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Expanding the Toolkit for Synthetic Biology: Frameworks for Native-like Non-natural Gene Circuits

机译:扩展合成生物学工具包:类似于天然的非天然基因电路的框架

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摘要

Synthetic biology combines biological parts from different sources in order to engineer non-native, functional systems. While there is a lot of potential for synthetic biology to revolutionize processes, such as the production of pharmaceuticals, engineering synthetic systems has been challenging. It is oftentimes necessary to explore a large design space to balance the levels of interacting components in the circuit. There are also times where it is desirable to incorporate enzymes that have non-biological functions into a synthetic circuit. Tuning the levels of different components, however, is often restricted to a fixed operating point, and this makes synthetic systems sensitive to changes in the environment. Natural systems are able to respond dynamically to a changing environment by obtaining information relevant to the function of the circuit. This work addresses these problems by establishing frameworks and mechanisms that allow synthetic circuits to communicate with the environment, maintain fixed ratios between components, and potentially add new parts that are outside the realm of current biological function. These frameworks provide a way for synthetic circuits to behave more like natural circuits by enabling a dynamic response, and provide a systematic and rational way to search design space to an experimentally tractable size where likely solutions exist. We hope that the contributions described below will aid in allowing synthetic biology to realize its potential.
机译:合成生物学结合了来自不同来源的生物部分,以设计非天然的功能系统。尽管合成生物学具有极大的潜力来革新诸如药物生产等过程,但工程合成系统一直具有挑战性。经常有必要探索较大的设计空间,以平衡电路中相互作用组件的水平。有时还需要将具有非生物功能的酶掺入合成回路中。但是,调整不同组件的级别通常仅限于固定的工作点,这会使合成系统对环境的变化敏感。自然系统能够通过获取与电路功能相关的信息来动态响应不断变化的环境。这项工作通过建立框架和机制来解决这些问题,这些框架和机制允许合成电路与环境进行通信,保持组件之间的固定比率,并可能添加当前生物功能范围之外的新零件。这些框架通过启用动态响应,为合成电路的行为提供了一种类似于自然电路的方式,并提供了系统合理的方法来将设计空间搜索到存在可能的解决方案的实验可处理的大小。我们希望以下所述的贡献将有助于合成生物学发挥其潜力。

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