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Engineering synthetic TAL effectors with orthogonal target sites

机译:具有正交目标位点的工程合成TAL效应子

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The ability to engineer biological circuits that process and respond to complex cellular signals has the potential to impact many areas of biology and medicine. Transcriptional activator-like effectors (TALEs) have emerged as an attractive component for engineering these circuits, as TALEs can be designed de novo to target a given DNA sequence. Currently, however, the use of TALEs is limited by degeneracy in the site-specific manner by which they recognize DNA. Here, we propose an algorithm to computationally address this problem. We apply our algorithm to design 180 TALEs targeting 20bp cognate binding sites that are at least 3nt mismatches away from all 20bp sequences in putative 2 kb human promoter regions. We generated eight of these synthetic TALE activators and showed that each is able to activate transcription from a targeted reporter. Importantly, we show that these proteins do not activate synthetic reporters containing mismatches similar to those present in the genome nor a set of endogenous genes predicted to be the most likely targets in vivo. Finally, we generated and characterized TALE repressors comprised of our orthogonal DNA binding domains and further combined them with shRNAs to accomplish near complete repression of target gene expression.
机译:工程化处理和响应复杂细胞信号的生物电路的能力可能会影响生物学和医学的许多领域。转录激活因子样效应子(TALE)已成为工程化这些电路的诱人组件,因为可以从头设计TALE以靶向给定的DNA序列。但是,目前,TALE的使用受到变性的限制,即它们识别DNA的位点特异性方式。在这里,我们提出了一种算法来解决这个问题。我们应用我们的算法来设计180个TALE,这些TALE靶向20bp同源结合位点,这些位点与假定的2 kb人类启动子区域中的所有20bp序列至少有3nt错配。我们生成了8种这些合成的TALE激活剂,并显示每种激活剂都可以激活目标报道基因的转录。重要的是,我们表明这些蛋白质不会激活包含与基因组中存在的错配相似的错配的合成报告基因,也不会激活被预测为体内最可能靶标的一组内源基因。最后,我们生成并表征了由我们的正交DNA结合结构域组成的TALE阻遏物,并将它们与shRNA进一步结合以完成对靶基因表达的几乎完全阻遏。

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