Department of Microtechnology and Nanoscience-MC2, Chalmers University of Technology, Göteborg, Sweden.
Biosens Bioelectron. 2010 Jan 15;25(5):1008-13. doi: 10.1016/j.bios.2009.09.013. Epub 2009 Sep 16.
We demonstrate a one-step wash-free bioassay measurement system capable of tracking biochemical binding events. Our approach combines the high resolution of frequency- and high speed of time-domain measurements in a single device in combination with a fast one-step bioassay. The one-step nature of our magnetic nanoparticle (MNP) based assay reduces the time between sample extraction and quantitative results while mitigating the risks of contamination related to washing steps. Our method also enables tracking of binding events, providing the possibility of, for example, investigation of how chemical/biological environments affect the rate of a binding process or study of the action of certain drugs. We detect specific biological binding events occurring on the surfaces of fluid-suspended MNPs that modify their magnetic relaxation behavior. Herein, we extrapolate a modest sensitivity to analyte of 100 ng/ml with the present setup using our rapid one-step bioassay. More importantly, we determine the size-distributions of the MNP systems with theoretical fits to our data obtained from the two complementary measurement modalities and demonstrate quantitative agreement between them.
我们展示了一种一步式免洗生物分析测量系统,能够跟踪生化结合事件。我们的方法将频域的高分辨率和时域的高速测量结合在一个单一的设备中,并结合了快速的一步式生物分析。我们基于磁性纳米粒子(MNP)的测定的一步式性质减少了样品提取和定量结果之间的时间,同时减轻了与洗涤步骤相关的污染风险。我们的方法还能够跟踪结合事件,例如,研究化学/生物环境如何影响结合过程的速率或研究某些药物的作用。我们检测到在悬浮在流体中的 MNPs 表面上发生的特定生物结合事件,这些事件改变了它们的磁弛豫行为。在此,我们使用快速一步式生物分析,从目前的设置中推断出对 100ng/ml 分析物的适度灵敏度。更重要的是,我们通过两种互补的测量模式从数据中得出理论拟合,确定了 MNP 系统的尺寸分布,并证明了它们之间的定量一致性。