Vielma Alex H, Agurto Adolfo, Valdés Joaquín, Palacios Adrián G, Schmachtenberg Oliver
Centro Interdisciplinario de Neurociencia de Valparaíso, Facultad de Ciencias, Universidad de Valparaíso, Valparaíso, Chile.
PLoS One. 2014 Dec 2;9(12):e114330. doi: 10.1371/journal.pone.0114330. eCollection 2014.
Nitric oxide (NO) is involved in retinal signal processing, but its cellular actions are only partly understood. An established source of retinal NO are NOACs, a group of nNOS-expressing amacrine cells which signal onto bipolar, other amacrine and ganglion cells in the inner plexiform layer. Here, we report that NO regulates glutamate responses in morphologically and electrophysiologically identified type 4 OFF cone bipolar cells through activation of the soluble guanylyl cyclase-cGMP-PKG pathway. The glutamate response of these cells consists of two components, a fast phasic current sensitive to kainate receptor agonists, and a secondary component with slow kinetics, inhibited by AMPA receptor antagonists. NO shortened the duration of the AMPA receptor-dependent component of the glutamate response, while the kainate receptor-dependent component remained unchanged. Application of 8-Br-cGMP mimicked this effect, while inhibition of soluble guanylate cyclase or protein kinase G prevented it, supporting a mechanism involving a cGMP signaling pathway. Notably, perfusion with a NOS-inhibitor prolonged the duration of the glutamate response, while the NO precursor L-arginine shortened it, in agreement with a modulation by endogenous NO. Furthermore, NO accelerated the response recovery during repeated stimulation of type 4 cone bipolar cells, suggesting that the temporal response properties of this OFF bipolar cell type are regulated by NO. These results reveal a novel cellular mechanism of NO signaling in the retina, and represent the first functional evidence of NO modulating OFF cone bipolar cells.
一氧化氮(NO)参与视网膜信号处理,但其细胞作用仅得到部分理解。视网膜NO的一个既定来源是NOACs,这是一组表达nNOS的无长突细胞,它们在内网状层向双极细胞、其他无长突细胞和神经节细胞发出信号。在此,我们报告NO通过激活可溶性鸟苷酸环化酶 - cGMP - PKG途径来调节形态学和电生理学鉴定的4型OFF视锥双极细胞中的谷氨酸反应。这些细胞的谷氨酸反应由两个成分组成,一个对海人藻酸受体激动剂敏感的快速相位电流,以及一个动力学缓慢的次要成分,被AMPA受体拮抗剂抑制。NO缩短了谷氨酸反应中依赖AMPA受体的成分的持续时间,而依赖海人藻酸受体的成分保持不变。应用8 - Br - cGMP模拟了这种效应,而抑制可溶性鸟苷酸环化酶或蛋白激酶G则阻止了这种效应,支持了一种涉及cGMP信号通路的机制。值得注意的是,用一氧化氮合酶抑制剂灌注会延长谷氨酸反应的持续时间,而NO前体L - 精氨酸则会缩短它,这与内源性NO的调节作用一致。此外,NO加速了4型视锥双极细胞重复刺激期间的反应恢复,表明这种OFF双极细胞类型的时间反应特性受NO调节。这些结果揭示了视网膜中NO信号传导的一种新的细胞机制,并代表了NO调节OFF视锥双极细胞的首个功能证据。