Theoretical investigation of the neuronal Na+ channel SCN1A:: abnormal gating and epilepsy

被引:16
作者
Clancy, CE [1 ]
Kass, RS [1 ]
机构
[1] Columbia Univ Coll Phys & Surg, Dept Pharmacol, New York, NY 10032 USA
关键词
D O I
10.1016/S0006-3495(04)74315-5
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Epilepsy is a paroxysmal neurological disorder resulting from abnormal cellular excitability and is a common cause of disability. Recently, some forms of idiopathic epilepsy have been causally related to genetic mutations in neuronal ion channels. To understand disease mechanisms, it is crucial to understand how a gene defect can disrupt channel gating, which in turn can affect complex cellular dynamic processes. We develop a theoretical Markovian model of the neuronal Na+ channel Na(v)1.1 to explore and explain gating mechanisms underlying cellular excitability and physiological and pathophysiological mechanisms of abnormal neuronal excitability in the context of epilepsy. Genetic epilepsy has been shown to result from both mutations that give rise to a gain of channel function and from those that reduce the Na+ current. These data may suggest that abnormal excitation can result from both hyperexcitability and hypoexcitability, the mechanisms of which are presumably distinct, and as yet elusive. Revelation of the molecular origins will allow for translation into targeted pharmacological interventions that must be developed to treat syndromes resulting from divergent mechanisms. This work represents a first step in developing a comprehensive theoretical model to investigate the molecular mechanisms underlying runaway excitation that cause epilepsy.
引用
收藏
页码:2606 / 2614
页数:9
相关论文
共 54 条
  • [1] Enhanced inactivation and acceleration of activation of the sodium channel associated with epilepsy in man
    Alekov, AK
    Rahman, M
    Mitrovic, N
    Lehmann-Horn, F
    Lerche, H
    [J]. EUROPEAN JOURNAL OF NEUROSCIENCE, 2001, 13 (11) : 2171 - 2176
  • [2] A sodium channel mutation causing epilepsy in man exhibits subtle defects in fast inactivation and activation in vitro
    Alekov, AK
    Rahman, MM
    Mitrovic, N
    Lehmann-Horn, F
    Lerche, H
    [J]. JOURNAL OF PHYSIOLOGY-LONDON, 2000, 529 (03): : 533 - 539
  • [3] Ionic basis of spike after-depolarization and burst generation in adult rat hippocampal CA1 pyramidal cells
    Azouz, R
    Jensen, MS
    Yaari, Y
    [J]. JOURNAL OF PHYSIOLOGY-LONDON, 1996, 492 (01): : 211 - 223
  • [4] Sodium "channelopathies" and sudden death - Must you be so sensitive?
    Balser, JR
    [J]. CIRCULATION RESEARCH, 1999, 85 (09) : 872 - 874
  • [5] First genetic evidence of GABAA receptor dysfunction in epilepsy:: a mutation in the γ2-subunit gene
    Baulac, S
    Huberfeld, G
    Gourfinkel-An, I
    Mitropoulou, G
    Beranger, A
    Prud'homme, JF
    Baulac, M
    Brice, A
    Bruzzone, R
    LeGuern, E
    [J]. NATURE GENETICS, 2001, 28 (01) : 46 - 48
  • [6] RECONSTRUCTION OF ACTION POTENTIAL OF VENTRICULAR MYOCARDIAL FIBERS
    BEELER, GW
    REUTER, H
    [J]. JOURNAL OF PHYSIOLOGY-LONDON, 1977, 268 (01): : 177 - 210
  • [7] MOLECULAR MECHANISM FOR AN INHERITED CARDIAC-ARRHYTHMIA
    BENNETT, PB
    YAZAWA, K
    MAKITA, N
    GEORGE, AL
    [J]. NATURE, 1995, 376 (6542) : 683 - 685
  • [8] Brumberg JC, 2000, J NEUROSCI, V20, P4829
  • [9] Voltage-gated ion channelopathies of the nervous system
    Cannon, SC
    [J]. CLINICAL NEUROSCIENCE RESEARCH, 2001, 1 (1-2) : 104 - 117
  • [10] From ionic currents to molecular mechanisms: The structure and function of voltage-gated sodium channels
    Catterall, WA
    [J]. NEURON, 2000, 26 (01) : 13 - 25