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ZD 7288对豚鼠黑质神经元体外超极化激活内向整流电流的阻断机制

Mechanism of block by ZD 7288 of the hyperpolarization-activated inward rectifying current in guinea pig substantia nigra neurons in vitro.

作者信息

Harris N C, Constanti A

机构信息

Department of Pharmacology, School of Pharmacy, London, United Kingdom.

出版信息

J Neurophysiol. 1995 Dec;74(6):2366-78. doi: 10.1152/jn.1995.74.6.2366.

Abstract
  1. The effects of the novel bradycardic agent 4-(N-ethyl-N-phenylamino)-1,2-dimethyl-6-(methylamino) pyrimidinium chloride (ZD 7288) (Zeneca) were investigated on the hyperpolarization-activated cationic current (Ih) in guinea pig substantia nigra pars compacta neurons in vitro, using a single-microelectrode current-clamp/voltage-clamp technique. 2. Under current-clamp conditions, injection of large negative current pulses (0.1-0.5 nA, 400 ms) evoked a slow depolarizing "sag" in the electrotonic potential due to activation of the slow inward (anomalous) rectifier. In voltage-clamp recordings, hyperpolarizing voltage steps from a holding potential of -60 mV (close to resting potential) elicited slow inward current relaxations with kinetic properties similar to those seen for other neuronal Ihs. 3. ZD 7288 (10-100 microM) produced a consistent abolition of the electrotonic potential sag with no effect on membrane potential or spike properties. Under voltage clamp, Ih amplitude was clearly reduced in a time- and concentration-dependent manner (apparent half-maximum blocking concentration = 2 microM); full block of Ih was typically achieved after 10-15 min of exposure to 50 microM ZD 7288, with no significant recovery observed after 1 h of washing. 4. A similar (although more rapid) block of Ih was seen after application of 3-5 mM Cs+ (partially reversible after 30 min of washing). 5. Partial block of Ih by 10 microM ZD 7288 was accompanied by a reduction in the maximum amplitude of the Ih activation curve, a small negative shift in its position on the voltage axis, and a linearization of the steady-state current-voltage relationship. The estimated Ih reversal potential, however, remained unaffected. 6. In 10 microM ZD 7288, the time course of Ih activation and deactivation was significantly slowed (within the range of -70 to -120 mV for the activation time constant and -70 to -90 mV for the inactivation time constant). 7. Blockade of Ih by ZD 7288 or Cs+ was independent of prior Ih activation (i.e., non-use dependent). 8. Intracellular loading with ZD 7288 also abolished the sag in the electrotonic voltage response and Ih relaxations, suggesting an intracellular site of action. By contrast, intracellular Cs+ had no effect on Ih properties. 9. Block of Ih by ZD 7288 (but not Cs+) was relieved by prolonged cell hyperpolarization, manifested as a slowly developing (half-time approximately 20 s) inward current at a holding potential of -100 mV. 10. We propose that ZD 7288, when applied externally, may behave as a "lipophilic" quaternary cation, capable of passing into the cell interior to block Ih channels in their closed state; this compound may thus prove a useful research tool, in place of Cs+, for studying the properties and significance of Ih currents in controlling neuronal function.
摘要
  1. 采用单微电极电流钳/电压钳技术,在体外研究了新型心动过缓剂4-(N-乙基-N-苯基氨基)-1,2-二甲基-6-(甲氨基)嘧啶氯化物(ZD 7288)(捷利康公司)对豚鼠黑质致密部神经元超极化激活阳离子电流(Ih)的影响。2. 在电流钳条件下,注入大的负电流脉冲(0.1 - 0.5 nA,400 ms)会由于慢内向(反常)整流器的激活而在电紧张电位中诱发缓慢的去极化“下陷”。在电压钳记录中,从-60 mV(接近静息电位)的钳制电位进行超极化电压阶跃会诱发缓慢的内向电流松弛,其动力学特性与其他神经元Ih所见相似。3. ZD 7288(10 - 100 microM)能持续消除电紧张电位下陷,对膜电位或动作电位特性无影响。在电压钳下,Ih幅度以时间和浓度依赖的方式明显降低(表观半数最大阻断浓度 = 2 microM);暴露于50 microM ZD 7288 10 - 15分钟后通常可实现Ih的完全阻断,冲洗1小时后未观察到明显恢复。4. 应用3 - 5 mM Cs+(冲洗30分钟后部分可逆)后可见类似(尽管更迅速)的Ih阻断。5. 10 microM ZD 7288对Ih的部分阻断伴随着Ih激活曲线最大幅度的降低、其在电压轴上位置的小负向移位以及稳态电流-电压关系的线性化。然而,估计的Ih反转电位未受影响。6. 在10 microM ZD 7288中,Ih激活和失活的时间进程明显减慢(激活时间常数在-70至-120 mV范围内,失活时间常数在-70至-90 mV范围内)。7. ZD 7288或Cs+对Ih的阻断与先前的Ih激活无关(即非使用依赖性)。8. 用ZD 7288进行细胞内灌流也消除了电紧张电压反应中的下陷和Ih松弛,提示其作用位点在细胞内。相比之下,细胞内Cs+对Ih特性无影响。9. ZD 7288(而非Cs+)对Ih的阻断可通过长时间细胞超极化而解除,表现为在-100 mV的钳制电位下缓慢发展(半衰期约20 s)的内向电流。10. 我们提出,当外部应用时,ZD 7288可能表现为一种“亲脂性”季铵阳离子,能够进入细胞内部以阻断处于关闭状态的Ih通道;因此,该化合物可能成为一种有用的研究工具,可替代Cs+用于研究Ih电流在控制神经元功能中的特性和意义。

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