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Mathematical model of the neonatal mouse ventricular action potential
Linda J. Wang
,
Eric A. Sobie
Cardiovascular Research Institute
Friedman Brain Institute
Graduate School of Biomedical Sciences
Icahn School of Medicine at Mount Sinai
Mount Sinai Institute for Systems Biomedicine
Pharmacological Sciences
Research output
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Article
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peer-review
53
Scopus citations
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Keyphrases
Action Potential Duration
33%
Action Potential Shape
66%
Adult Cardiac Myocytes
33%
Adult Cells
33%
Ca2+
66%
Ca2+ Entry
66%
Ca2+ Influx
33%
Cell Function
33%
Computational Modeling
33%
Delayed Rectifier
33%
Heart Cell
33%
Heart Disease
33%
Hypothesis Testing
33%
Interaction between Components
33%
Intracellular Na+ Concentration
33%
Ion Transport Mechanism
33%
K+ Current
66%
L-type Ca2+ Channel
33%
Mathematical Model
100%
Molecular Interactions
33%
Myocardium
33%
Myocytes
100%
Na +
33%
Neonatal Heart
33%
Neonatal Mice
100%
Novel Prediction
33%
Plateau Phase
33%
Repolarization
33%
Sarcoplasmic Reticulum
33%
Sarcoplasmic Reticulum Ca2+ Leak
33%
Synthesizing Data
33%
System Behavior
33%
T-type
33%
Transmembrane
33%
Ventricular Action Potential
100%
Medicine and Dentistry
Action Potential
100%
Action Potential Duration
16%
Calcium Channel
16%
Calcium Ion
100%
Cardiac Muscle Cell
16%
Cell Function
16%
Heart Disease
16%
Ion Transport Mechanism
16%
Myocardium
16%
Neonatal Infant
16%
Potassium Current
33%
Repolarization
16%
Sarcoplasmic reticulum
33%
Sodium Ion
33%
Biochemistry, Genetics and Molecular Biology
Action Potential
100%
Action Potential Duration
33%
Calcium Channel
33%
Cardiac Muscle Cell
33%
Cell Function
33%
Ion Transport
33%
Molecular Interaction
33%
Potassium Current
66%
Repolarization
33%