Breakdown of an Ironclad Defense System: The Critical Role of NRF2 in Mediating Ferroptosis is a research paper published in Cell chemical biology (2020). On theSindex it has a DataRank of 0.918. It has been cited 454 times.
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Base Score Contribution
0.918
From this paper's citation signal
Citation Network Contribution
0
Citation network not refreshed for this result
This paper's DataRank is currently driven only by its base citation score. Citation network data was not refreshed for this result.
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Grant: ES006694
National Institutes of Health
Grant: DK109555
National Institutes of Health
Grant: ES004940
National Institutes of Health
Grant: ES026845
National Institutes of Health
Grant: ES007091
NIEHS NIH HHS
Grant: R01 ES026845
NIEHS NIH HHS
Grant: T32 ES007091
NIEHS NIH HHS
Grant: P30 ES006694
NIDDK NIH HHS
Grant: R01 DK109555
NIEHS NIH HHS
Grant: R35 ES031575
NIEHS NIH HHS
Grant: P42 ES004940
National Institutes of Health
Grant: 3P42ES004940-14S4
HAZARDOUS WASTE RISK AND REMEDIATION IN THE SOUTHWEST
National Institutes of Health
Grant: 1R01ES026845-01
Nrf2, autophagy, and arsenic carcinogenesis
National Institutes of Health
Grant: 5T32ES007091-25
GRADUATE TRAINING PROGRAM IN TOXICOLOGY ANDF TOXICOGENOM
National Institutes of Health
Grant: 1R01DK109555-01A1
Arsenic, Nrf2 and Autophagy Dysfunction in Type II Diabetes
FWCI
22.27
Citation Percentile
1.0%
Citation Trend
Fields of Study
MeSH Terms
Keywords
Sustainable Development Goals
Additional file 1 of Fe3+-binding transferrin nanovesicles encapsulating sorafenib induce ferroptosis in hepatocellular carcinoma
Additional file 1 of Fe3+-binding transferrin nanovesicles encapsulating sorafenib induce ferroptosis in hepatocellular carcinoma
Additional file 1 of Mitochondria-derived methylmalonic acid aggravates ischemia–reperfusion injury by activating reactive oxygen species-dependent ferroptosis
Additional file 1 of Mitochondria-derived methylmalonic acid aggravates ischemia–reperfusion injury by activating reactive oxygen species-dependent ferroptosis
Additional file 2 of Mitochondria-derived methylmalonic acid aggravates ischemia–reperfusion injury by activating reactive oxygen species-dependent ferroptosis
Additional file 2 of Mitochondria-derived methylmalonic acid aggravates ischemia–reperfusion injury by activating reactive oxygen species-dependent ferroptosis
Additional file 1 of Endometrial stem cells alleviate cisplatin-induced ferroptosis of granulosa cells by regulating Nrf2 expression
Additional file 1 of Endometrial stem cells alleviate cisplatin-induced ferroptosis of granulosa cells by regulating Nrf2 expression
Additional file 1 of Puerarin ameliorates metabolic dysfunction-associated fatty liver disease by inhibiting ferroptosis and inflammation
Additional file 1 of Puerarin ameliorates metabolic dysfunction-associated fatty liver disease by inhibiting ferroptosis and inflammation
Additional file 4 of Endometrial stem cells alleviate cisplatin-induced ferroptosis of granulosa cells by regulating Nrf2 expression
Additional file 2 of Endometrial stem cells alleviate cisplatin-induced ferroptosis of granulosa cells by regulating Nrf2 expression
Additional file 3 of Endometrial stem cells alleviate cisplatin-induced ferroptosis of granulosa cells by regulating Nrf2 expression
Additional file 2 of Endometrial stem cells alleviate cisplatin-induced ferroptosis of granulosa cells by regulating Nrf2 expression
Additional file 4 of Endometrial stem cells alleviate cisplatin-induced ferroptosis of granulosa cells by regulating Nrf2 expression
Additional file 3 of Endometrial stem cells alleviate cisplatin-induced ferroptosis of granulosa cells by regulating Nrf2 expression
Additional file 1 of Machine learning for the micropeptide encoded by LINC02381 regulates ferroptosis through the glucose transporter SLC2A10 in glioblastoma
Additional file 1 of Machine learning for the micropeptide encoded by LINC02381 regulates ferroptosis through the glucose transporter SLC2A10 in glioblastoma