A novel Ca2+-feedback mechanism extends the operating range of mammalian rods to brighter light.

Frans Vinberg, Teemu T Turunen, Hanna Heikkinen, Marja Pitkänen, Ari Koskelainen
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引用次数: 14

Abstract

Sensory cells adjust their sensitivity to incoming signals, such as odor or light, in response to changes in background stimulation, thereby extending the range over which they operate. For instance, rod photoreceptors are extremely sensitive in darkness, so that they are able to detect individual photons, but remain responsive to visual stimuli under conditions of bright ambient light, which would be expected to saturate their response given the high gain of the rod transduction cascade in darkness. These photoreceptors regulate their sensitivity to light rapidly and reversibly in response to changes in ambient illumination, thereby avoiding saturation. Calcium ions (Ca2+) play a major role in mediating the rapid, subsecond adaptation to light, and the Ca2+-binding proteins GCAP1 and GCAP2 (or guanylyl cyclase-activating proteins [GCAPs]) have been identified as important mediators of the photoreceptor response to changes in intracellular Ca2+. However, mouse rods lacking both GCAP1 and GCAP2 (GCAP-/-) still show substantial light adaptation. Here, we determined the Ca2+ dependency of this residual light adaptation and, by combining pharmacological, genetic, and electrophysiological tools, showed that an unknown Ca2+-dependent mechanism contributes to light adaptation in GCAP-/- mouse rods. We found that mimicking the light-induced decrease in intracellular [Ca2+] accelerated recovery of the response to visual stimuli and caused a fourfold decrease of sensitivity in GCAP-/- rods. About half of this Ca2+-dependent regulation of sensitivity could be attributed to the recoverin-mediated pathway, whereas half of it was caused by the unknown mechanism. Furthermore, our data demonstrate that the feedback mechanisms regulating the sensitivity of mammalian rods on the second and subsecond time scales are all Ca2+ dependent and that, unlike salamander rods, Ca2+-independent background-induced acceleration of flash response kinetics is rather weak in mouse rods.

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Abstract Image

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一种新的Ca2+反馈机制将哺乳动物视杆细胞的操作范围扩展到更亮的光。
感觉细胞根据背景刺激的变化调整它们对输入信号(如气味或光线)的敏感度,从而扩大它们的工作范围。例如,杆状光感受器在黑暗中非常敏感,因此它们能够检测到单个光子,但在明亮的环境光条件下仍对视觉刺激做出反应,这将使它们的反应饱和,因为在黑暗中杆状转导级联具有高增益。这些光感受器根据环境光照的变化快速、可逆地调节其对光的敏感性,从而避免饱和。钙离子(Ca2+)在介导对光的快速亚秒适应中起主要作用,Ca2+结合蛋白GCAP1和GCAP2(或guanyyl环化酶激活蛋白[GCAPs])已被确定为光感受器对细胞内Ca2+变化反应的重要介质。然而,缺乏GCAP1和GCAP2 (GCAP-/-)的小鼠棒仍然表现出大量的光适应。在这里,我们确定了这种残余光适应的Ca2+依赖性,并通过结合药理学,遗传学和电生理工具,表明一种未知的Ca2+依赖机制有助于GCAP-/-小鼠棒的光适应。我们发现,模拟光诱导的细胞内[Ca2+]的减少加速了对视觉刺激反应的恢复,并导致GCAP-/-杆的敏感性降低了四倍。大约一半的Ca2+依赖性的敏感性调节可以归因于恢复介导的途径,而一半是由未知的机制引起的。此外,我们的数据表明,调节哺乳动物杆在秒和亚秒时间尺度上的敏感性的反馈机制都是Ca2+依赖的,并且,与蝾螈杆不同,Ca2+独立背景诱导的闪光反应动力学加速在小鼠杆中相当弱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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