Singapore Bioimaging Consortium, Agency for Science, Technology, and Research, Singapore.
Department of Urology, Singapore General Hospital, Singapore.
Biosens Bioelectron. 2014 Jun 15;56:186-91. doi: 10.1016/j.bios.2013.12.062. Epub 2014 Jan 16.
In this work, we propose a novel glucose binding mechanism on a highly sensitive SERS substrate, in order to overcome challenges in specific glucose detection in bio-fluids. We make use of phenylboronic acid as a receptor for saccharide capture onto the substrate and the ability of the captured glucose molecule to undergo secondary binding with an alkyne-functionalized boronic acid to form a glucose-alkyne-boronic acid complex. The formation of this complex shows high selectivity for glucose, over other saccharides. In addition, the alkyne group of the alkyne-functionalized boronic acid exhibits a distinct Raman peak at 1996 cm(-1) in a biological silent region (1800-2800 cm(-1)) where most endogenous molecules, including glucose, show no Raman scattering, thus offering a high sensitivity over other SERS glucose sensing. The substrate offers long-term stability, as well as high SERS enhancement to the glucose-alkyne boronic acid complex on substrate. In addition, the reversibility of SERS signals at various incubation stages also shows reusability capabilities, whereas positive results in clinical urine samples demonstrate clinical feasibility. All these strongly suggest that this newly developed SERS-based assay offers great potential in glucose sensing.
在这项工作中,我们提出了一种新颖的葡萄糖结合机制,应用于高灵敏度 SERS 基底,以克服生物流体中特定葡萄糖检测的挑战。我们利用苯硼酸作为受体,用于将糖捕获到基底上,并且捕获的葡萄糖分子具有与炔基功能化硼酸进行二次结合的能力,以形成葡萄糖-炔基-硼酸络合物。该络合物的形成对葡萄糖具有高度选择性,超过了其他糖。此外,炔基功能化硼酸的炔基在生物静默区(1800-2800 cm(-1))中显示出独特的拉曼峰,在该区域大多数内源性分子,包括葡萄糖,没有拉曼散射,因此比其他 SERS 葡萄糖传感具有更高的灵敏度。该基底提供了长期稳定性,以及对基底上葡萄糖-炔基硼酸络合物的高 SERS 增强。此外,在不同孵育阶段的 SERS 信号的可逆性也显示了可重复使用的能力,而临床尿液样本的阳性结果则证明了临床可行性。所有这些都强烈表明,这种新开发的基于 SERS 的测定方法在葡萄糖传感方面具有巨大的潜力。