在视网膜内神经元中,光感受器激活可驱动即早基因Egr1的表达

IF 2.7 2区 医学 Q1 OPHTHALMOLOGY
Luca Merolla , Marijana Samardzija , Corinne Kostic , Christian Grimm
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引用次数: 0

摘要

即早基因早期生长反应-1 (Egr1)编码一种锌指转录因子,其功能取决于组织和刺激,包括光。在视网膜中,Egr1的表达经常在病理背景下被报道,但其生理调控和功能仍然知之甚少。在这里,我们使用免疫荧光和实时PCR对野生型和四种杆状和/或锥状视觉受损的突变小鼠品系进行检测,以确定光照后激活视网膜内神经元中Egr1表达的信号的细胞来源。我们发现,生理光在野生型小鼠和没有杆状细胞但完整锥体功能的小鼠的双极细胞、无腺细胞和神经节细胞亚群中强烈诱导EGR1表达。当视锥细胞功能受损或缺失时,EGR1表达的诱导严重减少,但并非完全缺失,这表明视杆细胞也参与向下游神经元传递信号。只有当视杆和视锥功能缺失时,光才不能激活视网膜内神经元中的EGR1表达。值得注意的是,m ller胶质细胞和水平细胞缺乏光激活的EGR1表达。我们的研究结果表明,光诱导的视网膜内神经元中的EGR1表达主要是锥体驱动的。EGR1在光照下广泛但细胞类型特异性的表达模式表明该转录因子可能在视网膜内细胞适应环境条件中发挥作用。我们的数据为进一步探索光诱导视网膜内神经元中EGR1激活的分子信号级联以及研究这种反应对视网膜生理学的意义提供了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Photoreceptor activation drives the expression of the immediate-early gene Egr1 in inner retinal neurons
The immediate-early gene early growth response-1 (Egr1) encodes a zinc finger transcription factor with diverse functions depending on tissue and stimulus, including light. In the retina, Egr1 expression has been often reported in pathological contexts, but its physiological regulation and function remain poorly understood. Here, we used immunofluorescence and real time PCR in wild type and four mutant mouse strains with impaired rod and/or cone vision to determine the cellular origin of the signal that activates Egr1 expression in inner retinal neurons after light onset. We show that physiological light robustly induced EGR1 expression in subsets of bipolar, amacrine, and ganglion cells in wild type mice and mice without rod but intact cone function. When cone function was impaired or lacking, induction of EGR1 expression was severely reduced but not absent, indicating that rods also contributed to signalling to downstream neurons. Only when both rod and cone function were absent did light fail to activate EGR1 expression in inner retinal neurons. Notably, Müller glia and horizontal cells lacked light-activated EGR1 expression. Our results suggest that light-induced EGR1 expression in inner retinal neurons is predominantly cone-driven. The widespread yet cell type-specific expression pattern of EGR1 in light indicates that the transcription factor may play a role in adapting inner retinal cells to environmental conditions. Our data provide the basis to further explore the molecular signalling cascades underlying light-induced EGR1 activation in inner retinal neurons and to study the significance of this response for retinal physiology.
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来源期刊
Experimental eye research
Experimental eye research 医学-眼科学
CiteScore
6.80
自引率
5.90%
发文量
323
审稿时长
66 days
期刊介绍: The primary goal of Experimental Eye Research is to publish original research papers on all aspects of experimental biology of the eye and ocular tissues that seek to define the mechanisms of normal function and/or disease. Studies of ocular tissues that encompass the disciplines of cell biology, developmental biology, genetics, molecular biology, physiology, biochemistry, biophysics, immunology or microbiology are most welcomed. Manuscripts that are purely clinical or in a surgical area of ophthalmology are not appropriate for submission to Experimental Eye Research and if received will be returned without review.
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