Ribocomputing devices for sophisticated in vivo logic computation

A. Green, Jongmin Kim, D. Ma, P. Silver, J. Collins, Peng Yin
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引用次数: 2

Abstract

Synthetic biology aims to create functional devices, systems, and organisms with novel and useful functions taking advantage of engineering principles applied to biology. Despite great progress over the last decade, an underlying problem in synthetic biology remains the limited number of high-performance, modular, composable parts. A potential route to solve parts bottleneck problem in synthetic biology utilizes the programmability of nucleic acids inspired by molecular programming approaches that have demonstrated complex biomolecular circuits evaluating logic expressions in test tubes. Using a library of de-novo-designed toehold switches with orthogonality and modular composability, we demonstrate how toehold switches can be incorporated into decision-making RNA networks termed ribocomputing devices to rapidly evaluate complex logic in living cells. We have successfully demonstrated a 4-input AND gate, a 6-input OR gate, and a 12-input expression in disjunctive normal form in E. coli. The compact encoding of ribocomputing system using a library of modular parts is amenable to aggressive scale-up towards complex control of in vivo circuitry towards autonomous behaviors and biomedical applications.
用于复杂体内逻辑计算的核糖体计算装置
合成生物学旨在利用应用于生物学的工程原理,创造具有新颖和有用功能的功能装置、系统和有机体。尽管在过去的十年中取得了巨大的进步,合成生物学的一个潜在问题仍然是高性能、模块化、可组合部件的数量有限。解决合成生物学中零件瓶颈问题的潜在途径是利用分子编程方法启发的核酸可编程性,这些方法已经证明了复杂的生物分子电路在试管中评估逻辑表达式。利用具有正交性和模块化可组合性的全新设计的支点开关库,我们展示了如何将支点开关整合到称为核糖计算设备的决策RNA网络中,以快速评估活细胞中的复杂逻辑。我们已经成功地在大肠杆菌中展示了一个4输入与门,一个6输入或门和一个12输入的析取正常形式的表达。使用模块化部件库的核计算系统的紧凑编码适用于对体内电路的复杂控制、自主行为和生物医学应用的积极扩展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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