首页> 美国卫生研究院文献>The Journal of General Physiology >Differences in calcium homeostasis between retinal rod and cone photoreceptors revealed by the effects of voltage on the cGMP-gated conductance in intact cells
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Differences in calcium homeostasis between retinal rod and cone photoreceptors revealed by the effects of voltage on the cGMP-gated conductance in intact cells

机译:电压对完整细胞cGMP门控电导的影响揭示了视网膜视杆和视锥光感受器之间钙稳态的差异

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摘要

We measured currents under voltage clamp in intact retinal rod photoreceptors with tight seal electrodes in the perforated patch mode. In the dark, membrane depolarization to voltages > or = +20 mV activates a time- and voltage-dependent outward current in the outer segment. This dark voltage-activated current (DVAC) increases in amplitude with a sigmoidal time course that is voltage dependent. DVAC reaches its maximum enhancement of approximately 30% in 4-6 s at +60 mV. DVAC is entirely suppressed by light and its current-voltage curve and reversal potential are the same as those of the photocurrent. Therefore, DVAC arises from the opening in darkness of the cGMP-gated channels of the outer segment. DVAC is blocked by BAPTA loaded into the cell's cytoplasm and is enhanced by lowering extracellular Ca2+ concentration. Because the cGMP-gated channels are not directly gated by voltage and because BAPTA blocks DVAC, we suggest this signal arises from a voltage-dependent decrease in cytoplasmic Ca2+ concentration that, in turn, activates guanylyl cyclase and causes cGMP synthesis. In rods loaded with high cytoplasmic Na+, membrane depolarization in darkness to voltages > or = +20 mV inactivates the outward current in the outer segment with an exponential time course. We call this DVIC (dark, voltage-inactivated current). DVIC reflects voltage-dependent closing of the cGMP-gated channel in the dark. DVIC, too, is blocked by cytoplasmic BAPTA, and it arises from a voltage-dependent rise in cytoplasmic Ca2+ in darkness, which occurs only if cytoplasmic Na is high. We develop a quantitative model to calculate the rate and extent of the voltage-dependent change in cytoplasmic Ca2+ concentration in a normal rod. We assume that this concentration is controlled by the balance between Ca2+ influx through the cGMP-gated channels and its efflux through a Na+/Ca2+, K+ exchanger. Lowered cytoplasmic Ca2+ is linked to guanylyl cyclase activation with characteristics determined from biochemical studies. The model considers the cytoplasmic buffering of both Ca2+ and cGMP. Simulated data generated by the model fit well DVAC measured in rods and also DVAC previously measured in cones. DVAC in cones is larger in magnitude and faster in time course than that in rods. The successful fit of DVAC by the model leads us to suggest that the activity and Ca2+ dependence of the enzymes of transduction are not different in rods and cones, but the quantitative features of Ca2+ homeostasis in the outer segment of the two receptor types differ profoundly.(ABSTRACT TRUNCATED AT 400 WORDS)
机译:我们在完整的视网膜棒感光器中,在带有紧密密封电极的穿孔贴片模式下,在电压钳下测量电流。在黑暗中,膜去极化至电压>或= +20 mV会激活外部段中与时间和电压相关的向外电流。该暗电压激活电流(DVAC)的幅度随电压变化的S型时间过程而增加。 DVAC在+60 mV下的4-6 s内达到其最大增强约30%。 DVAC完全被光抑制,其电流-电压曲线和反向电势与光电流相同。因此,DVAC是由于外部段的cGMP门控通道在黑暗中打开而引起的。 DVAC被加载到细胞质中的BAPTA阻断,并通过降低细胞外Ca2 +浓度而增强。由于cGMP门控通道不直接受电压控制,并且BAPTA阻断DVAC,因此我们建议此信号源自细胞浆中Ca2 +浓度的电压依赖性降低,进而激活鸟苷酸环化酶并引起cGMP合成。在载有高细胞质Na +的棒中,膜在黑暗中去极化至电压>或= +20 mV时,会以指数的时程使外部段的向外电流失活。我们称此为DVIC(暗电压失活电流)。 DVIC反映了黑暗中cGMP门控通道的电压依赖性关闭。 DVIC也被细胞质BAPTA阻断,它是由黑暗中细胞质Ca2 +的电压依赖性升高引起的,仅当细胞质Na高时才会发生。我们开发了一个定量模型来计算正常棒中细胞质Ca2 +浓度的电压依赖性变化的速率和程度。我们假设该浓度受通过cGMP门控通道的Ca2 +流入量与通过Na + / Ca2 +,K +交换剂的流出量之间的平衡控制。降低的细胞质Ca2 +与鸟苷酸环化酶激活相关联,其特征是根据生化研究确定的。该模型考虑了Ca2 +和cGMP的胞质缓冲作用。该模型生成的模拟数据非常适合用棒测量的DVAC,也适合以前用锥体测量的DVAC。圆锥形中的DVAC比杆状中的DVAC更大,并且时程更快。通过模型对DVAC的成功拟合,我们认为杆和视锥细胞中转导酶的活性和Ca2 +依赖性没有差异,但是两种受体类型的外部片段中Ca2 +稳态的定量特征差异很大。 (摘要以400字截断)

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