会议专题

Sodium Channels Kinetics under Self-gating Condition at Neuromuscular Junction

The neuromuscular junction (NMJ) is the synapse between the axon terminal of motoneuron and the endplate of a muscle fiber. The nerve impulse leads to a large depolarization called the endplate potential, which in turn opens a large number of voltage-sensitive sodium channels located within post-junctional synapric folds. This set off causing an all or nothing action potential that is propagated along the muscle fiber and initiate muscle contraction. In this work we have simulated the behavior of the voltage-dependent sodium conductance within the NMJ using a mathematical model. We simulated sodium channels activation and inactivation kinetics under voltage clamp condition. We observed a self-gating behavior of the sodium conductance during activation and inactivation. The simulation results showed that self-gating of sodium channels increase conduction efficiency at the NMJ.

Self-gating Activation of sodium channels Inactivation of sodium channels Sodium channel kinetics.

M. Mostafizur Rahman Mufti Mahmud Stefano Vassanelli

NeuroChip Laboratory, Department of Human Anatomy & Physiology Department of Information Engineering NeuroChip Laboratory, Department of Human Anatomy & Physiology

国际会议

2011 4th International Conference on Biomedical Engineering and Informatics(第四届生物医学工程与信息学国际会议 BMEI 2011)

上海

英文

996-1000

2011-10-15(万方平台首次上网日期,不代表论文的发表时间)