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Transferring a synthetic gene circuit from yeast to mammalian cells

机译:将合成基因回路从酵母转移到哺乳动物细胞

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摘要

The emerging field of synthetic biology builds gene circuits for scientific, industrial, and therapeutic needs. Adaptability of synthetic gene circuits across different organisms could enable a synthetic biology pipeline, where circuits are designed in silico, characterized in microbes and reimplemented in mammalian settings for practical usage. However, the processes affecting gene circuit adaptability have not been systematically investigated. Here we construct a mammalian version of a negative feedback-based “linearizer” gene circuit previously developed in yeast. The first naïve mammalian prototype was non-functional, but a computational model suggested that we could recover function by improving gene expression and protein localization. After rationally developing and combining new parts as the model suggested, we regained function and could tune target gene expression in human cells linearly and precisely as in yeast. The steps we have taken should be generally relevant for transferring any gene circuit from yeast into mammalian cells.
机译:合成生物学的新兴领域建立了满足科学,工业和治疗需求的基因回路。合成基因电路在不同生物体之间的适应性可以使合成生物学流水线成为现实,在电路中以硅树脂设计,以微生物为特征,并在哺乳动物环境中重新实现以供实际使用。然而,尚未系统地研究影响基因电路适应性的过程。在这里,我们构建了以前在酵母中开发的基于负反馈的“线性化”基因电路的哺乳动物版本。第一个幼稚的哺乳动物原型没有功能,但是一个计算模型表明我们可以通过改善基因表达和蛋白质定位来恢复功能。在按照模型建议合理开发和组合新零件之后,我们恢复了功能,可以像在酵母中一样线性且精确地调节人细胞中靶基因的表达。我们采取的步骤通常应该与将任何基因回路从酵母转移到哺乳动物细胞中有关。

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