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生物分子分析和连续生理监测策略。

Strategies for Biomolecular Analysis and Continuous Physiological Monitoring.

机构信息

Leslie Dan Faculty of Pharmacy, University of Toronto, Toronto, Ontario M5S 3M2, Canada.

The Edward S. Rogers Sr. Department of Electrical and Computer Engineering, University of Toronto, Toronto, Ontario M5S 3G4, Canada.

出版信息

J Am Chem Soc. 2021 Apr 14;143(14):5281-5294. doi: 10.1021/jacs.0c13138. Epub 2021 Apr 1.

Abstract

Portable devices capable of rapid disease detection and health monitoring are crucial to decentralizing diagnostics from clinical laboratories to the patient point-of-need. Although technologies have been developed targeting this challenge, many require the use of reporter molecules or reagents that complicate the automation and autonomy of sensors. New work in the field has targeted reagentless approaches to enable breakthroughs that will allow personalized monitoring of a wide range of biomarkers on demand. This Perspective focuses on the ability of reagentless platforms to revolutionize the field of sensing by allowing rapid and real-time analysis in resource-poor settings. First, we will highlight advantages of reagentless sensing techniques, specifically electrochemical detection strategies. Advances in this field, including the development of wearable and sensors capable of real-time monitoring of biomarkers such as nucleic acids, proteins, viral particles, bacteria, therapeutic agents, and metabolites, will be discussed. Reagentless platforms which allow for wash-free, calibration free-detection with increased dynamic range are highlighted as a key technological advance for autonomous sensing applications. Furthermore, we will highlight remaining challenges which must be overcome to enable widespread use of reagentless devices. Finally, future prospects and potential breakthroughs in precision medicine that will arise as a result of further development of reagentless sensing approaches are discussed.

摘要

便携式设备能够快速进行疾病检测和健康监测,对于将诊断从临床实验室去中心化到患者的需求点至关重要。尽管已经开发出针对这一挑战的技术,但许多技术都需要使用报告分子或试剂,这使得传感器的自动化和自主性变得复杂。该领域的新工作已经针对无试剂方法进行了针对性研究,以实现突破,从而能够按需对广泛的生物标志物进行个性化监测。本观点重点介绍了无试剂平台通过允许在资源匮乏的环境中进行快速实时分析来彻底改变传感领域的能力。首先,我们将重点介绍无试剂传感技术的优势,特别是电化学检测策略。将讨论该领域的进展,包括可实时监测核酸、蛋白质、病毒颗粒、细菌、治疗剂和代谢物等生物标志物的可穿戴和传感器的开发。无试剂平台允许进行免清洗、免校准的检测,并具有更大的动态范围,这是自主传感应用的关键技术进步。此外,我们将重点介绍为了实现无试剂设备的广泛应用,必须克服的剩余挑战。最后,讨论了由于进一步开发无试剂传感方法而在精准医疗方面可能出现的未来前景和潜在突破。

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