Department of Applied Physics, Eindhoven University of Technology, 5600 MB, Eindhoven, The Netherlands.
Institute for Complex Molecular Systems (ICMS), Eindhoven University of Technology, 5600 MB, Eindhoven, Netherlands.
Nat Commun. 2018 Jun 29;9(1):2541. doi: 10.1038/s41467-018-04802-8.
Healthcare is in demand of technologies for real-time sensing in order to continuously guard the state of patients. Here we present biomarker-monitoring based on the sensing of particle mobility, a concept wherein particles are coupled to a substrate via a flexible molecular tether, with both the particles and substrate provided with affinity molecules for effectuating specific and reversible interactions. Single-molecular binding and unbinding events modulate the Brownian particle motion and the state changes are recorded using optical scattering microscopy. The technology is demonstrated with DNA and protein as model biomarkers, in buffer and in blood plasma, showing sensitivity to picomolar and nanomolar concentrations. The sensing principle is direct and self-contained, without consuming or producing any reactants. With its basis in reversible interactions and single-molecule resolution, we envisage that the presented technology will enable biosensors for continuous biomarker monitoring with high sensitivity, specificity, and accuracy.
医疗保健领域需要实时传感技术,以持续监测患者的状态。在这里,我们提出了一种基于粒子迁移率传感的生物标志物监测方法,该方法通过柔性分子连接将粒子与基底耦合,粒子和基底都带有亲和分子,以实现特定且可逆的相互作用。单分子的结合和解离事件会调节布朗粒子的运动,而状态变化则使用光学散射显微镜记录下来。该技术以 DNA 和蛋白质作为模型生物标志物进行了演示,分别在缓冲液和血浆中进行了实验,证明了对皮摩尔和纳摩尔浓度的检测灵敏度。传感原理是直接且自包含的,不需要消耗或产生任何反应物。由于其基于可逆相互作用和单分子分辨率,我们预计所提出的技术将能够实现具有高灵敏度、特异性和准确性的连续生物标志物监测生物传感器。