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The plastid genome as a chassis for synthetic biology-enabled metabolic engineering: players in gene expression

机译:作为合成生物学的代谢工程的亚型基因组作为底盘:基因表达中的玩家

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摘要

Owing to its small size, prokaryotic-like molecular genetics, and potential for very high transgene expression, the plastid genome (plastome) is an attractive plant synthetic biology chassis for metabolic engineering. The plastome exists as a homogenous, compact, multicopy genome within multiple-specialized differentiated plastid compartments. Because of this multiplicity, transgenes can be highly expressed. For coordinated gene expression, it is the prokaryotic molecular genetics that is an especially attractive feature. Multiple genes in a metabolic pathway can be expressed in a series of operons, which are regulated at the transcriptional and translational levels with cross talk from the plant's nuclear genome. Key features of each regulatory level are reviewed, as well as some examples of plastome-enabled metabolic engineering. We also speculate about the transformative future of plastid-based synthetic biology to enable metabolic engineering in plants as well as the problems that must be solved before routine plastome-enabled synthetic circuits can be installed.
机译:由于其小尺寸,原核状分子遗传和非常高的转基因表达的潜力,塑性基因组(塑料)是代谢工程的有吸引力的植物合成生物底盘。在多种专业化的分化塑性室内,塑料存在作为均匀的紧凑,多拷贝基因组。由于这种多重性,可以高度表达转基因。对于协调的基因表达,它是一种特别有吸引力的特征的原核分子遗传学。代谢途径中的多个基因可以在一系列操纵子中表达,这在具有来自植物核基因组的交叉谈话的转录和平移水平上被调节。综述了每个监管层面的主要特征,以及支持塑料的代谢工程的一些例子。我们还推测了基于塑体的合成生物学的变革性未来,使植物中的代谢工程以及在能够安装常规塑料的合成电路之前必须解决的问题。

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