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人类视杆光感受器中的视觉转导。

Visual transduction in human rod photoreceptors.

作者信息

Kraft T W, Schneeweis D M, Schnapf J L

机构信息

Department of Ophthalmology, University of California, San Francisco 94143-0730.

出版信息

J Physiol. 1993 May;464:747-65. doi: 10.1113/jphysiol.1993.sp019661.

Abstract
  1. Photocurrents were recorded with suction electrodes from rod photoreceptors of seven humans. 2. Brief flashes of light evoked transient outward currents of up to 20 pA. With increasing light intensity the peak response amplitude increased along an exponential saturation function. A half-saturating peak response was evoked by approximately sixty-five photoisomerizations. 3. Responses to brief dim flashes rose to a peak in about 200 ms. The waveform was roughly like the impulse response of a series of four to five low-pass filters. 4. The rising phases of the responses to flashes of increasing strength were found to fit with a biochemical model of phototransduction with an 'effective delay time' and 'characteristic time' of about 2 and 800 ms, respectively. 5. Spectral sensitivities were obtained over a wavelength range from 380 to 760 nm. The action spectrum, which peaked at 495 nm, followed the template described for photoreceptors in the macaque retina. Variation between rods in the position of the spectrum on the wavelength axis was small. 6. The scotopic luminosity function derived from human psychophysical experiments was found to agree well with the measured rod action spectrum after adjustments were made for lens absorption and photopigment self-screening in the intact eye. 7. Responses to steps of light rose monotonically to a maintained level, showing little or no relaxation. Nevertheless, the relationship between light intensity and steady-state response amplitude was shallower than that expected from simple response saturation. This is consistent with an adaptation mechanism acting on a rapid time scale. 8. Flash sensitivity fell with increasing intensities of background light according to Weber's law. Sensitivity was reduced twofold by lights evoking about 120 photoisomerizations per second. Background lights decreased the time to peak and the integration time of the flash response by up to 20%.
摘要
  1. 用吸力电极从7名人类的视杆光感受器记录光电流。2. 短暂的闪光诱发了高达20 pA的瞬态外向电流。随着光强度增加,峰值响应幅度沿指数饱和函数增加。约65次光异构化诱发了半饱和峰值响应。3. 对短暂暗光闪光的响应在约200毫秒内升至峰值。波形大致类似于一系列四到五个低通滤波器的脉冲响应。4. 发现对强度增加的闪光的响应上升阶段符合光转导的生化模型,其“有效延迟时间”和“特征时间”分别约为2毫秒和800毫秒。5. 在380至760纳米的波长范围内获得光谱敏感度。在495纳米处达到峰值的作用光谱遵循猕猴视网膜中光感受器所描述的模板。视杆之间光谱在波长轴上位置的变化很小。6. 发现源自人类心理物理学实验的暗视觉光度函数在对完整眼睛中的晶状体吸收和光色素自屏蔽进行调整后与测量的视杆作用光谱非常吻合。7. 对光阶跃的响应单调上升至维持水平,几乎没有或没有松弛。然而,光强度与稳态响应幅度之间的关系比简单响应饱和预期的要浅。这与在快速时间尺度上起作用的适应机制一致。8. 根据韦伯定律,闪光敏感度随着背景光强度增加而下降。每秒诱发约120次光异构化的光使敏感度降低两倍。背景光将闪光响应的峰值时间和积分时间最多减少20%。

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Visual transduction in human rod photoreceptors.人类视杆光感受器中的视觉转导。
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