首页> 美国卫生研究院文献>The Journal of Physiology >Inward rectification in neonatal rat spinal motoneurones.
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Inward rectification in neonatal rat spinal motoneurones.

机译:新生大鼠脊髓运动神经元的内向整流。

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摘要

1. Inward rectifying currents were recorded, using tight-seal, whole-cell voltage-clamp methods, from motoneurones visually identified in thin slices of neonatal rat spinal cord. 2. When motoneurones were hyperpolarized from holding potentials near the resting potential (-60 to -70 mV), a slow inward-going current was recorded. After the hyperpolarizing command pulses, inward tail currents were recorded. Amplitudes of the inward current at the end of hyperpolarizing pulses as well as those of the tail current increased non-linearly with the membrane hyperpolarization, showing an inward rectification in the current-voltage relation. 3. Neither the amplitude nor the kinetics of the inward rectifying current (IIR) was appreciably affected by replacement of extracellularly Ca2+ with Mg2+ combined with the application of tetrodotoxin (1 microM), tetraethylammonium (30 mM), and 4-aminopyridine (4 mM). The current was relatively resistant to Ba2+, being only slightly suppressed at 2 but not at 0.2 mM. However, it was completely and reversibly abolished by Cs+ (2 mM). 4. When the external K+ concentration was raised, IIR was augmented. However, the activation curve of IIR constructed from relative tail current amplitudes in high K+ solutions was indistinguishable from that in normal solution. The chord conductance of IIR at various membrane potentials was similar for both normal and high K+ solutions. Thus the whole-cell conductance of inward rectification in motoneurones depends on the membrane potential but not appreciably on the external K+ concentration ([K+]o). 5. The reversal potential of IIR was estimated by measuring the tail currents. In standard solution ([K+]o = 3 mM), the reversal potential was about -44 mV. Increasing [K+]o shifted the reversal potential toward positive potentials by 22 mV for a tenfold change in potassium concentration. 6. A fivefold reduction in the external Na+ concentration shifted the reversal potential of IIR in a negative direction by about 7 mV, suggesting that Na+ may carry part of IIR. A fivefold reduction in external Cl- concentration shifted the reversal potential by about 2 mV but in a negative direction, the opposite of the expected shift in the Cl- equilibrium potential. 7. When external Cl- was substituted with isethionate or gluconate, IIR was markedly and reversibly suppressed. 8. It is concluded that in spinal motoneurones, IIR is carried by both K+ and Na+ ions and that external Cl- might be required to maintain the inward rectifier current.
机译:1.使用紧密密封的全细胞电压钳方法,从新生大鼠脊髓薄片中肉眼识别的运动神经元中记录了内向整流电流。 2.当运动神经元从接近静止电位(-60至-70 mV)的保持电位超极化时,记录到缓慢的内向电流。在超极化命令脉冲之后,记录了向内的尾电流。随着膜超极化,超极化脉冲结束时的内向电流的振幅以及尾电流的振幅非线性地增加,显示出电流-电压关系中的内向整流。 3.用Mg2 +代替细胞外Ca2 +并结合使用河豚毒素(1 microM),四乙铵(30 mM)和4-氨基吡啶(4 mM)不会明显影响内向整流电流(IIR)的幅度或动力学。 )。电流对Ba2 +具有相对的抵抗力,仅在2时被略微抑制,而在0.2 mM时则没有。但是,它被Cs +(2 mM)完全可逆地废除了。 4.当外部K +浓度升高时,IIR增加。但是,在高K +溶液中由相对尾电流幅度构成的IIR的激活曲线与正常溶液中的IIR的激活曲线没有区别。对于正常和高K +溶液,IIR在各种膜电位下的弦电导都相似。因此,运动神经元中向内整流的全细胞电导率取决于膜电位,而不取决于外部K +浓度([K +] o)。 5.通过测量尾电流来估算IIR的反向电位。在标准溶液([K +] o = 3 mM)中,反转电位约为-44 mV。 [K +] o的增加使钾离子浓度发生十倍变化,使反向电位朝正电位移动了22 mV。 6.外部Na +浓度降低了5倍,IIR的逆转电位向负方向移动了大约7 mV,这表明Na +可能携带一部分IIR。外部Cl-浓度降低了五倍,使反向电位移动了约2 mV,但方向为负,与Cl-平衡电位的预期变化相反。 7.当外部的Cl-被羟乙磺酸盐或葡萄糖酸盐取代时,IIR被显着且可逆地抑制。 8.结论是,在脊髓运动神经元中,IIR由K +和Na +离子携带,可能需要外部Cl-来保持整流器内向电流。

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