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Digital and Analog Gene Circuits for Biotechnology

机译:生物技术数字和模拟基因电路

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摘要

Biotechnology offers the promise of valuable chemical production via microbial processing of renewable and inexpensive substrates. Thus far, static metabolic engineering strategies have enabled this field to advance industrial applications. However, the industrial scaling of statically engineered microbes inevitably creates inefficiencies due to variable conditions present in large-scale microbial cultures. Synthetic gene circuits that dynamically sense and regulate different molecules can resolve this issue by enabling cells to continuously adapt to variable conditions. These circuits also have the potential to enable next-generation production programs capable of autonomous transitioning between steps in a bioprocess. Here, we review the design and application of two main classes of dynamic gene circuits, digital and analog, for biotechnology. Within the context of these classes, we also discuss the potential benefits of digital-analog interconversion, memory, and multi-signal integration. Though synthetic gene circuits have largely been applied for cellular computation to date, we envision that utilizing them in biotechnology will enhance the efficiency and scope of biochemical production with living cells.
机译:生物技术通过对可再生廉价的底物进行微生物处理,提供了有价值的化学生产的希望。迄今为止,静态代谢工程策略已使该领域能够促进工业应用。然而,由于大规模微生物培养物中存在可变的条件,因此静态工程改造的微生物的工业规模化不可避免地导致效率低下。动态感测和调节不同分子的合成基因电路可以使细胞不断适应各种条件,从而解决该问题。这些电路还具有实现下一代生产程序的潜力,这些程序能够在生物过程中的各个步骤之间进行自主转换。在这里,我们回顾了用于生物技术的两大类动态基因电路(数字和模拟)的设计和应用。在这些课程的背景下,我们还将讨论数模互转换,存储器和多信号集成的潜在好处。尽管迄今为止,合成基因电路已广泛用于细胞计算,但我们可以预见,在生物技术中利用合成基因电路将提高活细胞生化生产的效率和范围。

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