Department of Biomedical Engineering, Northwestern University, Evanston, Illinois.
Department of Neurobiology, Northwestern University, Evanston, Illinois.
Vis Neurosci. 2021 Jul 23;38:E010. doi: 10.1017/S0952523821000092.
The electroretinogram (ERG) has been employed for years to collect information about retinal function and pathology. The usefulness of this noninvasive test depends on our understanding of the cell sources that generate the ERG. Important contributors to the ERG are glial Müller cells (MCs), which are capable of generating substantial transretinal potentials in response to light-induced changes in extracellular K+ concentration ([K+]o). For instance, the MCs generate the slow PIII (sPIII) component of the ERG as a reaction to a photoreceptor-induced [K+]o decrease in the subretinal space. Similarly, an increase of [K+]o related to activity of postreceptor retinal neurons also produces transretinal glial currents, which can potentially influence the amplitude and shape of the b-wave, one of the most frequently analyzed ERG components. Although it is well documented that the majority of the b-wave originates from On-bipolar cells, some contribution from MCs was suggested many years ago and has never been experimentally rejected. In this work, detailed information about light-evoked [K+]o changes in the isolated mouse retina was collected and then analyzed with a relatively simple linear electrical model of MCs. The results demonstrate that the cornea-positive potential generated by MCs is too small to contribute noticeably to the b-wave. The analysis also explains why MCs produce the large cornea-negative sPIII subcomponent of the ERG, but no substantial cornea-positive potential.
视网膜电图 (ERG) 多年来一直被用于收集有关视网膜功能和病理学的信息。这种非侵入性测试的有用性取决于我们对产生 ERG 的细胞来源的理解。对 ERG 有重要贡献的是神经胶质细胞 Müller(MC),它们能够在细胞外钾浓度 ([K+]o) 发生光诱导变化时产生可观的跨视网膜电位。例如,MC 会产生 ERG 的慢 PIII (sPIII) 成分,作为光感受器诱导的视网膜下空间 [K+]o 减少的反应。同样,与后受体视网膜神经元活动相关的 [K+]o 增加也会产生跨视网膜胶质电流,这可能会影响 b 波的幅度和形状,b 波是最常分析的 ERG 成分之一。尽管有大量文献证明大多数 b 波起源于 On-双极细胞,但多年前就有人提出了 MC 有一定的贡献,并且从未被实验否定过。在这项工作中,收集了关于分离的小鼠视网膜中光诱导的 [K+]o 变化的详细信息,然后使用 MCs 的相对简单的线性电模型对其进行了分析。结果表明,MC 产生的角膜正电势太小,不足以对 b 波产生明显的贡献。该分析还解释了为什么 MC 会产生 ERG 的大角膜负 sPIII 子成分,但没有明显的角膜正电势。