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Hypoxia-induced cardiac injury in dystrophic mice
Zachary Stelter
, Jana Strakova
, Amritha Yellamilli
, Kaleb Fischer
, Katharine M Sharpe
,
DeWayne Townsend
Physiology
Screening, Prevention, Etiology & Cancer Survivorship
Research output
:
Contribution to journal
›
Article
›
peer-review
12
Scopus citations
Overview
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Keyphrases
Hypoxia
100%
Dystrophic
100%
Cardiac Injury
100%
Dystrophic Mice
100%
Duchenne muscular Dystrophy
57%
Oxygen Extraction
42%
Cardiac Disease
28%
Cardiac Efficiency
28%
Respiratory Disease
14%
Ischemia
14%
Cardiac Fibrosis
14%
Cardiomyocytes
14%
Respiratory Failure
14%
Cardiac Failure
14%
Increased Mortality
14%
Metabolic Acidosis
14%
Leading Causes of Death
14%
Isolated Heart
14%
Contractile Function
14%
Muscle Weakness
14%
Cardiac Dysfunction
14%
Acidosis
14%
Striated muscle
14%
Oxygen Consumption
14%
Mitochondrial Morphology
14%
Chronic Hypoxia
14%
Mitochondrial Respiratory Function
14%
Acute Exposure
14%
Reduced Oxygen
14%
Mitochondrial Content
14%
Progressive Destruction
14%
Cardiac Hypoxia
14%
Medicine and Dentistry
Hypoxia
100%
Heart Injury
100%
Duchenne Muscular Dystrophy
66%
Heart Disease
33%
Ischemia
16%
Respiratory Disease
16%
Congestive Heart Failure
16%
Respiratory Failure
16%
Isolated Heart
16%
Contractile Function
16%
Respiratory Physiology
16%
Muscle Weakness
16%
Oxygen Consumption
16%
Cardiac Fibrosis
16%
Acidosis
16%
Striated Muscle
16%
Metabolic Acidosis
16%
Carbonyl Cyanide 4 (Trifluoromethoxy)phenylhydrazone
16%
Cardiac Muscle Cell
16%
Diseases
16%
Biochemistry, Genetics and Molecular Biology
Wild Type
100%
Respiratory Function
100%
Oxygen Consumption
100%
Isolated Heart
100%
Cardiac Muscle Cell
100%