State Key Laboratory of Chemo/Bio-Sensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan University, Changsha 410082, P. R. China.
Center for Molecular Design and Biomimetics, Biodesign Institute, Arizona State University, Tempe, AZ 85287, USA.
Sci Adv. 2022 Mar 25;8(12):eabm9530. doi: 10.1126/sciadv.abm9530.
The identity and timing of environmental stimulus play a pivotal role in living organisms in programming their signaling networks and developing specific phenotypes. The ability to unveil history-dependent signals will advance our understanding of temporally regulated biological processes. Here, we have developed a two-input, five-state DNA finite-state machine (FSM) to sense and record the temporally ordered inputs. The spatial organization of the processing units on DNA origami enables facile modulation of the energy landscape of DNA strand displacement reactions, allowing precise control of the reactions along predefined paths for different input orders. The use of spatial constraints brings about a simple, modular design for the FSM with a minimum set of orthogonal components and confers minimized leaky reactions and fast kinetics. The FSM demonstrates the capability of sensing the temporal orders of two microRNAs, highlighting its potential for temporally resolved biosensing and smart therapeutics.
环境刺激的身份和时间在为生物体编程信号网络和开发特定表型方面起着关键作用。揭示依赖时间的信号的能力将增进我们对时间调节生物过程的理解。在这里,我们开发了一种双输入、五态 DNA 有限状态机 (FSM) 来感知和记录时间顺序输入。DNA 折纸结构上处理单元的空间组织使 DNA 链置换反应的能量景观易于调节,从而能够沿不同输入顺序的预定义路径精确控制反应。空间约束的使用为 FSM 带来了一种简单的、模块化的设计,具有最小的正交组件集,并赋予最小的漏反应和快速动力学。FSM 展示了感知两个 microRNA 时间顺序的能力,突出了其在时间分辨生物传感和智能治疗方面的潜力。