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Retinoids in the visual cycle: role of the retinal G protein-coupled receptor

机译:视觉循环中的类视黄曲面:视网膜G蛋白偶联受体的作用

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摘要

Driven by the energy of a photon, the visual pigments in rod and cone photoreceptor cells isomerize 11-cis-retinal to the all-trans configuration. This photochemical reaction initiates the signal transduction pathway that eventually leads to the transmission of a visual signal to the brain and leaves the opsins insensitive to further light stimulation. For the eye to restore light sensitivity, opsins require recharging with 11-cis-retinal. This trans-cis back conversion is achieved through a series of enzymatic reactions composing the retinoid (visual) cycle. Although it is evident that the classical retinoid cycle is critical for vision, the existence of an adjunct pathway for 11-cis-retinal regeneration has been debated for many years. Retinal pigment epithelium (RPE)-retinal G protein-coupled receptor (RGR) has been identified previously as a mammalian retinaldehyde photoisomerase homologous to retinochrome found in invertebrates. Using pharmacological, genetic, and biochemical approaches, researchers have now established the physiological relevance of the RGR in 11-cis-retinal regeneration. The photoisomerase activity of RGR in the RPE and Müller glia explains how the eye can remain responsive in daylight. In this review, we will focus on retinoid metabolism in the eye and visual chromophore regeneration mediated by RGR.
机译:由光子的能量驱动,杆和锥形光感受器细胞的视觉颜料异构化11-CIS-视网膜。该光化学反应引发了信号转导途径,最终导致对大脑的视觉信号传递,并使OPSINS不敏感以进一步的光刺激。为了恢复光敏感性,OPSINS需要用11-CIS-视网膜充电。该反式CIS回转换是通过构成类视黄醇(视觉)循环的一系列酶反应来实现的。尽管显而易见的是,经典的类视网膜循环对于视觉至关重要,但是对于11-CIS-视网膜再生的辅助途径已经争论多年。先前作为在无脊椎动物中发现的视网膜中发现的哺乳动物黄酮醛光偏析酶,已经鉴定了视网膜色素上皮(RPE)-Retinal G蛋白偶联受体(RGR)。使用药理学,遗传和生化方法,研究人员现在已经建立了RGR在11-CIS-视网膜再生中的生理相关性。 RPE和MüllerGlia中RGR的光硅酸酶活性解释了在白天的眼睛如何保持响应。在本综述中,我们将专注于RGR介导的眼睛和视觉发色团再生中的类视黄醇代谢。

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