Mitochondrial electron transport chain: Oxidative phosphorylation, oxidant production, and methods of measurement is a research paper published in Redox Biology (2020). On theSindex it has a DataRank of 1.1. It has been cited 1,457 times.
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Base Score Contribution
1.1
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.
Learn more about DataRank methodology →American Heart Association
Grant: 19POST34380956
National Institutes of Health
Grant: RO1 HL133003-01A1
NHLBI NIH HHS
Grant: R01 HL133003
Hemophilia Center of Western Pennsylvania
FWCI
37.86
Citation Percentile
1.0%
Influential Citations
53
Citation Trend
Fields of Study
MeSH Terms
Keywords
Additional file 7 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 7 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 6 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 6 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 5 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 5 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 4 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 4 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 3 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 3 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 2 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 2 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 1 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 1 of Short term starvation potentiates the efficacy of chemotherapy in triple negative breast cancer via metabolic reprogramming
Additional file 1 of Bone marrow derived-mesenchymal stem cell improves diabetes-associated fatty liver via mitochondria transformation in mice
Additional file 1 of Bone marrow derived-mesenchymal stem cell improves diabetes-associated fatty liver via mitochondria transformation in mice
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Additional file 1 of Amyloid-β accumulation in human astrocytes induces mitochondrial disruption and changed energy metabolism
Additional file 2 of Amyloid-β accumulation in human astrocytes induces mitochondrial disruption and changed energy metabolism
Additional file 2 of Amyloid-β accumulation in human astrocytes induces mitochondrial disruption and changed energy metabolism