville, VIC, Australia. dmoujalled@wehi.edu.au.
Abstract:
Tightly orchestrated programmed cell death (PCD) signalling events occur during normal neuronal development in a spatially and temporally restricted manner to establish the neural architecture and shaping the CNS. Abnormalities in PCD signalling cascades, such as apoptosis, necroptosis, pyroptosis, ferroptosis, and cell death associated with autophagy as well as in unprogrammed necrosis can be observed in the pathogenesis of various neurological diseases. These cell deaths can be activated in response to various forms of cellular stress (exerted by intracellular or extracellular stimuli) and inflammatory processes. Aberrant activation of PCD pathways is a common feature in neurodegenerative diseases, such as amyotrophic lateral sclerosis (ALS), Alzheimer's disease, Parkinson's disease, and Huntington's disease, resulting in unwanted loss of neuronal cells and function. Conversely, inactivation of PCD is thought to contribute to the development of brain cancers and to impact their response to therapy. For many neurodegenerative diseases and brain cancers current treatment strategies have only modest effect, engendering the need for investigations into the origins of these diseases. With many diseases of the brain displaying aberrations in PCD pathways, it appears that agents that can either inhibit or induce PCD may be critical components of future therapeutic strategies. The development of such therapies will have to be guided by preclinical studies in animal models that faithfully mimic the human disease. In this review, we briefly describe PCD and unprogrammed cell death processes and the roles they play in contributing to neurodegenerative diseases or tumorigenesis in the brain. We also discuss the interplay between distinct cell death signalling cascades and disease pathogenesis and describe pharmacological agents targeting key players in the cell death signalling pathways that have progressed through to clinical trials.
Insights
Programmed cell death (PCD) and necrosis are crucial in brain development and disease. Aberrant PCD contributes to neurodegeneration and brain cancers, highlighting the need for targeted therapies.
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Programmed cell death (PCD) and unprogrammed necrosis are vital for normal brain development.
- Dysregulation of PCD pathways, including apoptosis, necroptosis, pyroptosis, and ferroptosis, is implicated in neurological diseases and brain cancers.
- Cellular stress and inflammation can trigger various cell death pathways, contributing to disease pathogenesis.
Purpose of the Study:
- To review the roles of programmed cell death and unprogrammed necrosis in neurodegenerative diseases and brain tumorigenesis.
- To discuss the interplay between distinct cell death signaling cascades and disease pathogenesis.
- To explore pharmacological agents targeting cell death pathways for potential therapeutic strategies.
Main Methods:
- Literature review of programmed cell death (PCD) and unprogrammed necrosis.
- Analysis of PCD pathway involvement in neurodegenerative diseases (e.g., ALS, Alzheimer's, Parkinson's, Huntington's).
- Examination of PCD's role in brain cancer development and treatment response.
Main Results:
- Aberrant PCD contributes to neuronal loss in neurodegenerative diseases.
- Inactivation of PCD is linked to brain cancer development and therapeutic resistance.
- Targeting cell death pathways presents a promising therapeutic avenue for brain disorders.
Conclusions:
- Understanding the complex roles of PCD and necrosis in brain diseases is critical for developing effective treatments.
- Pharmacological agents targeting cell death pathways show potential for treating neurodegenerative diseases and brain cancers.
- Preclinical studies using relevant animal models are essential for guiding the development of novel therapies.
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