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Label-Free Biosensing with High Selectivity in Complex Media using Microtoroidal Optical Resonators

机译:使用微环形光学谐振器在复杂介质中具有高选择性的无标记生物传感

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摘要

Although label-free biosensors comprised of optical microcavities inherently possess the capability of resolving molecular interactions at individual level, this extreme sensitivity restricts their convenience for large scale applications by inducing vulnerability towards non-specific interactions that readily occur within complex media. Therefore, the use of optical microresonators for biosensing is mostly limited within strictly defined laboratory conditions, instead of field applications as early detection of cancer markers in blood, or identification of contamination in food. Here, we propose a novel surface modification strategy suitable for but not limited to optical microresonator based biosensors, enabling highly selective biosensing with considerable sensitivity as well. Using a robust, silane-based surface coating which is simultaneously protein resistant and bioconjugable, we demonstrate that it becomes possible to perform biosensing within complex media, without compromising the sensitivity or reliability of the measurement. Functionalized microtoroids are successfully shown to resist nonspecific interactions, while simultaneously being used as sensitive biological sensors. This strategy could pave the way for important applications in terms of extending the use of state-of-the-art biosensors for solving problems similar to the aforementioned.
机译:尽管由光学微腔组成的无标记生物传感器固有地具有在单个水平上解析分子相互作用的能力,但是这种极高的灵敏度通过引起对复杂介质中容易发生的非特异性相互作用的脆弱性,限制了它们在大规模应用中的便利性。因此,光学微谐振器用于生物传感的用途主要限于严格定义的实验室条件,而不是作为在血液中早期检测癌症标记或识别食品中污染的现场应用。在这里,我们提出了一种新颖的表面修饰策略,适用于但不限于基于光学微谐振器的生物传感器,还可以实现具有高度敏感性的高度选择性生物传感。使用坚固的,基于硅烷的表面涂层,该涂层同时具有蛋白质抗性和生物共轭性,我们证明了在复杂介质内进行生物传感成为可能,而不会影响测量的灵敏度或可靠性。功能化的微环已成功显示出可以抵抗非特异性相互作用,同时被用作敏感的生物传感器。就扩展解决上述问题的最新生物传感器的使用而言,该策略可为重要应用铺平道路。

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