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LIM蛋白复合物通过调节Pax6α增强子活性建立视觉适应的视网膜回路。

The LIM protein complex establishes a retinal circuitry of visual adaptation by regulating Pax6 α-enhancer activity.

作者信息

Kim Yeha, Lim Soyeon, Ha Taejeong, Song You-Hyang, Sohn Young-In, Park Dae-Jin, Paik Sun-Sook, Kim-Kaneyama Joo-Ri, Song Mi-Ryoung, Leung Amanda, Levine Edward M, Kim In-Beom, Goo Yong Sook, Lee Seung-Hee, Kang Kyung Hwa, Kim Jin Woo

机构信息

Department of Biological Sciences, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, South Korea.

Department of Physiology, Chungbuk National University School of Medicine, Cheongju, South Korea.

出版信息

Elife. 2017 Jan 31;6:e21303. doi: 10.7554/eLife.21303.

Abstract

The visual responses of vertebrates are sensitive to the overall composition of retinal interneurons including amacrine cells, which tune the activity of the retinal circuitry. The expression of is regulated by multiple cis-DNA elements including the intronic α-enhancer, which is active in GABAergic amacrine cell subsets. Here, we report that the transforming growth factor ß1-induced transcript 1 protein (Tgfb1i1) interacts with the LIM domain transcription factors Lhx3 and Isl1 to inhibit the α-enhancer in the post-natal mouse retina. mice show elevated α-enhancer activity leading to overproduction of Pax6ΔPD isoform that supports the GABAergic amacrine cell fate maintenance. Consequently, the mouse retinas show a sustained light response, which becomes more transient in mice with the auto-stimulation-defective mutation. Together, we show the antagonistic regulation of the α-enhancer activity by Pax6 and the LIM protein complex is necessary for the establishment of an inner retinal circuitry, which controls visual adaptation.

摘要

脊椎动物的视觉反应对包括无长突细胞在内的视网膜中间神经元的整体组成敏感,这些细胞调节视网膜回路的活动。 的表达受多个顺式DNA元件调控,包括内含子α增强子,其在GABA能无长突细胞亚群中具有活性。在此,我们报道转化生长因子β1诱导转录物1蛋白(Tgfb1i1)与LIM结构域转录因子Lhx3和Isl1相互作用,以抑制出生后小鼠视网膜中的α增强子。 小鼠表现出α增强子活性升高,导致支持GABA能无长突细胞命运维持的Pax6ΔPD异构体过度产生。因此, 小鼠视网膜表现出持续的光反应,而在具有自刺激缺陷 突变的小鼠中,这种反应变得更加短暂。我们共同表明,Pax6和LIM蛋白复合物对α增强子活性的拮抗调节对于建立控制视觉适应的视网膜内部回路是必要的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e435/5308899/f5876b18dccb/elife-21303-fig1.jpg

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