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用于灵敏生物传感应用的正交双调节策略。

An orthogonal dual-regulation strategy for sensitive biosensing applications.

作者信息

Yang Xian, Wang Jinhua, Gao Zhongfeng, Zhang Weiqi, Zhu Hai, Song Yongjun, Wang Quan, Liu Mingjie, Jiang Lei, Huang Yu, Xia Fan

机构信息

State Key Laboratory of Biogeology and Environmental Geology, Engineering Research Center of Nano-Geomaterials of Ministry of Education, Faculty of Material Science and Chemistry, China University of Geosciences, Wuhan 430074, China.

State Grid Integrated Energy Service Group CO. LTD., Beijing 100052, China.

出版信息

Natl Sci Rev. 2022 Mar 12;9(9):nwac048. doi: 10.1093/nsr/nwac048. eCollection 2022 Sep.

Abstract

Biosensing systems based on controllable motion behaviors of droplets have attracted extensive attention, but still face challenges of insufficient sensitivity and uncontrollable dynamic range due to imprecise manipulation of droplet motion on the surfaces. Here, we report an orthogonal dual-regulation strategy for precise motion control of droplets and we demonstrate its utility as a sensitive sensing system with controllable dynamic ranges of sensing for adenosine triphosphate, miRNA, thrombin and kanamycin, as well as discrimination of five kinds of DNA. We endowed a DNA-contained bio-droplet sliding on a lubricant-infused structural surface with micro-grooves to separately adjust the resistance from liquid phase and solid phase. The resistance from liquid phase mainly depended on hydrophobic interaction between DNA and lubricant, which can be finely tuned by different DNA's average chain length. Meanwhile, the resistance from solid surface was determined by the energy barrier from the periodic micro-grooves, which can be adjusted by varying the droplet's sliding direction on the surface. The hydrophobic interaction is conformed to be orthogonal to the micro-grooves' anisotropic resistance by three different methods. This orthogonal dual-regulation strategy thus demonstrated its ability to precisely control bio-droplets' motion behaviors and sensitive detection with adjustable dynamic ranges for various bio-targets. The dual-regulation strategy will provide significant insights for super-wettable biosensors, visual inspection and beyond.

摘要

基于液滴可控运动行为的生物传感系统已引起广泛关注,但由于表面液滴运动操控不精确,仍面临灵敏度不足和动态范围不可控的挑战。在此,我们报道一种用于液滴精确运动控制的正交双调节策略,并展示其作为一种灵敏传感系统的实用性,该系统对三磷酸腺苷、微小核糖核酸、凝血酶和卡那霉素具有可控的传感动态范围,还能区分五种DNA。我们使含DNA的生物液滴在带有微槽的注油结构表面滑动,以分别调节来自液相和固相的阻力。来自液相的阻力主要取决于DNA与润滑剂之间的疏水相互作用,可通过不同DNA的平均链长进行精细调节。同时,来自固体表面的阻力由周期性微槽的能垒决定,可通过改变液滴在表面的滑动方向进行调节。通过三种不同方法证实疏水相互作用与微槽的各向异性阻力相互正交。因此,这种正交双调节策略展示了其精确控制生物液滴运动行为以及对各种生物靶标进行具有可调动态范围的灵敏检测的能力。该双调节策略将为超润湿性生物传感器、视觉检测及其他领域提供重要见解。

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