| Literature DB >> 34805365 |
Jing-Jing Zhang1,2, Jing Du3, Ni Kong2, Guang-Yu Zhang2, Meng-Zhen Liu2, Chong Liu2.
Abstract
OBJECTIVE: We aimed at comprehensively analyzing ferroptosis regulation and its potential role in the treatment of associated diseases.Entities:
Keywords: Ferroptosis; glutathione peroxidase; iron accumulation; lipid peroxidation
Year: 2021 PMID: 34805365 PMCID: PMC8573439 DOI: 10.21037/atm-21-1595
Source DB: PubMed Journal: Ann Transl Med ISSN: 2305-5839
The common inducers of ferroptosis
| Inducers | Mechanisms | References |
|---|---|---|
| Erastin | Inhibit system Xc- | ( |
| Sorafenib | Inhibit system Xc- | ( |
| Sulfasalazine | Inhibit system Xc- | ( |
| CD8+ T cells | Inhibit system Xc- | ( |
| RSL3 | Inhibit GPX4 | ( |
| ML162, ML210 | Inhibit GPX4 | ( |
| DPI7, DPI10 | Inhibit GPX4 | ( |
| Artemisinin derivatives | Inhibit GPX4 | ( |
| FIN56 | Inhibit GPX4 | ( |
| FINO2 | Iron oxidation and inactivate GPX4 inactivate GPX4 | ( |
| BSO, Ace | Reduce GSH level | ( |
| Siramesine, Lapatinib | Increase of accumulation of iron | ( |
| Neutrophils | Increase lipid-based ROS | ( |
RSL3, (1S,3R)-RSL-3; FIN, ferroptosis inducing compound; BSO, L-buthionine sulfoximine; Ace, acetaminophen; GSH, glutathione; system Xc-, cystine-glutamate transporter receptor; GPX4, glutathione peroxidase 4; ROS, reactive oxygen species.
The common inhibitors of ferroptosis
| Inhibitors | Mechanisms | References |
|---|---|---|
| Fer-1 | Inhibit lipid peroxidation | ( |
| Liproxstatin-1 | Inhibit lipid peroxidation | ( |
| SRS11–9, SRS16–86 | Inhibit lipid peroxidation | ( |
| Vitamin E | Inhibit lipid peroxidation | ( |
| Phenoxazin | Inhibit lipid peroxidation | ( |
| Nitroxide-based compounds | Inhibit lipid peroxidation | ( |
| DFO | Inhibit accumulation of iron | ( |
| Deferoxamine mesylate | Inhibit accumulation of iron | ( |
| 2,2’-pyridine | Inhibit accumulation of iron | ( |
| Compound 968 | Glutaminase inhibitor | ( |
| Amino-oxyacetic acid | Glutaminase inhibitor | ( |
| Rosiglitazone | ACSL4 inhibitor | ( |
| Allosteric GPX4 activators | Increases GPX4 activity | ( |
Fer-1, Ferrostatin-1; DFO, deferoxamine; GPX4, glutathione peroxidase 4; ACSL4, acyl-CoA synthetase long-chain family member 4.
Figure 1Schematic illustration ferroptosis pathways. Regulatory mechanisms of ferroptosis are divided into three categories. The first pathway regulates iron metabolism, including Iron metabolic pathway, ATG5-ATG7-NCOA4 pathway, and P62-Keap1-NRF2 pathway. Second, it is regulated by the GSH/GPX4 pathway, including P53 pathway, System Xc-/GPX4 pathway, and Glutamine metabolic pathway. Third, it is associated with lipid metabolism, including Lipid metabolic pathway. In addition, Erastin acts on the mitochondria to induce ferroptosis. The FSP1-CoQ10-NAD(P)H and BH4-DHFR pathways exist as independent parallel systems, which cooperates with GPX4 and glutathione to inhibit phospholipid peroxidation and ferroptosis. MVA, mevalonate; GPX4, glutathione peroxidase 4; FSP1, ferroptosis suppressor protein 1; SAT1, spermine N1-acetyltransfersae 1; CDKN1A, cyclin-dependent kinase inhibitor 1A/P21; TF, transferrin; TFR1, transferrin receptor 1; DMT1, divalent metal ion transporter 1; ZIP8/14, zinc-iron regulatory protein family 8/14; HSPB1, Heat shock protein β-1; IREB2, iron response element-binding protein 2; HO-1, Heme oxygenase-1; FPN, Ferroportin; PUFAs, Polyunsaturated fatty acids; ACSL4, Acyl-CoA synthetase long-chain family member 4; LPCAT3, phospholipid choline acyltransferase 3; LOX, lipoxygenase; PE, phosphatidylethanolamine; NCOA4, Nuclear receptor coactivator 4; NRF2, nuclear factor erythroid 2-related factor 2; VDAC, Voltage-dependent anion channel; GCH1, cyclohydrolase-1; BH4, tetrahydrobiopterin; Gln, L-glutamine; Glu, L-glutamate.