College of Chemistry and Molecular Sciences, Wuhan University, Wuhan, People's Republic of China.
Institute of Chemistry, The Hebrew University of Jerusalem, Jerusalem, Israel.
Top Curr Chem (Cham). 2020 Feb 3;378(1):20. doi: 10.1007/s41061-020-0284-x.
Nucleic acids are considered not only extraordinary carriers of genetic information but also are perceived as the perfect elemental materials of molecular recognition and signal transduction/amplification for assembling programmable artificial reaction networks or circuits, which are similar to conventional electronic logic devices. Among these sophisticated DNA-based reaction networks, catalytic hairpin assembly (CHA), hybridization chain reaction (HCR), and DNAzyme represent the typical nonenzymatic amplification methods with high robustness and efficiency. Furthermore, their extensive hierarchically cascade integration into multi-layered autonomous DNA circuits establishes novel paradigms for constructing more different catalytic DNA nanostructures and for regenerating or replicating diverse molecular components with specific functions. Various DNA and inorganic nanoscaffolds have been used to realize the surface-confined DNA reaction networks with significant biomolecular sensing and signal-regulating functions in living cells. Especially, the specific aptamers and metal-ion-bridged duplex DNA nanostructures could extend their paradigms for detecting small molecules and proteins in even living entities. Herein, the varied enzyme-free DNA circuits are introduced in general with an extensive explanation of their underlying molecular reaction mechanisms. Challenges and outlook of the autonomous enzyme-free DNA circuits will also be discussed at the end of this chapter.
核酸不仅被认为是遗传信息的非凡载体,而且还被视为分子识别和信号转导/放大的理想元素材料,用于组装可编程人工反应网络或电路,类似于传统的电子逻辑器件。在这些复杂的基于 DNA 的反应网络中,催化发夹组装 (CHA)、杂交链式反应 (HCR) 和 DNA 酶代表了具有高稳健性和高效率的典型非酶放大方法。此外,它们广泛的层次级联集成到多层自主 DNA 电路中,为构建更多不同的催化 DNA 纳米结构以及再生或复制具有特定功能的各种分子组件建立了新的范例。各种 DNA 和无机纳米支架已被用于实现具有重要生物分子传感和信号调节功能的表面受限 DNA 反应网络。特别是,特定的适体和金属离子桥接的双链 DNA 纳米结构可以扩展它们用于检测甚至活体中小分子和蛋白质的范例。本文全面介绍了各种无酶 DNA 电路,并详细解释了它们的基本分子反应机制。最后还讨论了自主无酶 DNA 电路的挑战和展望。