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电生理学鉴定的仓鼠背角神经元中的多种 T 型钙电流亚型:在脊髓感觉整合中的可能作用。

Multiple T-type Ca2+ current subtypes in electrophysiologically characterized hamster dorsal horn neurons: possible role in spinal sensory integration.

机构信息

Dept. of Physiology, Michigan State Univ., East Lansing, MI 48824-3320, USA.

出版信息

J Neurophysiol. 2011 Nov;106(5):2486-98. doi: 10.1152/jn.01083.2010. Epub 2011 Jul 27.

Abstract

Whole cell patch-clamp recordings were used to investigate the contribution of transient, low-threshold calcium currents (I(T)) to firing properties of hamster spinal dorsal horn neurons. I(T) was widely, though not uniformly, expressed by cells in Rexed's laminae I-IV and correlated with the pattern of action potential discharge evoked under current-clamp conditions: I(T) in neurons responding to constant membrane depolarization with one or two action potentials was nearly threefold larger than I(T) in cells responding to the same activation with continuous firing. I(T) was evoked by depolarizing voltage ramps exceeding 46 mV/s and increased with ramp slope (240-2,400 mV/s). Bath application of 200 μM Ni(2+) depressed ramp-activated I(T). Phasic firing recorded in current clamp could only be activated by membrane depolarizations exceeding ∼43-46 mV/s and was blocked by Ni(2+) and mibefradil, suggesting I(T) as an underlying mechanism. Two components of I(T), "fast" and "slow," were isolated based on a difference in time constant of inactivation (12 ms and 177 ms, respectively). The amplitude of the fast subtype depended on the slope of membrane depolarization and was twice as great in burst-firing cells than in cells having a tonic discharge. Post hoc single-cell RT-PCR analyses suggested that the fast component is associated with the Ca(V)3.1 channel subtype. I(T) may enhance responses of phasic-firing dorsal horn neurons to rapid membrane depolarizations and contribute to an ability to discriminate between afferent sensory inputs that encode high- and low-frequency stimulus information.

摘要

全细胞膜片钳记录用于研究瞬时、低阈值钙电流 (I(T)) 对仓鼠脊髓背角神经元放电特性的贡献。I(T) 广泛存在于 Rexed Ⅰ-Ⅳ层的细胞中,但并不均匀,与在电流钳条件下诱发的动作电位放电模式相关:对恒定膜去极化反应仅产生 1 或 2 个动作电位的神经元中的 I(T) 几乎是对相同激活作用持续放电的细胞中的 I(T) 的 3 倍。I(T) 可通过超过 46 mV/s 的去极化电压斜坡诱发,并随斜坡斜率增加而增加(240-2,400 mV/s)。200 μM Ni(2+) 浴液应用可抑制斜坡激活的 I(T)。在电流钳中记录的相发性放电只能由超过约 43-46 mV/s 的膜去极化激活,并被 Ni(2+) 和 mibefradil 阻断,提示 I(T) 是潜在机制。基于失活时间常数的差异,可分离出 I(T) 的两个成分,“快”和“慢”(分别为 12 ms 和 177 ms)。快型的幅度取决于膜去极化的斜率,在爆发放电细胞中是持续放电细胞的两倍。事后单细胞 RT-PCR 分析表明,快型与 Ca(V)3.1 通道亚型相关。I(T) 可能增强相发性放电背角神经元对快速膜去极化的反应,并有助于区分编码高频和低频刺激信息的传入感觉输入。

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