Title :
Functional roles of ionic currents in a membrane delimited mouse sino-atrial node model
Author :
Kharche, S. ; Higham, J. ; Lei, M. ; Zhang, H.
Author_Institution :
Sch. of Phys. & Astron., Univ. of Manchester, Manchester, UK
Abstract :
Functional roles of ionic currents in a membrane delimited sino-atrial node (SAN) cell model were investigated. Ionic currents were blocked and intracellular calcium ([Ca2+]i) buffered to study their effects on action potential (AP) characteristics. The simulations revealed that blocking the hyperpolarization activated current and the T-type calcium current caused an increase of cycle length (CL) due to reduced diastolic depolarization rate (DDR). Blocking of sustained outward (Ist) and sodium currents (INa,1.1, INa,1.5) had no effect. Blocking the L-type calcium current´s Cav1.3 isoform (ICaL1.3) and rapidly activating delayed rectifier arrested pacemaking. Blocking sodium-calcium exchanger (INaCa) caused a CL reduction but did not affect DDR. Reducing [Ca2+]i increased CL marginally. A small increase of [Ca2+]i arrested pacemaking. Ist, INa1.1, and INa1.5 are not functional and INaCa is a background current in the model.
Keywords :
bioelectric potentials; biomembrane transport; calcium; physiological models; sodium; Ca; Na; T-type calcium current; action potential; current blocking; cycle length; delayed rectifier arrested pacemaking; hyperpolarization activated current; intracellular calcium; ionic currents; membrane delimited mouse sino-atrial node cell model; reduced diastolic depolarization rate; sodium-calcium exchanger; sustained outward current; Biological system modeling; Biomembranes; Computational modeling; Data models; Mathematical model; Mice; Storage area networks;
Conference_Titel :
Computing in Cardiology, 2010
Conference_Location :
Belfast
Print_ISBN :
978-1-4244-7318-2