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本文引用的文献

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J Opt Soc Am. 1958 Nov;48(11):777-84. doi: 10.1364/josa.48.000777.
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J Comp Neurol. 1998 Sep 7;398(4):529-38.
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Light-induced modulation of coupling between AII amacrine cells in the rabbit retina.光诱导对兔视网膜中AII无长突细胞间耦合的调节作用。
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Neuronal coupling in rod-signal pathways of the retina.视网膜视杆信号通路中的神经元耦合
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Molecular origin of continuous dark noise in rod photoreceptors.视杆光感受器中持续暗噪声的分子起源
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Link-specific adaptation in the luminance and chromatic channels.亮度和色度通道中的特定链接适应。
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Dopamine D1 receptors facilitate transmitter release.多巴胺D1受体促进神经递质释放。
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Human cone receptor activity: the leading edge of the a-wave and models of receptor activity.人类视锥细胞受体活性:a波的前沿与受体活性模型
Vis Neurosci. 1993 Sep-Oct;10(5):857-71. doi: 10.1017/s0952523800006076.
10
Photovoltage of rods and cones in the macaque retina.猕猴视网膜中视杆细胞和视锥细胞的光电压。
Science. 1995 May 19;268(5213):1053-6. doi: 10.1126/science.7754386.

猕猴视锥光感受器的光电压:适应性、噪声和动力学。

The photovoltage of macaque cone photoreceptors: adaptation, noise, and kinetics.

作者信息

Schneeweis D M, Schnapf J L

机构信息

Departments of Ophthalmology and Physiology, University of California, San Francisco, California 94143-0730, USA.

出版信息

J Neurosci. 1999 Feb 15;19(4):1203-16. doi: 10.1523/JNEUROSCI.19-04-01203.1999.

DOI:10.1523/JNEUROSCI.19-04-01203.1999
PMID:9952398
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6786037/
Abstract

Whole-cell voltage and current recordings were obtained from red and green cone photoreceptors in isolated retina from macaque monkey. It was demonstrated previously that the cone photovoltage is generated from two sources, phototransduction current in the cone outer segment and photocurrent from neighboring rods. Rod signals are likely transmitted to cones across the gap junctions between rods and cones. In this study, the "pure" cone and rod components of the response were extracted with rod-adapting backgrounds or by subtracting the responses to flashes of different wavelength equated in their excitation of either rods or cones. For dim flashes, the pure cone component was similar in waveform to the cone outer segment current, and the rod component was similar to the photovoltage measured directly in rods. With bright flashes, the high frequencies of the rod signal were filtered out by the rod/cone network. The two components of the cone photovoltage adapted separately to background illumination. The amplitude of the rod component was halved by backgrounds eliciting approximately 100 photoisomerizations sec-1 per rod; the cone component was halved by backgrounds of 8700 photoisomerizations sec-1 per cone. Coupling between rods and cones was not modulated by either dim backgrounds or dopamine. Voltage noise in dark-adapted cones was dominated by elementary events other than photopigment isomerizations. The dark noise was equivalent in magnitude to a steady light eliciting approximately 3800 photoisomerizations sec-1 per cone, a value significantly higher than the psychophysical estimates of cone "dark light."

摘要

全细胞电压和电流记录是从猕猴分离视网膜中的红锥和绿锥光感受器获得的。先前已证明,锥光电压由两个来源产生,即锥外段的光转导电流和相邻视杆细胞的光电流。视杆信号可能通过视杆与视锥之间的缝隙连接传递给视锥。在本研究中,通过视杆适应背景或减去对不同波长闪光的反应(这些闪光在视杆或视锥的激发上相等)来提取反应的“纯”视锥和视杆成分。对于暗光闪光,纯视锥成分的波形与视锥外段电流相似,视杆成分与直接在视杆中测量的光电压相似。对于强光闪光,视杆信号的高频被视杆/视锥网络滤除。视锥光电压的两个成分分别适应背景照明。视杆成分的幅度在每根视杆每秒约100次光异构化的背景下减半;视锥成分在每根视锥每秒8700次光异构化的背景下减半。视杆与视锥之间的耦合不受暗光背景或多巴胺的调节。暗适应视锥中的电压噪声主要由除光色素异构化之外的基本事件主导。暗噪声的大小相当于每根视锥每秒约3800次光异构化的稳定光,该值明显高于视锥“暗光”的心理物理学估计值。