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Insulation of the conduction pathway of muscle transverse tubule calcium channels from the surface charge of bilayer phospholipid

机译:从双层磷脂的表面电荷中隔离出肌肉横向小管钙通道的传导途径

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摘要

Functional calcium channels present in purified skeletal muscle transverse tubules were inserted into planar phospholipid bilayers composed of the neutral lipid phosphatidylethanolamine (PE), the negatively charged lipid phosphatidylserine (PS), and mixtures of both. The lengthening of the mean open time and stabilization of single channel fluctuations under constant holding potentials was accomplished by the use of the agonist Bay K8644. It was found that the barium current carried through the channel saturates as a function of the BaCl2 concentration at a maximum current of 0.6 pA (at a holding potential of 0 mV) and a half-saturation value of 40 mM. Under saturation, the slope conductance of the channel is 20 pS at voltages more negative than -50 mV and 13 pS at a holding potential of 0 mV. At barium concentrations above and below the half-saturation point, the open channel currents were independent of the bilayer mole fraction of PS from XPS = 0 (pure PE) to XPS = 1.0 (pure PS). It is shown that in the absence of barium, the calcium channel transports sodium or potassium ions (P Na/PK = 1.4) at saturating rates higher than those for barium alone. The sodium conductance in pure PE bilayers saturates as a function of NaCl concentration, following a curve that can be described as a rectangular hyperbola with a half-saturation value of 200 mM and a maximum conductance of 68 pS (slope conductance at a holding potential of 0 mV). In pure PS bilayers, the sodium conductance is about twice that measured in PE at concentrations below 100 mM NaCl. The maximum channel conductance at high ionic strength is unaffected by the lipid charge. This effect at low ionic strength was analyzed according to J. Bell and C. Miller (1984. Biophysical Journal. 45:279- 287) and interpreted as if the conduction pathway of the calcium channel were separated from the bilayer lipid by approximately 20 A. This distance thereby effectively insulates the ion entry to the channel from the bulk of the bilayer lipid surface charge. Current vs. voltage curves measured in NaCl in pure PE and pure PS show that similarly small surface charge effects are present in both inward and outward currents. This suggests that the same conduction insulation is present at both ends of the calcium channel.
机译:将存在于纯化的骨骼肌横小管中的功能性钙通道插入由中性脂质磷脂酰乙醇胺(PE),带负电荷的脂质磷脂酰丝氨酸(PS)以及两者的混合物组成的平面磷脂双层中。通过使用激动剂Bay K8644,可以延长平均打开时间并在恒定保持电势下稳定单通道波动。发现在最大电流为0.6 pA(保持电势为0 mV)和半饱和值为40 mM时,通过通道的钡电流根据BaCl2浓度而饱和。在饱和状态下,电压比-50 mV负电时,通道的斜率电导为20 pS,在保持电势为0 mV时为13 pS。在钡浓度高于和低于半饱和点时,明渠电流与PS的双层摩尔分数无关,从XPS = 0(纯PE)到XPS = 1.0(纯PS)。结果表明,在不存在钡的情况下,钙通道以比单独使用钡时更高的饱和速率传输钠或钾离子(P Na / PK = 1.4)。纯PE双层中的钠电导随NaCl浓度的变化而饱和,其曲线可描述为半饱和度值为200 mM,最大电导为68 pS的矩形双曲线(保持电势为0 mV)。在纯PS双层中,钠电导约为浓度低于100 mM NaCl的PE中测得的两倍。高离子强度下的最大通道电导不受脂质电荷的影响。根据J. Bell和C. Miller(1984. Biophysical Journal。45:279-287)分析了低离子强度下的这种作用,并解释为钙通道的传导途径与双层脂质之间的距离约为20A。因此,该距离有效地使离子进入通道与大部分双层脂质表面电荷隔离。在纯PE和纯PS中,在NaCl中测得的电流与电压的关系曲线表明,在流入和流出电流中同样存在较小的表面电荷效应。这表明在钙通道的两端存在相同的传导绝缘。

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