Collaborative Innovation Center for Marine Biomass Fiber Materials and Textiles, College of Chemistry and Chemical Engineering, Laboratory of Fiber Materials and Modern Textiles, the Growing Base for State Key Laboratory, Shandong Sino-Japanese Center for Collaborative Research of Carbon Nanomaterials, Qingdao University, Qingdao 266071, PR China.
Collaborative Innovation Center for Marine Biomass Fiber Materials and Textiles, College of Chemistry and Chemical Engineering, Laboratory of Fiber Materials and Modern Textiles, the Growing Base for State Key Laboratory, Shandong Sino-Japanese Center for Collaborative Research of Carbon Nanomaterials, Qingdao University, Qingdao 266071, PR China.
Biosens Bioelectron. 2016 Sep 15;83:281-6. doi: 10.1016/j.bios.2016.04.059. Epub 2016 Apr 20.
Here we program an initiator-catalyzed self-assembly of duplex-looped DNA hairpin motif based on strand displacement reaction. Due to the recycling of initiator and performance in a cascade manner, this system is versatilely extended to logic operations, including the construction of concatenated logic circuits with a feedback function and a biocomputing keypad-lock security system. Compared with previously reported molecular security systems, the prominent feature of our keypad lock is that it can be spontaneously reset and recycled with no need of any external stimulus and human intervention. Moreover, through integrating with an isothermal amplification technique of rolling circle amplification (RCA), this programming catalytic DNA self-assembly strategy readily achieves sensitive and selective biosensing of initiator. Importantly, a magnetic graphene oxide (MGO) is introduced to remarkably reduced background, which plays an important role in enhancing the signal-to-noise ratio and improving the detection sensitivity. Therefore, the proposed sophisticated DNA strand displacement-based methodology with engineering dynamic functions may find broad applications in the construction of programming DNA nanostructures, amplification biosensing platform, and large-scale DNA circuits.
在这里,我们基于链置换反应编程了一个引发剂催化的双链环 DNA 发夹基元的自组装。由于引发剂的循环利用和级联性能,该系统可灵活扩展到逻辑运算,包括构建具有反馈功能的串联逻辑电路和生物计算键盘锁安全系统。与之前报道的分子安全系统相比,我们的键盘锁的突出特点是它可以自动重置和循环利用,不需要任何外部刺激和人为干预。此外,通过与滚环扩增(RCA)的等温扩增技术集成,这种编程催化 DNA 自组装策略可以实现对引发剂的灵敏和选择性生物传感。重要的是,引入了磁性氧化石墨烯(MGO)以显著降低背景,这对于提高信噪比和提高检测灵敏度起着重要作用。因此,具有工程动态功能的复杂 DNA 链置换方法可能在编程 DNA 纳米结构、放大生物传感平台和大规模 DNA 电路的构建方面有广泛的应用。