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Silencer-delimited transgenesis: NRSE/RE1 sequences promote neural-specific transgene expression in a NRSF/REST-dependent manner

机译:沉默子分隔的转基因:NRSE / RE1序列以NRSF / REST依赖性方式促进神经特异性转基因表达

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Background We have investigated a simple strategy for enhancing transgene expression specificity by leveraging genetic silencer elements. The approach serves to restrict transgene expression to a tissue of interest - the nervous system in the example provided here - thereby promoting specific/exclusive targeting of discrete cellular subtypes. Recent innovations are bringing us closer to understanding how the brain is organized, how neural circuits function, and how neurons can be regenerated. Fluorescent proteins enable mapping of the 'connectome', optogenetic tools allow excitable cells to be short-circuited or hyperactivated, and targeted ablation of neuronal subtypes facilitates investigations of circuit function and neuronal regeneration. Optimally, such toolsets need to be expressed solely within the cell types of interest as off-site expression makes establishing causal relationships difficult. To address this, we have exploited a gene 'silencing' system that promotes neuronal specificity by repressing expression in non-neural tissues. This methodology solves non-specific background issues that plague large-scale enhancer trap efforts and may provide a means of leveraging promoters/enhancers that otherwise express too broadly to be of value for in vivo manipulations. Results We show that a conserved neuron-restrictive silencer element (NRSE) can function to restrict transgene expression to the nervous system. The neuron-restrictive silencing factor/repressor element 1 silencing transcription factor ( NRSF /REST) transcriptional repressor binds NRSE/repressor element 1 (RE1) sites and silences gene expression in non-neuronal cells. Inserting NRSE sites into transgenes strongly biased expression to neural tissues. NRSE sequences were effective in restricting expression of bipartite Gal4-based 'driver' transgenes within the context of an enhancer trap and when associated with a defined promoter and enhancer. However, NRSE sequences did not serve to restrict expression of an upstream activating sequence (UAS)-based reporter/effector transgene when associated solely with the UAS element. Morpholino knockdown assays showed that NRSF /REST expression is required for NRSE-based transgene silencing. Conclusions Our findings demonstrate that the addition of NRSE sequences to transgenes can provide useful new tools for functional studies of the nervous system. However, the general approach may be more broadly applicable; tissue-specific silencer elements are operable in tissues other than the nervous system, suggesting this approach can be similarly applied to other paradigms. Thus, creating synthetic associations between endogenous regulatory elements and tissue-specific silencers may facilitate targeting of cellular subtypes for which defined promoters/enhancers are lacking.
机译:背景我们研究了一种利用遗传沉默子元件增强转基因表达特异性的简单策略。该方法用于将转基因表达限制在目标组织(此处提供的示例中的神经系统)中,从而促进离散/细胞亚型的特异性/排他性靶向。最新的创新使我们更加了解大脑的组织方式,神经回路的功能以及神经元的再生方式。荧光蛋白可以绘制“连接体”的图谱,光遗传学工具可以使可兴奋的细胞短路或过度活化,神经元亚型的靶向消融有助于研究电路功能和神经元再生。最佳地,此类工具集仅需在感兴趣的细胞类型内表达,因为异位表达使建立因果关系变得困难。为了解决这个问题,我们开发了一个基因“沉默”系统,该系统通过抑制非神经组织中的表达来促进神经元特异性。该方法学解决了困扰大型增强子捕获工作的非特异性背景问题,并且可以提供利用启动子/增强子的手段,否则这些启动子/增强子的表达范围太广,无法在体内操作中发挥作用。结果我们显示保守的神经元限制性沉默子元件(NRSE)可以起到限制转基因表达到神经系统的作用。神经元限制性沉默因子/阻遏物1沉默转录因子(NRSF / REST)转录阻遏物结合NRSE /阻遏物1(RE1)位点并沉默非神经细胞中的基因表达。将NRSE位点插入转基因会严重偏向神经组织表达。 NRSE序列在增强子陷阱的背景下以及与定义的启动子和增强子结合时,有效地限制了基于双Gal4的“驱动程序”转基因的表达。然而,当仅与UAS元件结合时,NRSE序列不用于限制基于上游激活序列(UAS)的报告基因/效应子转基因的表达。 Morpholino敲低分析表明,基于NRSE的转基因沉默需要NRSF / REST表达。结论我们的发现表明,将NRSE序列添加到转基因中可以为神经系统功能研究提供有用的新工具。但是,一般方法可能更广泛地适用。组织特定的消音器元件可在神经系统以外的组织中使用,这表明该方法可类似地应用于其他范例。因此,在内源性调节元件和组织特异性沉默子之间建立合成关联可以促进靶向缺乏所定义的启动子/增强子的细胞亚型。

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