Actions of U-92032, a T-type Ca2+ channel antagonist, support a functional linkage between IT and slow intrathalamic rhythms

被引:30
作者
Porcello, DM [1 ]
Smith, SD [1 ]
Huguenard, JR [1 ]
机构
[1] Stanford Univ, Med Ctr, Dept Neurol & Neurol Sci, Stanford, CA 94305 USA
关键词
D O I
10.1152/jn.00667.2002
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Thalamic relay neurons express high levels of T-type Ca2+ channels, which support the generation of robust burst discharges. This intrinsically mediated form of phasic spike firing is thought to be critical in the generation of slow (3-4 Hz) synchronous oscillatory activity of absence epilepsy. Recordings made from brain slices or whole animals have shown that slow synchronous absence-like activity can be abolished when Ca2+-dependent burst firing in relay neurons is interrupted by the pharmacological or genetic inactivation of T-channels. Because succinimide drugs act as incomplete and nonspecific antagonists, we tested whether the novel T-channel antagonist U-92032 could provide stronger support for a role of T-channels in slow oscillatory activity. Ca2+-dependent rebound (LTS) bursts were recorded using whole cell current clamp in relay cells of the ventral basal complex (VB) from thalamic slices of adult rats. We used LTS kinetics to measure the availability of T-channels in VB cells after TTX. U-92032 (1 and 10 muM) reduced the maximum rate of depolarization of the isolated LTS by 51% and 90%, respectively, compared with the 35% reduction due to 2 mM methylphenylsuccinimide (MPS), the active metabolite of the antiabsence drug methsuximide. U-92032 (1 and 10 muM) also suppressed evoked, slow oscillations in thalamic slices with a time course similar for observed intracellular effects. Unlike MPS, we observed no substantial effects of short-term U-92032 applications (less than or equal to2 h) on the generation of action potentials in VB cells. Our findings show U-92032 is a more potent, effective, and specific T-channel antagonist than previously studied succinimide antiabsence drugs and that it dramatically reduces epileptiform synchronous activity. This suggests that U-92032 or other specific T-channel antagonists may provide effective drug treatments for absence epilepsy.
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页码:177 / 185
页数:9
相关论文
共 55 条
[21]   Physiology and pharmacology of corticothalamic stimulation-evoked responses in rat somatosensory thalamic neurons in vitro [J].
Kao, CQ ;
Coulter, DA .
JOURNAL OF NEUROPHYSIOLOGY, 1997, 77 (05) :2661-2676
[22]   Lack of the burst firing of thalamocortical relay neurons and resistance to absence seizures in mice lacking α1G T-type Ca2+ channels [J].
Kim, D ;
Song, I ;
Keum, S ;
Lee, T ;
Jeong, MJ ;
Kim, SS ;
McEnery, MW ;
Shin, HS .
NEURON, 2001, 31 (01) :35-45
[23]   A METHOD FOR THE QUANTIFICATION OF SYNCHRONY AND OSCILLATORY PROPERTIES OF NEURONAL-ACTIVITY [J].
KONIG, P .
JOURNAL OF NEUROSCIENCE METHODS, 1994, 54 (01) :31-37
[24]  
Leresche N, 1998, J NEUROSCI, V18, P4842
[25]   Sleep and arousal: Thalamocortical mechanisms [J].
McCormick, DA ;
Bal, T .
ANNUAL REVIEW OF NEUROSCIENCE, 1997, 20 :185-215
[26]   A MODEL OF THE ELECTROPHYSIOLOGICAL PROPERTIES OF THALAMOCORTICAL RELAY NEURONS [J].
MCCORMICK, DA ;
HUGUENARD, JR .
JOURNAL OF NEUROPHYSIOLOGY, 1992, 68 (04) :1384-1400
[27]   ELECTRICAL ACTIVITY OF THE THALAMUS AND BASAL GANGLIA IN DECORTICATE CATS [J].
MORISON, RS ;
BASSETT, DL .
JOURNAL OF NEUROPHYSIOLOGY, 1945, 8 (05) :309-314
[28]   Voltage-activated intracellular calcium transients in thalamic relay cells and interneurons [J].
Munsch, T ;
Budde, T ;
Pape, HC .
NEUROREPORT, 1997, 8 (11) :2411-2418
[29]  
PORCELLO DM, 2001, SOC NEUR ABSTR, V27
[30]   Long-range connections synchronize rather than spread intrathalamic oscillations: Computational modeling and in vitro electrophysiology [J].
Sohal, VS ;
Huguenard, JR .
JOURNAL OF NEUROPHYSIOLOGY, 1998, 80 (04) :1736-1751