Testing & Analysis Center, Nanjing Normal University, Nanjing, 210046, China.
Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.
Anal Chem. 2020 Apr 7;92(7):5509-5516. doi: 10.1021/acs.analchem.0c00330. Epub 2020 Mar 26.
In this work, asymmetric nanochannel-ionchannel of porous anodic alumina (PAA) coupled with electrochemical detector was used for sensitive and label-free detection of cell surface glycan. The amplified ionic current caused by array nanochannels as well as the ionic current rectification (ICR) caused by asymmetric geometry endows PAA with sensitive ionic current response. Functionalized with the special molecular probe, the constructed nanofluidic device can be used for selective recognition and detection of glycan in a real-time and label-free format. In addition, due to the subnanosize of ionchannels, the probe immobilization and glycan recognition is carried out on the outer surface of PAA, avoiding the blockage of PAA nanochannel by samples, which promises the reproducibility and accuracy of the present method toward bioanalysis. Results show that the glycan concentration ranging from 10 fM to 10 nM can be successfully detected with a detection limit of ∼10 aM, which is substantially lower than most previous works. The designed strategy provides a valuable platform for sensitive and label-free detection of cell surface glycan, which acts as a promising candidate in pathological research and cancer diagnosis.
在这项工作中,多孔阳极氧化铝(PAA)的不对称纳米通道-离子通道与电化学检测器相结合,用于细胞表面糖的灵敏和无标记检测。纳米通道阵列引起的放大离子电流以及不对称几何形状引起的离子电流整流(ICR)使 PAA 具有灵敏的离子电流响应。功能化后的特殊分子探针,所构建的纳流控器件可用于糖的实时、无标记选择性识别和检测。此外,由于离子通道的亚纳米尺寸,探针固定和糖识别在 PAA 的外表面进行,避免了样品对 PAA 纳米通道的堵塞,这保证了本方法在生物分析中的重现性和准确性。结果表明,该方法可成功检测 10 fM 至 10 nM 的糖浓度,检测限约为 10 aM,明显低于大多数先前的工作。所设计的策略为细胞表面糖的灵敏和无标记检测提供了一个有价值的平台,有望成为病理研究和癌症诊断的候选方法。