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Transient release kinetics of rod bipolar cells revealed by capacitance measurement of exocytosis from axon terminals in rat retinal slices

机译:通过电容测量大鼠视网膜切片轴突末端胞吐作用揭示杆状双极细胞的瞬时释放动力学

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摘要

Presynaptic transmitter release has mostly been studied through measurements of postsynaptic responses, but a few synapses offer direct access to the presynaptic terminal, thereby allowing capacitance measurements of exocytosis. For mammalian rod bipolar cells, synaptic transmission has been investigated in great detail by recording postsynaptic currents in AII amacrine cells. Presynaptic measurements of the dynamics of vesicular cycling have so far been limited to isolated rod bipolar cells in dissociated preparations. Here, we first used computer simulations of compartmental models of morphologically reconstructed rod bipolar cells to adapt the ‘Sine + DC’ technique for capacitance measurements of exocytosis at axon terminals of intact rod bipolar cells in retinal slices. In subsequent physiological recordings, voltage pulses that triggered presynaptic Ca2+ influx evoked capacitance increases that were proportional to the pulse duration. With pulse durations ≤100 ms, the increase saturated at ∼10 fF, corresponding to the size of a readily releasable pool of vesicles. Pulse durations ≥400 ms evoked additional capacitance increases, probably reflecting recruitment from additional pools of vesicles. By using Ca2+ tail current stimuli, we separated Ca2+ influx from Ca2+ channel activation kinetics, allowing us to estimate the intrinsic release kinetics of the readily releasable pool, yielding a time constant of ∼1.1 ms and a maximum release rate of 2–3 vesicles (release site)−1 ms−1. Following exocytosis, we observed endocytosis with time constants ranging from 0.7 to 17 s. Under physiological conditions, it is likely that release will be transient, with the kinetics limited by the activation kinetics of the voltage-gated Ca2+ channels.
机译:突触前递质的释放主要是通过测量突触后反应来研究的,但是一些突触可直接进入突触前末端,从而可以进行胞吐作用的电容测量。对于哺乳动物杆状双极细胞,已通过记录AII无长突细胞中突触后电流对突触传递进行了详细研究。迄今为止,囊泡循环动力学的突触前测量仅限于分离制剂中分离的杆状双极细胞。在这里,我们首先使用计算机模拟的形态重建杆双极细胞的隔室模型,以适应“ Sine + DC”技术对视网膜切片中完整杆双极细胞轴突末端胞吐作用的电容测量。在随后的生理记录中,触发突触前Ca 2 + 流入诱发的电容的电压脉冲增加,与脉冲持续时间成正比。在脉冲持续时间≤100ms的情况下,增加量在〜10 fF处达到饱和,对应于易于释放的囊泡池的大小。脉冲持续时间≥400ms会引起额外的电容增加,这可能反映了从额外的囊泡池中募集。通过使用Ca 2 + 尾电流刺激,我们从Ca 2 + 通道激活动力学中分离了Ca 2 + 内流,从而可以估算内在的释放易于释放池的动力学,产生约1.1毫秒的时间常数,最大释放速率为2–3个囊泡(释放部位) -1 ms -1 。胞吐作用后,我们观察到内吞作用的时间常数为0.7至17 s。在生理条件下,释放可能是短暂的,其动力学受电压门控Ca 2 + 通道的激活动力学的限制。

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