Thyroid hormone receptors mediate two distinct mechanisms of long-wavelength vision

生物 视蛋白 视网膜 核受体 细胞生物学 甲状腺 受体 视网膜色素上皮 视网膜 内分泌学 内科学 转录因子 遗传学 基因 神经科学 生物化学 视紫红质 医学
作者
Leo Volkov,Jeong Sook Kim‐Han,Lauren M. Saunders,Deepak Poria,Andrew Hughes,Vladimir J. Kefalov,David M. Parichy,Joseph C. Corbo
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [Proceedings of the National Academy of Sciences]
卷期号:117 (26): 15262-15269 被引量:65
标识
DOI:10.1073/pnas.1920086117
摘要

Thyroid hormone (TH) signaling plays an important role in the regulation of long-wavelength vision in vertebrates. In the retina, thyroid hormone receptor β ( thrb ) is required for expression of long-wavelength-sensitive opsin ( lws ) in red cone photoreceptors, while in retinal pigment epithelium (RPE), TH regulates expression of a cytochrome P450 enzyme, cyp27c1 , that converts vitamin A 1 into vitamin A 2 to produce a red-shifted chromophore. To better understand how TH controls these processes, we analyzed the phenotype of zebrafish with mutations in the three known TH nuclear receptor transcription factors ( thraa , thrab , and thrb ). We found that no single TH nuclear receptor is required for TH-mediated induction of cyp27c1 but that deletion of all three ( thraa −/− ;thrab −/− ;thrb −/− ) completely abrogates its induction and the resulting conversion of A 1 - to A 2 -based retinoids. In the retina, loss of thrb resulted in an absence of red cones at both larval and adult stages without disruption of the underlying cone mosaic. RNA-sequencing analysis revealed significant down-regulation of only five genes in adult thrb −/− retina, of which three ( lws1 , lws2 , and miR-726 ) occur in a single syntenic cluster. In the thrb −/− retina, retinal progenitors destined to become red cones were transfated into ultraviolet (UV) cones and horizontal cells. Taken together, our findings demonstrate cooperative regulation of cyp27c1 by TH receptors and a requirement for thrb in red cone fate determination. Thus, TH signaling coordinately regulates both spectral sensitivity and sensory plasticity.
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