首页> 美国卫生研究院文献>The Journal of Physiology >The mechanism of ion transport by the Na(+)-Ca2+K+ exchange in rods isolated from the salamander retina.
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The mechanism of ion transport by the Na(+)-Ca2+K+ exchange in rods isolated from the salamander retina.

机译:Na(+)-Ca2 +K +交换在从the视网膜分离的棒中进行离子迁移的机制。

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摘要

1. Membrane currents caused by the operation of electrogenic Na(+)-Ca2+,K+ exchange were recorded from isolated rod outer segments under voltage-clamp using a whole-cell electrode. 2. Reversed mode exchange currents (Na+i-Ca2+o,K+o) were recorded with a high internal [Na+] and when both Ca2+ and K+ were present in the external solution. Omission of either Ca2+ or K+ completely suppressed both the reversed exchange current and the entry of Ca2+. 3. The charge transferred by the exchange per Ca2+ ion transported was identical in both forward and reversed modes. 4. The reversed exchange current declined as Ca2+ accumulated inside the outer segment, and the form of this decline was consistent with a first-order inhibition by internal Ca2+. 5. The reversed exchange current was increased e-fold by a 230 mV depolarization over the range -51 to +29 mV. 6. The activation of reversed exchange by external Ca2+ was well described by first-order kinetics with a Michaelis constant, KappCao, of 34 microM in the presence of 20 mM external K+. KappCao was reduced by lowering external [K+], was increased by adding external Na+ and was unaffected by membrane potential. 7. External K+ also activated the exchange in a first-order manner with a Michaelis constant, KappKo, of 151 microM in the presence of 0.5 mM external Ca2+. KappKo was reduced by lowering external [Ca2+], increased by adding external Na+ and was unaffected by membrane potential. 8. When the level of internal Ca2+ was increased via reversed exchange, KappCao diminished in proportion to the reduction in the maximum current, but KappKo remained approximately constant. 9. These observations cannot be reconciled with simple models of the exchange in which ions bind simultaneously at opposite faces of the membrane before transport occurs. The results are broadly consistent with a consecutive model of the exchange in which unbinding of Na+ at either the external or the internal membrane surface is followed by binding of Ca2+ and then K+, and are fully reproduced by a model in which Ca2+ binds before all of the Na+ has dissociated from the exchange molecule.
机译:1.使用全细胞电极在电压钳下从隔离的棒外段记录由电化Na(+)-Ca2 +,K +交换操作引起的膜电流。 2.记录的反向模式交换电流(Na + i-Ca2 + o,K + o)具有较高的内部[Na +],并且外部溶液中同时存在Ca2 +和K +。省略Ca2 +或K +会完全抑制反向交换电流和Ca2 +的进入。 3.在正向和反向模式下,交换的每传输的Ca2 +离子所转移的电荷相同。 4.反向交换电流随着Ca2 +在外部段内的积累而下降,并且这种下降的形式与内部Ca2 +的一阶抑制作用相一致。 5.通过在-51至+29 mV范围内进行230 mV的去极化,反向交换电流增加了e倍。 6.在存在20 mM外部K +的情况下,具有34 microM的米氏常数KappCao的一级动力学很好地描述了外部Ca2 +逆向交换的激活。 KappCao通过降低外部[K +]降低,通过添加外部Na +增加,并且不受膜电位的影响。 7.在存在0.5 mM外部Ca2 +的情况下,外部K +还以151 microM的米氏常数KappKo以一阶方式激活了交换。 KappKo通过降低外部[Ca2 +]降低,通过添加外部Na +升高,并且不受膜电位的影响。 8.当内部Ca2 +的水平通过反向交换增加时,KappCao与最大电流的减少成比例地减小,但KappKo保持大致恒定。 9.这些观察结果不能与简单的交换模型相吻合,在交换的简单模型中,离子在转运发生之前同时在膜的相对面上结合。结果与交换的连续模型大致一致,在交换模型中,Na +在外膜或内膜表面未结合,接着是Ca2 +然后是K +结合,并且在其中Ca2 +在所有Na +已从交换分子上解离。

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