Li Shuying, Jiang Yuqian, Yang Xiuying, Lin Min, Dan Hanhong, Zou Shan, Cao Xudong
Department of Chemical and Biological Engineering, University of Ottawa, 161 Louis Pasteur, Ottawa, ON, K1N 6N5, Canada; Metrology Research Centre, National Research Council Canada, 100 Sussex Drive, Ottawa, ON, K1A 0R6, Canada.
Hainan Institute of Science and Technology, Haikou, China.
Anal Chim Acta. 2021 Mar 15;1150:338229. doi: 10.1016/j.aca.2021.338229. Epub 2021 Jan 22.
We investigated the application of rolling circle amplification (RCA) to modify microfluidic channels for potential sensitive detection applications. To this end, a novel in situ capturing RCA (cRCA) strategy was used to modify the inner surfaces of microfluidic channels with cRCA products that featured repeating tandem capturing aptamers specific for E. coli O157:H7 cells. We showed that the in situ cRCA reaction modified microfluidic channels demonstrated significantly enhanced capturing efficiency in a wide range of flow rates when compared with the unit-aptamer approach. We demonstrated for the first time that microfluidic surfaces modified with the in situ cRCA products showed peak capturing performances both in terms of target capturing efficiency and specificity, and this was likely due to unexpected base-pairing that resulted in altered secondary structures of the capturing aptamers. Our data suggest that the in situ cRCA surface modification is a promising strategy to improve capturing performances in microfluidic devices in sensitive detection applications that also require high throughput. However, cRCA reaction conditions, particularly reaction time and concentrations of initial circular template, must be carefully investigated before the potentials of the in situ cRCA surface modification approach can be fully realized.
我们研究了滚环扩增(RCA)在修饰微流控通道以用于潜在的灵敏检测应用中的应用。为此,采用了一种新颖的原位捕获RCA(cRCA)策略,用具有针对大肠杆菌O157:H7细胞的重复串联捕获适体的cRCA产物修饰微流控通道的内表面。我们表明,与单位适体方法相比,原位cRCA反应修饰的微流控通道在广泛的流速范围内显示出显著提高的捕获效率。我们首次证明,用原位cRCA产物修饰的微流控表面在目标捕获效率和特异性方面均表现出峰值捕获性能,这可能是由于意外的碱基配对导致捕获适体的二级结构发生改变。我们的数据表明,原位cRCA表面修饰是一种有前途的策略,可在需要高通量的灵敏检测应用中提高微流控装置的捕获性能。然而,在充分实现原位cRCA表面修饰方法的潜力之前,必须仔细研究cRCA反应条件,特别是反应时间和初始环状模板的浓度。