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Hypoxia-induced mitochondrial and nuclear DNA damage in the rat brain
Ella W. Englander
, George H. Greeley
, Guichun Wang
, Jose Regino Perez-Polo
, Heung Man Lee
Neurosurgery
Research output
:
Contribution to journal
›
Article
›
peer-review
48
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Scopus citations
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Dive into the research topics of 'Hypoxia-induced mitochondrial and nuclear DNA damage in the rat brain'. Together they form a unique fingerprint.
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Keyphrases
DNA Damage
100%
Hypoxia
100%
Rat Brain
100%
Nuclear DNA Damage
100%
Mitochondrial DNA Damage
100%
Mitochondrial DNA
75%
Nuclear DNA (nDNA)
75%
Cerebral Hypoxia
75%
DNA Elements
75%
Quantitative PCR
50%
Macromolecules
25%
DNA Repair
25%
Oxidative Stress
25%
Cell Death
25%
Trauma
25%
Induced Damage
25%
Free Radicals
25%
Cellular Homeostasis
25%
Highly Sensitive
25%
DNA Damage Response
25%
3′-untranslated Region (3′-UTR)
25%
Rat Hippocampus
25%
Perinatal Asphyxia
25%
Novel Assay
25%
Cellular Survival
25%
Brain Insult
25%
Copy number
25%
Repair Kinetics
25%
Incidental
25%
Common Component
25%
Recovery Period
25%
Polymerase Chain Reaction Assay
25%
Rat Cortex
25%
Ambient Air
25%
Cell Capacity
25%
Complete Mitochondrial Genome
25%
Random Segment
25%
Neuroscience
Mitochondrial DNA
100%
DNA Damage
100%
Nuclear DNA
100%
Cerebral Hypoxia
60%
Real-Time Polymerase Chain Reaction
40%
Cerebrovascular Accident
40%
Oxidative Stress
20%
Hippocampus
20%
Cell Death
20%
Free Radical
20%
DNA Repair
20%
DNA Damage Response
20%
Cell Survival
20%
Intron
20%
Untranslated Region
20%