Cis-regulatory analysis of Onecut1 expression in fate-restricted retinal progenitor cells.

IF 4 3区 生物学 Q1 DEVELOPMENTAL BIOLOGY
Sruti Patoori, Nathalie Jean-Charles, Ariana Gopal, Sacha Sulaiman, Sneha Gopal, Brian Wang, Benjamin Souferi, Mark M Emerson
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引用次数: 12

Abstract

Background: The vertebrate retina consists of six major classes of neuronal cells. During development, these cells are generated from a pool of multipotent retinal progenitor cells (RPCs) that express the gene Vsx2. Fate-restricted RPCs have recently been identified, with limited mitotic potential and cell fate possibilities compared to multipotent RPCs. One population of fate-restricted RPCs, marked by activity of the regulatory element ThrbCRM1, gives rise to both cone photoreceptors and horizontal cells. These cells do not express Vsx2, but co-express the transcription factors (TFs) Onecut1 and Otx2, which bind to ThrbCRM1. The components of the gene regulatory networks that control the transition from multipotent to fate-restricted gene expression are not known. This work aims to identify and evaluate cis-regulatory elements proximal to Onecut1 to identify the gene regulatory networks involved in RPC fate-restriction.

Method: We identified regulatory elements through ATAC-seq and conservation, followed by reporter assays to screen for activity based on temporal and spatial criteria. The regulatory elements of interest were subject to deletion and mutation analysis to identify functional sequences and evaluated by quantitative flow cytometry assays. Finally, we combined the enhancer::reporter assays with candidate TF overexpression to evaluate the relationship between the TFs, the enhancers, and early vertebrate retinal development. Statistical tests included ANOVA, Kruskal-Wallis, or unpaired t-tests.

Results: Two regulatory elements, ECR9 and ECR65, were identified to be active in ThrbCRM1(+) restricted RPCs. Candidate bHLH binding sites were identified as critical sequences in both elements. Overexpression of candidate bHLH TFs revealed specific enhancer-bHLH interactions. Nhlh1 overexpression expanded ECR65 activity into the Vsx2(+) RPC population, and overexpression of NeuroD1/NeuroG2/NeuroD4 had a similar effect on ECR9. Furthermore, bHLHs that were able to activate ectopic ECR9 reporter were able to induce endogenous Otx2 expression.

Conclusions: This work reports a large-scale screen to identify spatiotemporally specific regulatory elements near the Onecut1 locus. These elements were used to identify distinct populations in the developing retina. In addition, fate-restricted regulatory elements responded differentially to bHLH factors, and suggest a role for retinal bHLHs upstream of the Otx2 and Onecut1 genes during the formation of restricted RPCs from multipotent RPCs.

Abstract Image

Abstract Image

Abstract Image

Onecut1在命运限制性视网膜祖细胞中表达的顺式调控分析。
背景:脊椎动物视网膜由六大类神经元细胞组成。在发育过程中,这些细胞是由表达Vsx2基因的多能视网膜祖细胞(rpc)产生的。最近发现了命运限制性的rpc,与多能rpc相比,它们具有有限的有丝分裂潜能和细胞命运可能性。以ThrbCRM1调控元件的活性为标志的命运限制性RPCs群体,产生锥体光感受器和水平细胞。这些细胞不表达Vsx2,但共同表达与ThrbCRM1结合的转录因子Onecut1和Otx2。控制多能基因向命运限制性基因表达转变的基因调控网络的组成部分尚不清楚。这项工作旨在鉴定和评估Onecut1附近的顺式调控元件,以鉴定参与RPC命运限制的基因调控网络。方法:我们通过ATAC-seq和保守鉴定调控元件,然后根据时间和空间标准筛选报告基因的活性。对感兴趣的调控元件进行缺失和突变分析,以确定功能序列,并通过定量流式细胞术检测进行评估。最后,我们将增强子::报告子试验与候选TF过表达相结合,以评估TF、增强子与早期脊椎动物视网膜发育之间的关系。统计检验包括方差分析、Kruskal-Wallis检验或非配对t检验。结果:两个调控元件ECR9和ECR65在ThrbCRM1(+)限制性rpc中具有活性。候选bHLH结合位点被确定为两个元件的关键序列。候选bHLH tf的过表达揭示了bHLH增强子与bHLH的特异性相互作用。Nhlh1过表达将ECR65的活性扩展到Vsx2(+) RPC群体中,NeuroD1/NeuroG2/NeuroD4过表达对ECR9也有类似的影响。此外,能够激活异位ECR9报告基因的bHLHs能够诱导内源性Otx2表达。结论:这项工作报告了一个大规模的筛选,以确定Onecut1位点附近的时空特异性调控元件。这些元素被用来识别发育中的视网膜中的不同群体。此外,命运限制性调控元件对bHLH因子的反应不同,这表明Otx2和Onecut1基因上游的视网膜bHLH在多能性RPCs形成限制性RPCs的过程中发挥了作用。
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来源期刊
Neural Development
Neural Development 生物-发育生物学
CiteScore
6.60
自引率
0.00%
发文量
11
审稿时长
>12 weeks
期刊介绍: Neural Development is a peer-reviewed open access, online journal, which features studies that use molecular, cellular, physiological or behavioral methods to provide novel insights into the mechanisms that underlie the formation of the nervous system. Neural Development aims to discover how the nervous system arises and acquires the abilities to sense the world and control adaptive motor output. The field includes analysis of how progenitor cells form a nervous system during embryogenesis, and how the initially formed neural circuits are shaped by experience during early postnatal life. Some studies use well-established, genetically accessible model systems, but valuable insights are also obtained from less traditional models that provide behavioral or evolutionary insights.
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