Shen Ying, Huang Zeyu, Huang Feng, He Yonghong, Ye Ziling, Zhang Hongjian, Guo Cuixia
School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou, China.
Shenzhen Key Laboratory for Minimal Invasive Medical Technologies, Institute of Optical Imaging and Sensing, Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, China.
Front Chem. 2022 Mar 23;10:880081. doi: 10.3389/fchem.2022.880081. eCollection 2022.
Interferometry has been widely used in biosensing due to its ability to acquire molecular affinity and kinetics in real-time. However, interferometric-based sensors are susceptible to environmental disturbances, including temperature and non-specific binding of target molecules, which reduces their detection robustness. To address this shortcoming, this paper proposes a self-referencing interference sensor based on coherence multiplexing to resist environmental disturbances. The proposed sensor can address temperature and non-specific binding, but it is not limited only to these types of disturbances. In the proposed sensor design, each sensor signal is encoded using a specific optical path difference determined by the optical thickness of a sensor chip. In addition, two sensor signals for disturbances tracking and biomolecule detection are detected simultaneously without additional cost to the second spectrometer and then differenced to achieve real-time self-reference. The temperature fluctuations experiments and specific binding experiments of protein A to IgG are performed to verify the performance of the proposed sensor. The results demonstrate that the proposed sensor can eliminate non-specific binding and temperature disturbances in real-time during biomolecule detection, achieving higher detection robustness. The proposed sensor is suitable for applications that require large-scale testing of biomolecular interactions, such as drug screening.
干涉测量法因其能够实时获取分子亲和力和动力学信息而在生物传感领域得到广泛应用。然而,基于干涉测量的传感器易受环境干扰,包括温度和目标分子的非特异性结合,这降低了它们的检测稳健性。为解决这一缺点,本文提出一种基于相干复用的自参考干涉传感器,以抵抗环境干扰。所提出的传感器能够解决温度和非特异性结合问题,但不仅限于这些类型的干扰。在所提出的传感器设计中,每个传感器信号使用由传感器芯片光学厚度确定的特定光程差进行编码。此外,用于干扰跟踪和生物分子检测的两个传感器信号在无需额外配备第二台光谱仪的情况下同时被检测,然后进行差分以实现实时自参考。进行了温度波动实验以及蛋白A与IgG的特异性结合实验,以验证所提出传感器的性能。结果表明,所提出的传感器能够在生物分子检测过程中实时消除非特异性结合和温度干扰,实现更高的检测稳健性。所提出的传感器适用于需要对生物分子相互作用进行大规模测试的应用,如药物筛选。