Department of Chemical Engineering , Massachusetts Institute of Technology , 77 Massachusetts Avenue , Cambridge , Massachusetts 02139 , United States.
ACS Nano. 2018 Apr 24;12(4):3769-3779. doi: 10.1021/acsnano.8b00980. Epub 2018 Apr 10.
The high-throughput, label-free detection of biomolecules remains an important challenge in analytical chemistry with the potential of nanosensors to significantly increase the ability to multiplex such assays. In this work, we develop an optical sensor array, printable from a single-walled carbon nanotube/chitosan ink and functionalized to enable a divalent ion-based proximity quenching mechanism for transducing binding between a capture protein or an antibody with the target analyte. Arrays of 5 × 6, 200 μm near-infrared (nIR) spots at a density of ≈300 spots/cm are conjugated with immunoglobulin-binding proteins (proteins A, G, and L) for the detection of human IgG, mouse IgM, rat IgG2a, and human IgD. Binding kinetics are measured in a parallel, multiplexed fashion from each sensor spot using a custom laser scanning imaging configuration with an nIR photomultiplier tube detector. These arrays are used to examine cross-reactivity, competitive and nonspecific binding of analyte mixtures. We find that protein G and protein L functionalized sensors report selective responses to mouse IgM on the latter, as anticipated. Optically addressable platforms such as the one examined in this work have potential to significantly advance the real-time, multiplexed biomolecular detection of complex mixtures.
生物分子的高通量、无标记检测仍然是分析化学中的一个重要挑战,纳米传感器有可能显著提高此类分析的多重检测能力。在这项工作中,我们开发了一种光学传感器阵列,可以用单壁碳纳米管/壳聚糖墨水打印,并且经过功能化处理,可以实现基于二价离子的近邻猝灭机制,从而转换捕获蛋白或抗体与目标分析物之间的结合。5×6、200 μm 近红外 (nIR) 点的阵列以 ≈300 点/cm 的密度与免疫球蛋白结合蛋白(蛋白 A、G 和 L)共轭,用于检测人 IgG、鼠 IgM、鼠 IgG2a 和人 IgD。使用带有 nIR 光电倍增管探测器的定制激光扫描成像配置,以并行、多重方式从每个传感器点测量结合动力学。这些阵列用于检查分析物混合物的交叉反应、竞争和非特异性结合。我们发现,如预期的那样,蛋白 G 和蛋白 L 功能化的传感器对后者的鼠 IgM 报告了选择性响应。在这项工作中检查的这种光学寻址平台有可能极大地促进复杂混合物的实时、多重生物分子检测。