EFFECTS OF ANOXIA ON RAT MIDBRAIN DOPAMINE NEURONS

被引:48
|
作者
MERCURI, NB [1 ]
BONCI, A [1 ]
JOHNSON, SW [1 ]
STRATTA, F [1 ]
CALABRESI, P [1 ]
BERNARDI, G [1 ]
机构
[1] IRCCS, CLIN S LUCIA, I-00173 ROME, ITALY
关键词
D O I
10.1152/jn.1994.71.3.1165
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
1. Dopamine-containing neurons of the rat midbrain were recorded intracellularly in vitro. Anoxia (2-5 min) caused reversible membrane hyperpolarization (4-25 mV), which blocked spontaneous firing of action potentials. Under voltage clamp, anoxia produced an outward current (100-1,000 pA) associated with an increase in the apparent input conductance. 2. The mean reversal potential of the anoxia-induced response at 2.5 and 12.5 mM [K+] was -86 and -66 mV, respectively. 3. The effect of anoxia was not blocked by tetrodotoxin (TTX), saclofen, (-)sulpiride, or strychnine. Superfusate containing low calcium (0.5 mM CaCl2 and 10 mM MgCl2 or 0.5-1 mM CaCl2 and 1 mM CoCl2) or low sodium (25-40% of control) reduced the anoxia-induced outward current. 4. Extracellular barium (0.1-1 mM) blocked the anoxia-induced hyperpolarization/outward current. Other K+ channel blockers (tetraethylammonium, apamin, quinine, and glibenclamide) failed to reduce anoxia-induced current. 5. When the dopamine-containing neurons were loaded with cesium (1-2 mM), anoxia caused a reversible membrane depolarization and a block of the firing activity. This depolarization was voltage dependent; it was decreased or blocked by the hyperpolarization of the membrane. 6. Perfusion of the cells with 0.5-1 mu M TTX did not affect the membrane depolarization/inward current caused by anoxia. These were also present when the cells were treated with the excitatory amino acid receptor antagonists D,L-2-amino-5-phosphono-valerate (APV) (30 mu M) and 6-cyano-7-nitroquinoxaline-2,3-dione (CNQX) (10 mu M). 7. The exposure of the neurons with low-sodium, low-calcium solutions reversibly reduced the depolarizing/inward effects of anoxia. 8. It is concluded that under control condition anoxia hyperpolarizes dopamine-containing neurons. However, when the potassium current is blocked by intracellular cesium, it depolarizes these cells.
引用
收藏
页码:1165 / 1173
页数:9
相关论文
共 50 条
  • [41] Encoding of Conditioned Motivation by Midbrain Dopamine Neurons
    Saunders, Benjamin
    Richard, Jocelyn
    Janak, Patricia
    [J]. NEUROPSYCHOPHARMACOLOGY, 2017, 42 : S272 - S273
  • [42] Diversity and Homogeneity in Responses of Midbrain Dopamine Neurons
    Fiorillo, Christopher D.
    Yun, Sora R.
    Song, Minryung R.
    [J]. JOURNAL OF NEUROSCIENCE, 2013, 33 (11): : 4693 - 4709
  • [43] A microRNA feedback circuit in midbrain dopamine neurons
    Kim, Jongpil
    Inoue, Keiichi
    Ishii, Jennifer
    Vanti, William B.
    Voronov, Sergey V.
    Murchison, Elizabeth
    Hannon, Gregory
    Abeliovich, Asa
    [J]. SCIENCE, 2007, 317 (5842) : 1220 - 1224
  • [44] Identification of intrinsic determinants of midbrain dopamine neurons
    Andersson, E
    Tryggvason, U
    Deng, QL
    Friling, S
    Alekseenko, Z
    Robert, B
    Perlmann, T
    Ericson, J
    [J]. CELL, 2006, 124 (02) : 393 - 405
  • [45] Nicotine activates and desensitizes midbrain dopamine neurons
    Volodymyr I. Pidoplichko
    Mariella DeBiasi
    John T. Williams
    John A. Dani
    [J]. Nature, 1997, 390 : 401 - 404
  • [46] A microRNA Feedback Circuit in Midbrain Dopamine Neurons
    Abeliovich, Asa
    [J]. MACRO-ROLES FOR MICRORNAS IN THE LIFE AND DEATH OF NEURONS, 2010, : 27 - 33
  • [47] Nicotine activates and desensitizes midbrain dopamine neurons
    Pidoplichko, VI
    DeBiasi, M
    Williams, JT
    Dani, JA
    [J]. NATURE, 1997, 390 (6658) : 401 - 404
  • [48] Cholinergic inhibition of ventral midbrain dopamine neurons
    Fiorillo, CD
    Williams, JT
    [J]. JOURNAL OF NEUROSCIENCE, 2000, 20 (20): : 7855 - 7860
  • [49] GENERATING BURSTS (AND PAUSES) IN THE DOPAMINE MIDBRAIN NEURONS
    Paladini, C. A.
    Roeper, J.
    [J]. NEUROSCIENCE, 2014, 282 : 109 - 121
  • [50] Inhibitory effects of trace amines on rat midbrain dopaminergic neurons
    Geracitano, R
    Federici, M
    Prisco, S
    Bernardi, G
    Mercuri, NB
    [J]. NEUROPHARMACOLOGY, 2004, 46 (06) : 807 - 814