Xiong Yan, Yancey Colin, Lee Heon-Joon, Lee Dayoung Gloria, Helm Emily, Kang Byunghwa, Grinthal Alison, McKeen Daniel, Gang Oleg, Schulman Rebecca
Institute for Nanobiotechnology, Johns Hopkins University, Baltimore, Maryland 21218, United States.
Department of Chemical and Biomolecular Engineering, Johns Hopkins University, Baltimore, Maryland 21218, United States.
J Am Chem Soc. 2024 Nov 13;146(45):30802-30812. doi: 10.1021/jacs.4c07259. Epub 2024 Oct 30.
Signaling cascades are crucial for transducing stimuli in biological systems, enabling multiple stimuli to regulate a downstream target with precisely controlled timing and amplifying signals through a series of intermediary reactions. Developing a robust signaling system with such capabilities would be pivotal for programming complex behaviors in synthetic DNA-based molecular devices. However, although "software" such as nucleic acid circuits could potentially be harnessed to relay signals to DNA-based nanostructure hardware, such explorations have been limited. Here, we develop a platform for transducing a variety of stimuli via messenger-mediated reactions to regulate the release and reloading of gold nanoparticles (AuNPs) in a 3D DNA framework. In the first step, an in vitro transcription circuit is engineered to sense and amplify chemical stimuli, including arbitrary DNA sequences and proteins, producing RNA. In the second step, the RNA releases the DNA-coated AuNPs from the DNA framework via a strand displacement reaction. AuNP reloading is controlled by a separate step driven by degradation of the RNA. Our platform holds promise for applications requiring dynamic multiagent control over DNA-based devices, offering a versatile tool for advanced molecular device engineering.
信号级联对于在生物系统中传导刺激至关重要,它能使多种刺激以精确控制的时间调节下游靶点,并通过一系列中间反应放大信号。开发具有这种能力的强大信号系统对于在基于合成DNA的分子装置中编程复杂行为至关重要。然而,尽管诸如核酸电路之类的“软件”有可能被用于将信号传递到基于DNA的纳米结构硬件,但此类探索一直很有限。在此,我们开发了一个平台,通过信使介导的反应转导多种刺激,以调节三维DNA框架中金纳米颗粒(AuNP)的释放和重新装载。第一步,设计一个体外转录电路来感知和放大化学刺激,包括任意DNA序列和蛋白质,从而产生RNA。第二步,RNA通过链置换反应从DNA框架中释放出包裹有DNA的AuNP。AuNP的重新装载由RNA降解驱动的一个单独步骤控制。我们的平台在需要对基于DNA的装置进行动态多智能体控制的应用中具有前景,为先进分子装置工程提供了一种通用工具。