Na+-activated K+ channels express a large delayed outward current in neurons during normal physiology

被引:75
|
作者
Budelli, Gonzalo [1 ]
Hage, Travis A. [1 ]
Wei, Aguan [1 ]
Rojas, Patricio [1 ]
Jong, Yuh-Jiin Ivy [1 ]
O'Malley, Karen [1 ]
Salkoff, Lawrence [1 ,2 ]
机构
[1] Washington Univ, Sch Med, Dept Anat & Neurobiol, St Louis, MO 63110 USA
[2] Washington Univ, Sch Med, Dept Genet, St Louis, MO 63110 USA
关键词
POTASSIUM CHANNELS; CARDIAC-CELLS; BRAIN-STEM; RAT; SODIUM; CONDUCTANCE; XENOPUS; SLACK; OOCYTES; FAMILY;
D O I
10.1038/nn.2313
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
One of the largest components of the delayed outward current that is active under physiological conditions in many mammalian neurons, such as medium spiny neurons of the striatum and tufted-mitral cells of the olfactory bulb, has gone unnoticed and is the result of a Na+-activated K+ current. Previous studies of K+ currents in mammalian neurons may have overlooked this large outward component because the sodium channel blocker tetrodotoxin (TTX) is typically used in such studies. We found that TTX also eliminated this delayed outward component in rat neurons as a secondary consequence. Unexpectedly, we found that the activity of a persistent inward sodium current (persistent I-Na) is highly effective at activating this large Na+-dependent (TTX sensitive) delayed outward current. Using siRNA techniques, we identified SLO2.2 channels as being carriers of this delayed outward current. These findings have far reaching implications for many aspects of cellular and systems neuroscience, as well as clinical neurology and pharmacology.
引用
收藏
页码:745 / U93
页数:7
相关论文
共 50 条
  • [1] Na+-activated K+ channels express a large delayed outward current in neurons during normal physiology
    Gonzalo Budelli
    Travis A Hage
    Aguan Wei
    Patricio Rojas
    Yuh-Jiin Ivy Jong
    Karen O'Malley
    Lawrence Salkoff
    Nature Neuroscience, 2009, 12 : 745 - 750
  • [2] Developmental regulation of a Na+-activated fast outward K+ current in rat myoblasts
    Zhou, MO
    Lou, Z
    Hu, LC
    Zhang, ZH
    Mei, YA
    CELLULAR PHYSIOLOGY AND BIOCHEMISTRY, 2004, 14 (4-6) : 225 - 230
  • [3] NA+-ACTIVATED K+ CHANNELS - A NEW FAMILY OF LARGE-CONDUCTANCE ION CHANNELS
    DRYER, SE
    TRENDS IN NEUROSCIENCES, 1994, 17 (04) : 155 - 160
  • [4] Na+-Activated K+ Channels in Rat Supraoptic Neurones
    Bansal, V.
    Fisher, T. E.
    JOURNAL OF NEUROENDOCRINOLOGY, 2016, 28 (06)
  • [5] Na+-activated K+ current contributes to postexcitatory hyperpolarization in neocortical intrinsically bursting neurons
    Franceschetti, S
    Lavazza, T
    Curia, G
    Aracri, P
    Panzica, F
    Sancini, G
    Avanzini, G
    Magistretti, J
    JOURNAL OF NEUROPHYSIOLOGY, 2003, 89 (04) : 2101 - 2111
  • [6] A NA+-ACTIVATED K+ CURRENT IN CULTURED BRAIN-STEM NEURONS FROM CHICKS
    DRYER, SE
    FUJII, JT
    MARTIN, AR
    JOURNAL OF PHYSIOLOGY-LONDON, 1989, 410 : 283 - 296
  • [7] PROPERTIES OF SINGLE NA+-ACTIVATED K+ CHANNELS IN CULTURED CENTRAL NEURONS OF THE CHICK-EMBRYO
    DRYER, SE
    NEUROSCIENCE LETTERS, 1993, 149 (02) : 133 - 136
  • [8] NA+-ACTIVATED K+ CURRENT IN THE APICAL MEMBRANE OF THE TOAD SKIN
    LACAZVIEIRA, F
    PROCOPIO, J
    BRAZILIAN JOURNAL OF MEDICAL AND BIOLOGICAL RESEARCH, 1986, 19 (4-5) : A612 - A612
  • [9] Properties and functions of Na+-activated K+ channels in the soma of rat motoneurones
    Safronov, BV
    Vogel, W
    JOURNAL OF PHYSIOLOGY-LONDON, 1996, 497 (03): : 727 - 734
  • [10] CAFFEINE BLOCKS THE DELAYED K+ OUTWARD CURRENT OF MOLLUSCAN NEURONS
    HERMANN, A
    BRAIN RESEARCH, 1981, 211 (02) : 480 - 484