首页> 美国卫生研究院文献>The Journal of Physiology >Analysis of electrical noise in turtle cones
【2h】

Analysis of electrical noise in turtle cones

机译:乌龟锥中的电噪声分析

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。

摘要

1. Properties of the light-sensitive voltage noise in cones in the retina of the turtle, Pseudemys scripta elegans, have been studied by intracellular recording.2. Suppression of the noise by light was a function of the hyperpolarizing response of a cone but not of the size or pattern of illumination.3. Power density spectra of the noise were fitted in many cones by the product of two Lorentzians with characteristic time constants τ1 and τ2 averaging 40 and 7 msec respectively. The spectra of some cells were peaked and could be fitted by a resonance curve.4. Spectra in dim light exhibited decreased low frequency power. They could often be fitted by a product of two Lorentzians using the same value of τ2 as used in darkness but decreasing τ1 and the zero frequency asymptote. An e-fold reduction in τ1 occurred with lights which hyperpolarized by 4-7 mV.5. Injection of hyperpolarizing currents of about 0·1-0·2 nA into weakly coupled cones reduced the noise, and also reduced the sensitivity to dim flashes.6. The variance-voltage relation during steady illumination of different intensities differed from cone to cone. Dim lights increased the noise in some cells and decreased it in others, but moderately bright lights which gave steady responses of more than about one third maximal reduced the noise in all cells.7. When the cell was transiently depolarized during the differentiated component following steady illumination, the noise was less than it was after prolonged darkness.8. In the after-effect of bright light, the time course of recovery of noise was the same as that of flash sensitivity and voltage. The noise was reduced e-fold for hyperpolarizations averaging 3 mV while for sensitivity this reduction occurred for 1·3 mV. For a given hyperpolarization the noise was lower during the after-effect than during steady dim illumination.9. When a series of dim flashes was delivered to a cone, no significant increase in variance over the dark noise was detected during the photo-response. This implies that each photoisomerization evokes no more than about 1·5 μV at the peak of the response in a coupled cone, corresponding to about 50 μV in an isolated cone.10. The elementary shot events underlying the noise are about 100 μV in amplitude in an isolated cone, have a characteristic time constant of 16-60 msec and reflect unit conductance fluctuations of about 16 pS (S, Siemen ≡ Ω-1).11. It is concluded that the noise source is internal to the cones. We postulate that the noise arises from opening and closing of the light-sensitive ionic channels in the outer segment, and that in darkness there is a residual concentration of the blocking substance which on average closes up to about one third of the channels. It seems likely that the unit event involves a considerable number of blocking molecules and ionic channels.
机译:1.通过细胞内记录研究了乌龟视网膜锥状锥中视锥细胞的光敏电压噪声特性。光对噪声的抑制是锥体的超极化响应的函数,而不是照明的大小或图案的函数。3。噪声的功率密度谱通过两个洛伦兹函数的乘积拟合在许多锥体中,特征时间常数τ1和τ2分别平均为40毫秒和7毫秒。一些细胞的光谱达到峰值,可以通过共振曲线拟合。4。昏暗灯光下的光谱显示出降低的低频功率。它们通常可以由两个洛伦兹乘积拟合,使用与黑暗中相同的τ2值,但减小τ1和零频率渐近线。 τ1的e倍减少是由4-7 mV.5超极化的光引起的。向弱耦合的视锥中注入大约0·1-0·2 nA的超极化电流可降低噪声,并降低对暗淡闪光的敏感性。6。不同强度的稳定照明期间的方差-电压关系因锥而异。昏暗的灯光会增加某些电池中的噪声,而降低其他电池中的噪声,但是适度明亮的灯(能提供超过三分之一的稳定响应)最大程度地降低了所有电池中的噪声。7。当细胞在稳定照明后的分化成分中短暂去极化时,其噪音要小于长时间黑暗后的噪音。8。在强光的后效应中,噪声恢复的时间过程与闪光灵敏度和电压的时间过程相同。对于平均3 mV的超极化,噪声降低了e倍,而对于灵敏度,此降低发生了1·3 mV。对于给定的超极化,后效应期间的噪声比稳定的昏暗照明下的噪声低。9。当一系列暗淡的闪光传递到视锥上时,在光响应过程中未检测到超过暗噪声的方差显着增加。这意味着每次光异构化在耦合锥中的响应峰处引发的峰均不超过约1·5μV,相当于在隔离锥中的约50μV。10。噪声中的基本发射事件在一个隔离的圆锥中振幅约为100μV,具有16-60毫秒的特征时间常数,并反映了大约16 pS的单位电导波动(S,Siemen≡Ω -1 )。11。结论是,噪声源位于锥体内部。我们假设噪声是由外部段中的光敏离子通道的打开和关闭引起的,并且在黑暗中存在封闭物质的残留浓度,该浓度平均平均最多会封闭通道的三分之一。单位事件似乎涉及大量的封闭分子和离子通道。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号