AbstractCardiac contraction and relaxation dynamics result from a set of simultaneously interacting Ca2+ regulatory mechanisms. In this study, cardiocyte Ca2+ dynamics were modeled using a set of six differential equations that were based on theories, equations, and parameters described in previous studies. Among the unique features of the model was the inclusion of bidirectional modulatory interplay between the sarcoplasmic reticular Ca2+ release channel (SRRC) and calsequestrin (CSQ) in the SR lumen, where CSQ acted as a dynamic rather than simple Ca2+ buffer, and acted as a Ca2+ sensor in the SR lumen as well. The inclusion of this control mechanism was central in overcoming a number of assumptions that would otherwise have to be made ab...
AbstractWe present a probability density approach to modeling localized Ca2+ influx via L-type Ca2+ ...
AbstractCardiac Ca2+-induced Ca2+ release (CICR) occurs by a regenerative activation of ryanodine re...
AbstractCardiomyocyte relaxation and contraction are tightly controlled by the activity of the cardi...
AbstractCardiac contraction and relaxation dynamics result from a set of simultaneously interacting ...
AbstractWe construct a detailed mathematical model for Ca2+ regulation in the ventricular myocyte th...
Heart disease is the leading cause of mortality in the United States. One cause of heart arrhythmia ...
AbstractWe present what we believe to be a new mathematical model of Ca2+ leak from the sarcoplasmic...
AbstractSeveral computational studies have been undertaken to explore the Ca2+-induced Ca2+ release ...
AbstractThe local control theory of excitation-contraction (EC) coupling in cardiac muscle asserts t...
AbstractWe describe a simulation study of Ca2+ dynamics in mice with cardiomyocyte-specific conditio...
AbstractIn cardiac muscle, excitation-contraction (E-C) coupling is determined by the ability of the...
AbstractMultiscale whole-cell models that accurately represent local control of Ca2+-induced Ca2+ re...
Propagating intracellular Ca2+ waves in cardiac myocytes occur as a consequence of the overloaded st...
AbstractA Ca2+ spark arises when a cluster of sarcoplasmic reticulum (SR) channels (ryanodine recept...
AbstractIn cardiac ventricular myocytes, calcium (Ca) release occurs at distinct structures (dyads) ...
AbstractWe present a probability density approach to modeling localized Ca2+ influx via L-type Ca2+ ...
AbstractCardiac Ca2+-induced Ca2+ release (CICR) occurs by a regenerative activation of ryanodine re...
AbstractCardiomyocyte relaxation and contraction are tightly controlled by the activity of the cardi...
AbstractCardiac contraction and relaxation dynamics result from a set of simultaneously interacting ...
AbstractWe construct a detailed mathematical model for Ca2+ regulation in the ventricular myocyte th...
Heart disease is the leading cause of mortality in the United States. One cause of heart arrhythmia ...
AbstractWe present what we believe to be a new mathematical model of Ca2+ leak from the sarcoplasmic...
AbstractSeveral computational studies have been undertaken to explore the Ca2+-induced Ca2+ release ...
AbstractThe local control theory of excitation-contraction (EC) coupling in cardiac muscle asserts t...
AbstractWe describe a simulation study of Ca2+ dynamics in mice with cardiomyocyte-specific conditio...
AbstractIn cardiac muscle, excitation-contraction (E-C) coupling is determined by the ability of the...
AbstractMultiscale whole-cell models that accurately represent local control of Ca2+-induced Ca2+ re...
Propagating intracellular Ca2+ waves in cardiac myocytes occur as a consequence of the overloaded st...
AbstractA Ca2+ spark arises when a cluster of sarcoplasmic reticulum (SR) channels (ryanodine recept...
AbstractIn cardiac ventricular myocytes, calcium (Ca) release occurs at distinct structures (dyads) ...
AbstractWe present a probability density approach to modeling localized Ca2+ influx via L-type Ca2+ ...
AbstractCardiac Ca2+-induced Ca2+ release (CICR) occurs by a regenerative activation of ryanodine re...
AbstractCardiomyocyte relaxation and contraction are tightly controlled by the activity of the cardi...