Department of Bioengineering, University of Washington, 3720 15th Ave NE, Seattle, Washington 98195, United States.
Langmuir. 2012 Feb 14;28(6):3338-44. doi: 10.1021/la2043153. Epub 2012 Jan 30.
Silicon photonic microring resonators have established their potential for label-free and low-cost biosensing applications. However, the long-term performance of this optical sensing platform requires robust surface modification and biofunctionalization. Herein, we demonstrate a conjugation strategy based on an organophosphonate surface coating and vinyl sulfone linker to biofunctionalize silicon resonators for biomolecular sensing. To validate this method, a series of glycans, including carbohydrates and glycoconjugates, were immobilized on divinyl sulfone (DVS)/organophosphonate-modified microrings and used to characterize carbohydrate-protein and norovirus particle interactions. This biofunctional platform was able to orthogonally detect multiple specific carbohydrate-protein interactions simultaneously. Additionally, the platform was capable of reproducible binding after multiple regenerations by high-salt, high-pH, or low-pH solutions and after 1 month storage in ambient conditions. This remarkable stability and durability of the organophosphonate immobilization strategy will facilitate the application of silicon microring resonators in various sensing conditions, prolong their lifetime, and minimize the cost for storage and delivery; these characteristics are requisite for developing biosensors for point-of-care and distributed diagnostics and other biomedical applications. In addition, the platform demonstrated its ability to characterize carbohydrate-mediated host-virus interactions, providing a facile method for discovering new antiviral agents to prevent infectious disease.
硅光子微环谐振器在无标记和低成本生物传感应用方面已经显示出其潜力。然而,这种光学传感平台的长期性能需要稳健的表面修饰和生物功能化。在此,我们展示了一种基于有机膦表面涂层和乙烯基砜接头的键合策略,用于生物功能化硅谐振器进行生物分子传感。为了验证这种方法,我们将一系列聚糖,包括碳水化合物和糖缀合物,固定在二乙烯基砜(DVS)/有机膦修饰的微环上,并用于表征碳水化合物-蛋白质和诺如病毒颗粒相互作用。这个生物功能平台能够同时正交检测多种特定的碳水化合物-蛋白质相互作用。此外,该平台能够在多次再生后通过高盐、高 pH 值或低 pH 值溶液以及在环境条件下储存 1 个月后进行可重复的结合。这种有机膦固定化策略的出色稳定性和耐用性将促进硅微环谐振器在各种传感条件下的应用,延长其使用寿命,并降低存储和运输成本;这些特性对于开发用于即时护理和分布式诊断以及其他生物医学应用的生物传感器是必需的。此外,该平台还展示了其表征碳水化合物介导的宿主-病毒相互作用的能力,为发现新的抗病毒药物以预防传染病提供了一种简便的方法。