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钙电流的膜生物物理学

Membrane biophysics of calcium currents.

作者信息

Hagiwara S, Byerly L

出版信息

Fed Proc. 1981 Jun;40(8):2220-5.

PMID:7238906
Abstract

Voltage-dependent Ca currents have now been identified in almost every excitable membrane. In invertebrate muscle and many egg cells Ca currents produce pure Ca spikes, while in nerve axons and vertebrate skeletal muscle Ca currents contribute little to the action potential. Nerve cell bodies and secretory cells have action potentials with both Na and Ca components. Since the measurement of the Ca reversal potential is practically impossible, the selectivity of Ca channels can only be determined by the current-carrying ability of various ions. The movement of ions through the Ca channel is described in terms of an affinity factor for an external binding site and a mobility factor for crossing the membrane. The biophysical study of Ca currents has been limited by the absence of preparations where control of membrane potential was satisfactory. Recently, spherical cells such as isolated ganglion cells and egg cells have allowed more satisfactory voltage clamp studies. However, the separation of the Ca current from the background currents is a much more difficult problem than was the isolation of the Na current. This difficulty is due to the multiple interrelations between the background current and the Ca current. In general alterations that change the Ca current also appear to change the background current.

摘要

现在,几乎在每一种可兴奋膜中都已鉴定出电压依赖性钙电流。在无脊椎动物肌肉和许多卵细胞中,钙电流产生纯钙峰,而在神经轴突和脊椎动物骨骼肌中,钙电流对动作电位的贡献很小。神经细胞体和分泌细胞具有同时包含钠和钙成分的动作电位。由于实际上不可能测量钙的反转电位,钙通道的选择性只能通过各种离子的载流能力来确定。离子通过钙通道的移动是根据外部结合位点的亲和因子和跨膜的迁移因子来描述的。钙电流的生物物理研究一直受到缺乏膜电位控制良好的标本的限制。最近,诸如分离的神经节细胞和卵细胞等球形细胞使得电压钳研究更加令人满意。然而,将钙电流与背景电流分离比分离钠电流要困难得多。这种困难是由于背景电流和钙电流之间存在多种相互关系。一般来说,改变钙电流的变化似乎也会改变背景电流。

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