Ferroptosis and its potential role in the physiopathology of Parkinson’s Disease
•A better understanding of the mechanisms involved in the pathology of Parkinson’s Disease and their relationship to neuronal cell death is required for efficient neuroprotective or disease modifying therapies.•Ferroptosis is a novel regulated iron dependent cell death pathway involving a lethal acc...
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Veröffentlicht in: | Progress in neurobiology 2021-01, Vol.196, p.101890-101890, Article 101890 |
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Sprache: | eng |
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Zusammenfassung: | •A better understanding of the mechanisms involved in the pathology of Parkinson’s Disease and their relationship to neuronal cell death is required for efficient neuroprotective or disease modifying therapies.•Ferroptosis is a novel regulated iron dependent cell death pathway involving a lethal accumulation of lipid hydroperoxides.•Several features of Parkinson’s Disease physiopathology are consistent with the ferroptosis pathway.•α-synuclein is functionally linked with iron and lipid metabolisms suggesting a possible interplay between dysregulated α-synuclein and ferroptosis.
Parkinson’s Disease (PD) is a common and progressive neurodegenerative disorder characterised by motor impairments as well as non-motor symptoms. While dopamine-based therapies are effective in fighting the symptoms in the early stages of the disease, a lack of neuroprotective drugs means that the disease continues to progress. Along with the traditionally recognised pathological hallmarks of dopaminergic neuronal death and intracellular α-synuclein (α-syn) depositions, iron accumulation, elevated oxidative stress and lipid peroxidation damage are further conspicuous features of PD pathophysiology. However, the underlying mechanisms linking these pathological hallmarks with neurodegeneration still remain unclear. Ferroptosis, a regulated iron dependent cell death pathway involving a lethal accumulation of lipid peroxides, shares several features with PD pathophysiology. Interestingly, α-syn has been functionally linked with the metabolism of both iron and lipid, suggesting a possible interplay between dysregulated α-syn and other PD pathological hallmarks related to ferroptosis. This review will address the importance for understanding these disease mechanisms that could be targeted therapeutically. Anti-ferroptosis molecules are neuroprotective in PD animal models and the anti-ferroptotic iron chelator, deferiprone, slowed disease progression and improved motor function in two independent clinical trials for PD. An ongoing larger multi-centre phase 2 clinical trial will confirm the therapeutic potential of deferiprone and the relevance of ferroptosis in PD. This review addresses the known pathological features of PD in relation to the ferroptosis pathway with therapeutic implications of targeting this cell death pathway. |
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ISSN: | 0301-0082 1873-5118 |
DOI: | 10.1016/j.pneurobio.2020.101890 |