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缺氧对猫视网膜电图直流成分的影响机制。

Mechanisms of hypoxic effects on the cat DC electroretinogram.

作者信息

Linsenmeier R A, Steinberg R H

出版信息

Invest Ophthalmol Vis Sci. 1986 Sep;27(9):1385-94.

PMID:3744728
Abstract

Mild hypoxia elevates the standing potential and alters three slow components of the DC electroretinogram in the cat: the c-wave, the fast-oscillation trough, and the light peak. This paper considers the cellular mechanisms of these effects. Elevation of the standing potential results from a depolarization of the basal membrane of retinal pigment epithelial (RPE) cells. The depolarization is indirectly initiated by an elevation of [K+]0 in the subretinal space during hypoxia, and is accompanied by a decrease in basal membrane resistance that leads to an increase in the c-wave. There is also some evidence that hypoxia may alter the standing potential by directly affecting the basal membrane of the RPE. The fast-oscillation trough, which follows the c-wave when illumination is maintained, deepens during hypoxia. This is caused primarily by an increase in the amplitude of the delayed hyperpolarization of the RPE basal membrane that results from a slowing of the rate of recovery of light-evoked [K+]0 during hypoxia. The changes in [K+]0 probably result, in turn, from a decrease in the rate of the photoreceptors' Na+/K+ pump. The light peak's amplitude is reduced during hypoxia and its time-to-peak is lengthened, and this may be related to a change in photoreceptor metabolism that is distinct from the effect on the Na+/K+ pump. Knowledge of these mechanisms may eventually enhance the clinical usefulness of the standing potential and the c-wave, fast-oscillation, and light peak.

摘要

轻度缺氧会提高猫的静息电位,并改变直流视网膜电图的三个慢成分:c波、快速振荡波谷和光峰。本文探讨了这些效应的细胞机制。静息电位的升高是由于视网膜色素上皮(RPE)细胞基底膜的去极化所致。这种去极化是由缺氧期间视网膜下间隙中[K+]0升高间接引发的,并伴随着基底膜电阻的降低,从而导致c波增大。也有一些证据表明,缺氧可能通过直接影响RPE的基底膜来改变静息电位。在持续光照时跟随c波出现的快速振荡波谷,在缺氧期间会加深。这主要是由于缺氧期间光诱发的[K+]0恢复速率减慢,导致RPE基底膜延迟超极化的幅度增加所致。[K+]0的变化可能反过来是由于光感受器Na+/K+泵的速率降低。缺氧期间光峰的幅度降低,其峰值时间延长,这可能与光感受器代谢的变化有关,这种变化与对Na+/K+泵的影响不同。了解这些机制最终可能会提高静息电位以及c波、快速振荡和光峰在临床上的应用价值。

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