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微生物基因电路工程的工具和原理。

Tools and Principles for Microbial Gene Circuit Engineering.

机构信息

Department of Life Sciences, Faculty of Natural Sciences, Imperial College London, London SW7 2AZ, United Kingdom; School of Biological Sciences, University of Edinburgh, Edinburgh EH9 3FF, United Kingdom.

Department of Life Sciences, Faculty of Natural Sciences, Imperial College London, London SW7 2AZ, United Kingdom.

出版信息

J Mol Biol. 2016 Feb 27;428(5 Pt B):862-88. doi: 10.1016/j.jmb.2015.10.004. Epub 2015 Oct 20.

Abstract

Synthetic biologists aim to construct novel genetic circuits with useful applications through rational design and forward engineering. Given the complexity of signal processing that occurs in natural biological systems, engineered microbes have the potential to perform a wide range of desirable tasks that require sophisticated computation and control. Realising this goal will require accurate predictive design of complex synthetic gene circuits and accompanying large sets of quality modular and orthogonal genetic parts. Here we present a current overview of the versatile components and tools available for engineering gene circuits in microbes, including recently developed RNA-based tools that possess large dynamic ranges and can be easily programmed. We introduce design principles that enable robust and scalable circuit performance such as insulating a gene circuit against unwanted interactions with its context, and we describe efficient strategies for rapidly identifying and correcting causes of failure and fine-tuning circuit characteristics.

摘要

合成生物学家旨在通过理性设计和正向工程构建具有有用应用的新型遗传回路。考虑到天然生物系统中发生的信号处理的复杂性,工程微生物具有执行广泛的需要复杂计算和控制的理想任务的潜力。实现这一目标将需要对复杂的合成基因回路进行准确的预测设计,并伴随大量的质量模块和正交遗传部件。在这里,我们介绍了当前可用于微生物工程基因回路的多功能组件和工具,包括最近开发的具有大动态范围且易于编程的基于 RNA 的工具。我们介绍了能够实现稳健和可扩展的电路性能的设计原则,例如将基因回路与上下文的不期望的相互作用隔离开来,并且我们描述了快速识别和纠正故障原因以及微调电路特性的有效策略。

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