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离体浦肯野神经元爆发式放电的离子机制

Ionic mechanisms of burst firing in dissociated Purkinje neurons.

作者信息

Swensen Andrew M, Bean Bruce P

机构信息

Department of Neurobiology, Harvard Medical School, Boston, Massachusetts 02115, USA.

出版信息

J Neurosci. 2003 Oct 22;23(29):9650-63. doi: 10.1523/JNEUROSCI.23-29-09650.2003.

Abstract

Cerebellar Purkinje neurons have intrinsic membrane properties that favor burst firing, seen not only during complex spikes elicited by climbing fiber input but also with direct electrical stimulation of cell bodies. We examined the ionic conductances that underlie all-or-none burst firing elicited in acutely dissociated mouse Purkinje neurons by short depolarizing current injections. Blocking voltage-dependent calcium entry by cadmium or replacement of external calcium by magnesium enhanced burst firing, but it was blocked by cobalt replacement of calcium, probably reflecting block of sodium channels. In voltage-clamp experiments, we used the burst waveform of each cell as a voltage command and used ionic substitutions and pharmacological manipulations to isolate tetrodotoxin (TTX)-sensitive sodium current, P-type and T-type calcium current, hyperpolarization-activated cation current (Ih), voltage-activated potassium current, large-conductance calcium-activated potassium current, and small-conductance calcium-activated potassium (SK) current. Measured near the middle of the first interspike interval, TTX-sensitive sodium current carried the largest inward current, and T-type calcium current was also substantial. Current through P-type channels was large immediately after a spike but decayed rapidly. These inward currents were opposed by substantial components of voltage-dependent and calcium-dependent potassium current. Termination of the burst is caused partly by decay of sodium current, together with a progressive buildup of SK current after the first interspike interval. Although burst firing depends on the net balance between multiple large currents flowing after a spike, it is surprisingly robust, probably reflecting complex interactions between the exact voltage waveform and voltage and calcium dependence of the various currents.

摘要

小脑浦肯野神经元具有有利于爆发式放电的内在膜特性,这不仅在攀爬纤维输入引发的复合动作电位期间可见,而且在对细胞体进行直接电刺激时也能观察到。我们研究了在急性分离的小鼠浦肯野神经元中,由短去极化电流注射引发的全或无爆发式放电所依赖的离子电导。用镉阻断电压依赖性钙内流或用镁替代细胞外钙可增强爆发式放电,但用钴替代钙则会阻断爆发式放电,这可能反映了钠通道的阻断。在电压钳实验中,我们将每个细胞的爆发波形用作电压指令,并通过离子替代和药理学操作来分离河豚毒素(TTX)敏感的钠电流、P型和T型钙电流、超极化激活的阳离子电流(Ih)、电压激活的钾电流、大电导钙激活钾电流和小电导钙激活钾(SK)电流。在第一个峰间期的中间附近测量发现,TTX敏感的钠电流携带最大的内向电流,T型钙电流也相当可观。通过P型通道的电流在动作电位后立即很大,但迅速衰减。这些内向电流被电压依赖性和钙依赖性钾电流的大量成分所抵消。爆发式放电的终止部分是由钠电流的衰减引起的,同时在第一个峰间期后SK电流逐渐增加。尽管爆发式放电取决于动作电位后多个大电流之间的净平衡,但它出人意料地稳定,这可能反映了精确电压波形与各种电流的电压和钙依赖性之间的复杂相互作用。

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1
Ionic mechanisms of burst firing in dissociated Purkinje neurons.离体浦肯野神经元爆发式放电的离子机制
J Neurosci. 2003 Oct 22;23(29):9650-63. doi: 10.1523/JNEUROSCI.23-29-09650.2003.

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