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用于高级生理监测的生物分子传感器。

Biomolecular sensors for advanced physiological monitoring.

作者信息

Flynn Connor D, Chang Dingran, Mahmud Alam, Yousefi Hanie, Das Jagotamoy, Riordan Kimberly T, Sargent Edward H, Kelley Shana O

机构信息

Department of Chemistry, Faculty of Arts & Science, University of Toronto, Toronto, ON Canada.

Department of Chemistry, Weinberg College of Arts & Sciences, Northwestern University, Evanston, IL USA.

出版信息

Nat Rev Bioeng. 2023 May 11:1-16. doi: 10.1038/s44222-023-00067-z.

Abstract

Body-based biomolecular sensing systems, including wearable, implantable and consumable sensors allow comprehensive health-related monitoring. Glucose sensors have long dominated wearable bioanalysis applications owing to their robust continuous detection of glucose, which has not yet been achieved for other biomarkers. However, access to diverse biological fluids and the development of reagentless sensing approaches may enable the design of body-based sensing systems for various analytes. Importantly, enhancing the selectivity and sensitivity of biomolecular sensors is essential for biomarker detection in complex physiological conditions. In this Review, we discuss approaches for the signal amplification of biomolecular sensors, including techniques to overcome Debye and mass transport limitations, and selectivity improvement, such as the integration of artificial affinity recognition elements. We highlight reagentless sensing approaches that can enable sequential real-time measurements, for example, the implementation of thin-film transistors in wearable devices. In addition to sensor construction, careful consideration of physical, psychological and security concerns related to body-based sensor integration is required to ensure that the transition from the laboratory to the human body is as seamless as possible.

摘要

基于身体的生物分子传感系统,包括可穿戴、可植入和可消耗传感器,可实现全面的健康相关监测。由于葡萄糖传感器能够对葡萄糖进行可靠的连续检测,长期以来一直主导着可穿戴生物分析应用,而其他生物标志物尚未实现这一点。然而,获取多种生物流体以及开发无试剂传感方法可能有助于设计用于各种分析物的基于身体的传感系统。重要的是,提高生物分子传感器的选择性和灵敏度对于在复杂生理条件下检测生物标志物至关重要。在本综述中,我们讨论了生物分子传感器信号放大的方法,包括克服德拜和传质限制的技术,以及选择性提高,如整合人工亲和识别元件。我们重点介绍了能够实现连续实时测量的无试剂传感方法,例如在可穿戴设备中实现薄膜晶体管。除了传感器构建外,还需要仔细考虑与基于身体的传感器集成相关的物理、心理和安全问题,以确保从实验室到人体的过渡尽可能无缝。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c4df/10173248/901cc5a73aaf/44222_2023_67_Fig1_HTML.jpg

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