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它能黏得多快:可视化微环生物传感器的流动传递。

How Fast It Can Stick: Visualizing Flow Delivery to Microtoroid Biosensors.

机构信息

Wyant College of Optical Sciences, The University of Arizona, 1630 E University Blvd, Tucson, Arizona 85721, United States.

Department of Biomedical Engineering, The University of Arizona, 1630 E University Blvd, Tucson, Arizona 85721, United States.

出版信息

ACS Sens. 2021 Jul 23;6(7):2700-2708. doi: 10.1021/acssensors.1c00748. Epub 2021 Jun 2.

Abstract

Sensitive and rapid biosensors are of critical importance for a variety of applications including infectious disease detection and monitoring as well as medical diagnostics and drug discovery. Whispering gallery mode microtoroid optical resonators are among the most sensitive biochemical sensors in existence. When combined with frequency-locking and data-processing techniques, these sensors have been shown to be capable of single-molecule detection in under 30 s. The sensitivity of these sensors is affected by how a concentration of analyte molecules is transported to the surface of the sensors and the average time it takes the molecules to bind at that concentration. Currently, one question in the field is that at these low concentrations, how these microsensors achieve such rapid response times. Here, we reconcile theory and experiment and demonstrate through flow visualization experiments and finite-element simulations that the total analyte arrival and binding time can be on the order of seconds. This fast response time provides an advantage over nanoscale sensors such as nanowires or nanorods. We anticipate that these results can help us to control, with confidence, when and how many molecules bind to these sensors, thus enabling the building of faster and more sensitive sensors.

摘要

敏感和快速的生物传感器对于各种应用非常重要,包括传染病检测和监测以及医学诊断和药物发现。 whispering gallery 模式微球光学谐振器是目前存在的最灵敏的生化传感器之一。当与频率锁定和数据处理技术结合使用时,这些传感器已经被证明能够在 30 秒内进行单分子检测。这些传感器的灵敏度受分析物分子浓度如何被输送到传感器表面以及分子在该浓度下结合所需的平均时间的影响。目前,该领域的一个问题是,在这些低浓度下,这些微传感器如何实现如此快速的响应时间。在这里,我们通过流动可视化实验和有限元模拟进行了理论和实验的调和,并证明了总分析物到达和结合时间可以达到秒级。这种快速的响应时间相对于纳米级传感器(如纳米线或纳米棒)具有优势。我们预计这些结果将帮助我们控制这些传感器结合的时间和数量,从而构建更快、更灵敏的传感器。

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