Zhou Lianjie, Kato Fumihito, Iijima Masumi, Nonaka Tomoyuki, Kuroda Shun'ichi, Ogi Hirotsugu
Graduate School of Engineering, Osaka University, Yamadaoka 2-1, Suita, Osaka 565-0871, Japan.
Department of Mechanical Engineering, Nippon Institute of Technology, Gakuendai 4-1, Miyashiro-machi, Minamisaitama, Saitama 345-8501, Japan.
Anal Chem. 2023 Apr 4;95(13):5507-5513. doi: 10.1021/acs.analchem.3c00139. Epub 2023 Mar 24.
Quartz-crystal-microbalance (QCM) biosensor is a typical label-free biosensor, and its sensitivity can be greatly improved by removing electrodes and wires that would be otherwise attached to the surfaces of the quartz resonator. The wireless-electrodeless QCM biosensor was then developed using a microelectro-mechanical systems (MEMS) process, although challenges remain in the sensitivity, the coupling efficiency, and the miniaturization (or mass production). In this study, we establish a MEMS process to obtain a large number of identical ultrasensitive and highly efficient sensor chips with dimensions of 6 mm square. The fundamental shear resonance frequency of the thinned AT-cut quartz resonator packaged in the microchannel exceeds 160 MHz, which is excited by antennas deposited on inner walls of the microchannel, significantly improving the electro-mechanical coupling efficiency in the wireless operation. The high sensitivity of the developed MEMS QCM biosensors is confirmed by the immunoglobulin G (IgG) detection using protein A and ZZ-tag displaying a bionanocapsule (ZZ-BNC), where we find that the ZZ-BNC can provide more effective binding sites and higher affinity to the target molecules, indicating a further enhancement in the sensitivity of the MEMS QCM biosensor. We then perform the label-free C-reactive protein (CRP) detection using the ZZ-BNC-functionalized MEMS QCM biosensor, which achieves a detection limit of 1 ng mL or less even with direct detection.
石英晶体微天平(QCM)生物传感器是一种典型的无标记生物传感器,通过去除原本附着在石英谐振器表面的电极和导线,其灵敏度可得到大幅提高。随后,采用微机电系统(MEMS)工艺开发了无线无电极QCM生物传感器,尽管在灵敏度、耦合效率和小型化(或大规模生产)方面仍存在挑战。在本研究中,我们建立了一种MEMS工艺,以获得大量尺寸为6平方毫米的相同的超灵敏且高效的传感器芯片。封装在微通道中的薄型AT切石英谐振器的基本剪切共振频率超过160 MHz,由沉积在微通道内壁上的天线激发,显著提高了无线操作中的机电耦合效率。通过使用展示生物纳米胶囊(ZZ-BNC)的蛋白A和ZZ标签检测免疫球蛋白G(IgG),证实了所开发的MEMS QCM生物传感器的高灵敏度,我们发现ZZ-BNC可以为目标分子提供更有效的结合位点和更高的亲和力,这表明MEMS QCM生物传感器的灵敏度进一步提高。然后,我们使用ZZ-BNC功能化的MEMS QCM生物传感器进行无标记C反应蛋白(CRP)检测,即使直接检测也能实现1 ng/mL或更低的检测限。