Bioengineering, California Institute of Technology, 1200 East California Boulevard, Pasadena, California 91125, USA.
Computer Science, California Institute of Technology, 1200 East California Boulevard, Pasadena, California 91125, USA.
Nat Commun. 2017 Feb 23;8:14373. doi: 10.1038/ncomms14373.
Biochemical circuits made of rationally designed DNA molecules are proofs of concept for embedding control within complex molecular environments. They hold promise for transforming the current technologies in chemistry, biology, medicine and material science by introducing programmable and responsive behaviour to diverse molecular systems. As the transformative power of a technology depends on its accessibility, two main challenges are an automated design process and simple experimental procedures. Here we demonstrate the use of circuit design software, combined with the use of unpurified strands and simplified experimental procedures, for creating a complex DNA strand displacement circuit that consists of 78 distinct species. We develop a systematic procedure for overcoming the challenges involved in using unpurified DNA strands. We also develop a model that takes synthesis errors into consideration and semi-quantitatively reproduces the experimental data. Our methods now enable even novice researchers to successfully design and construct complex DNA strand displacement circuits.
由合理设计的 DNA 分子组成的生化电路是在复杂的分子环境中嵌入控制的概念验证。它们有望通过为各种分子系统引入可编程和响应的行为来改变化学、生物学、医学和材料科学的当前技术。由于技术的变革能力取决于其可及性,因此面临两个主要挑战,即自动化设计过程和简单的实验程序。在这里,我们展示了如何结合使用未纯化的链和简化的实验程序来使用电路设计软件,创建一个由 78 个不同物种组成的复杂 DNA 链置换电路。我们开发了一种系统的方法来克服使用未纯化的 DNA 链所涉及的挑战。我们还开发了一个考虑合成错误并半定量再现实验数据的模型。我们的方法现在使即使是新手研究人员也能够成功设计和构建复杂的 DNA 链置换电路。