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Updated: Jun 17, 2025

Modeling Age-Associated Neurodegenerative Diseases in Caenorhabditis elegans
Published on: August 15, 2020
Neuronal regulated cell death in aging-related neurodegenerative diseases: key pathways and therapeutic potentials
Run Song1,2, Shiyi Yin1,2, Jiannan Wu2
1Department of Neurology, The First Affiliated Hospital, College of Clinical Medicine of Henan University of Science and Technology, Luoyang, Henan Province, China.
Abstract:
Regulated cell death (such as apoptosis, necroptosis, pyroptosis, autophagy, cuproptosis, ferroptosis, disulfidptosis) involves complex signaling pathways and molecular effectors, and has been proven to be an important regulatory mechanism for regulating neuronal aging and death. However, excessive activation of regulated cell death may lead to the progression of aging-related diseases. This review summarizes recent advances in the understanding of seven forms of regulated cell death in age-related diseases. Notably, the newly identified ferroptosis and cuproptosis have been implicated in the risk of cognitive impairment and neurodegenerative diseases. These forms of cell death exacerbate disease progression by promoting inflammation, oxidative stress, and pathological protein aggregation. The review also provides an overview of key signaling pathways and crosstalk mechanisms among these regulated cell death forms, with a focus on ferroptosis, cuproptosis, and disulfidptosis. For instance, FDX1 directly induces cuproptosis by regulating copper ion valency and dihydrolipoamide S-acetyltransferase aggregation, while copper mediates glutathione peroxidase 4 degradation, enhancing ferroptosis sensitivity. Additionally, inhibiting the Xc- transport system to prevent ferroptosis can increase disulfide formation and shift the NADP + /NADPH ratio, transitioning ferroptosis to disulfidptosis. These insights help to uncover the potential connections among these novel regulated cell death forms and differentiate them from traditional regulated cell death mechanisms. In conclusion, identifying key targets and their crosstalk points among various regulated cell death pathways may aid in developing specific biomarkers to reverse the aging clock and treat age-related neurodegenerative conditions.
Insights
Regulated cell death pathways, including ferroptosis and cuproptosis, are crucial in neuronal aging. Understanding their crosstalk may reveal biomarkers for treating age-related neurodegenerative diseases.
Area of Science:
- Cell Biology
- Neuroscience
- Biochemistry
Background:
- Regulated cell death (RCD) pathways are vital in neuronal aging and death.
- Dysregulated RCD contributes to aging-related diseases.
- Seven RCD forms, including novel ferroptosis and cuproptosis, are implicated in neurodegeneration.
Purpose of the Study:
- To review recent advances in understanding seven RCD forms in age-related diseases.
- To explore signaling pathways and crosstalk among RCD forms, focusing on ferroptosis, cuproptosis, and disulfidptosis.
- To highlight potential therapeutic targets for age-related neurodegenerative conditions.
Main Methods:
- Literature review of RCD mechanisms and their role in aging.
- Analysis of signaling pathways, molecular effectors, and crosstalk between RCD forms.
- Focus on ferroptosis, cuproptosis, and disulfidptosis mechanisms and interconnections.
Main Results:
- Ferroptosis and cuproptosis are linked to cognitive impairment and neurodegenerative diseases.
- These RCD forms promote inflammation, oxidative stress, and protein aggregation.
- FDX1 induces cuproptosis; copper enhances ferroptosis; inhibiting Xc- can lead to disulfidptosis.
Conclusions:
- Novel RCD forms like ferroptosis and cuproptosis offer new insights into neurodegeneration.
- Understanding crosstalk between RCD pathways is key to differentiating them.
- Identifying RCD targets may lead to biomarkers for reversing aging and treating neurodegenerative diseases.
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