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Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
Molecular mechanisms of ferroptosis and their involvement in brain diseases
Inês Costa1, Daniel José Barbosa2, Sofia Benfeito3
1Associate Laboratory i4HB - Institute for Health and Bioeconomy, Faculty of Pharmacy, University of Porto, 4050-313 Porto, Portugal; UCIBIO - Applied Molecular Biosciences Unit, Laboratory of Toxicology, Department of Biological Sciences, Faculty of Pharmacy, University of Porto, 4050-313 Porto, Portugal.
Abstract:
Ferroptosis is a type of regulated cell death characterized by intracellular accumulation of iron and reactive oxygen species, inhibition of system Xc-, glutathione depletion, nicotinamide adenine dinucleotide phosphate oxidation and lipid peroxidation. Since its discovery and characterization in 2012, many efforts have been made to reveal the underlying mechanisms, modulating compounds, and its involvement in disease pathways. Ferroptosis inducers include erastin, sorafenib, sulfasalazine and glutamate, which, by inhibiting system Xc-, prevent the import of cysteine into the cells. RSL3, statins, Ml162 and Ml210 induce ferroptosis by inhibiting glutathione peroxidase 4 (GPX4), which is responsible for preventing the formation of lipid peroxides, and FIN56 and withaferin trigger GPX4 degradation. On the other side, ferroptosis inhibitors include ferrostatin-1, liproxstatin-1, α-tocopherol, zileuton, FSP1, CoQ10 and BH4, which interrupt the lipid peroxidation cascade. Additionally, deferoxamine, deferiprone and N-acetylcysteine, by targeting other cellular pathways, have also been classified as ferroptosis inhibitors. Increased evidence has established the involvement of ferroptosis in distinct brain diseases, including Alzheimer's, Parkinson's and Huntington's diseases, amyotrophic lateral sclerosis, multiple sclerosis, and Friedreich's ataxia. Thus, a deep understanding of how ferroptosis contributes to these diseases, and how it can be modulated, can open a new window of opportunities for novel therapeutic strategies and targets. Other studies have shown a sensitivity of cancer cells with mutated RAS to ferroptosis induction and that chemotherapeutic agents and ferroptosis inducers synergize in tumor treatment. Thus, it is tempting to consider that ferroptosis may arise as a target mechanistic pathway for the treatment of brain tumors. Therefore, this work provides an up-to-date review on the molecular and cellular mechanisms of ferroptosis and their involvement in brain diseases. In addition, information on the main ferroptosis inducers and inhibitors and their molecular targets is also provided.
Insights
Ferroptosis, a cell death process involving iron and oxidative stress, is implicated in brain diseases and cancer. Understanding its mechanisms and modulators offers new therapeutic avenues.
Area of Science:
- Cell Biology
- Biochemistry
- Neuroscience
Background:
- Ferroptosis is a regulated cell death pathway marked by iron accumulation, reactive oxygen species, and lipid peroxidation.
- Since its 2012 discovery, research has elucidated its mechanisms, inducers, inhibitors, and roles in disease.
Purpose of the Study:
- To provide an up-to-date review of ferroptosis mechanisms and its involvement in brain diseases.
- To detail ferroptosis inducers and inhibitors and their molecular targets.
Main Methods:
- Literature review of ferroptosis mechanisms, inducers, inhibitors, and disease associations.
- Synthesis of information on molecular pathways and therapeutic targets.
Main Results:
- Ferroptosis involves system Xc- inhibition, glutathione depletion, and GPX4 inhibition or degradation.
- Key inducers include erastin, RSL3, and FIN56; inhibitors include ferrostatin-1 and deferoxamine.
- Ferroptosis is linked to neurodegenerative diseases (Alzheimer's, Parkinson's) and shows promise in cancer therapy.
Conclusions:
- Ferroptosis plays a significant role in the pathogenesis of various brain diseases.
- Modulating ferroptosis presents potential therapeutic strategies for neurological disorders and cancers.
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