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核酸电路的自动泄漏分析

Automated Leak Analysis of Nucleic Acid Circuits.

作者信息

Zarubiieva Iuliia, Spaccasassi Carlo, Kulkarni Vishwesh, Phillips Andrew

机构信息

University of Warwick, Coventry, CV4 7AL, U.K.

Microsoft Research, Cambridge, CB1 2FB, U.K.

出版信息

ACS Synth Biol. 2022 May 20;11(5):1931-1948. doi: 10.1021/acssynbio.2c00084. Epub 2022 May 11.

Abstract

Nucleic acids are a powerful engineering material that can be used to implement a broad range of computational circuits at the nanoscale, with potential applications in high-precision biosensing, diagnostics, and therapeutics. However, nucleic acid circuits are prone to leaks, which result from unintended displacement interactions between nucleic acid strands. Such leaks can grow combinatorially with circuit size, are challenging to mitigate, and can significantly compromise circuit behavior. While several techniques have been proposed to partially mitigate leaks, computational methods for designing new leak mitigation strategies and comparing their effectiveness on circuit behavior are limited. Here we present a general method for the automated leak analysis of nucleic acid circuits, referred to as . Our method extends the logic programming functionality of the Visual DSD language, developed for the design and analysis of nucleic acid circuits, with predicates for leak generation, a leak reaction enumeration algorithm, and predicates to exclude low probability leak reactions. We use our method to identify the critical leak reactions affecting the performance of control circuits, and to analyze leak mitigation strategies by automatically generating leak reactions. Finally, we design new control circuits with substantially reduced leakage including a sophisticated proportional-integral controller circuit, which can in turn serve as building blocks for future circuits. By integrating our method within an open-source nucleic acid circuit design tool, we enable the leak analysis of a broad range of circuits, as an important step toward facilitating robust and scalable nucleic acid circuit design.

摘要

核酸是一种强大的工程材料,可用于在纳米尺度上实现广泛的计算电路,在高精度生物传感、诊断和治疗方面具有潜在应用。然而,核酸电路容易出现泄漏,这是由核酸链之间意外的置换相互作用导致的。这种泄漏会随着电路规模组合式增长,难以缓解,并且会严重影响电路性能。虽然已经提出了几种技术来部分缓解泄漏,但用于设计新的泄漏缓解策略并比较其对电路性能影响的计算方法却很有限。在此,我们提出了一种用于核酸电路自动泄漏分析的通用方法,称为 。我们的方法扩展了Visual DSD语言的逻辑编程功能,该语言是为核酸电路的设计和分析而开发的,增加了用于泄漏生成的谓词、泄漏反应枚举算法以及用于排除低概率泄漏反应的谓词。我们使用我们的方法来识别影响控制电路性能的关键泄漏反应,并通过自动生成泄漏反应来分析泄漏缓解策略。最后,我们设计了泄漏大幅减少的新型控制电路,包括一个复杂的比例积分控制器电路,这些电路反过来又可以作为未来电路的构建模块。通过将我们的方法集成到一个开源核酸电路设计工具中,我们实现了对广泛电路的泄漏分析,这是朝着促进稳健且可扩展的核酸电路设计迈出的重要一步。

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