Frigoli Margaux, Lowdon Joseph W, Caldara Manlio, Cleij Thomas J, Diliën Hanne, Eersels Kasper, van Grinsven Bart
Sensor Engineering Department, Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands.
ACS Omega. 2024 May 23;9(22):23155-23171. doi: 10.1021/acsomega.4c01478. eCollection 2024 Jun 4.
Ensuring a rapid and accurate identification of harmful bacteria is crucial in various fields including environmental monitoring, food safety, and clinical diagnostics. Conventional detection methods often suffer from limitations such as long analysis time, complexity, and the need for qualified personnel. Therefore, a lot of research effort is devoted to developing technologies with the potential to revolutionize the detection of pathogenic bacteria by offering rapid, sensitive, and user-friendly platforms for point-of-care analysis. In this light, biosensors have gained significant commercial attention in recent years due to their simplicity, portability, and rapid analysis capabilities. The purpose of this review is to identify a trend by analyzing which biosensor technologies have become commercially successful in the field of bacteria detection. Moreover, we highlight the characteristics that a biosensor must possess to finally arrive in the market and therefore in the hands of the end-user, and we present critical examples of the market applications of various technologies. The aim is to investigate the reason why certain technologies have achieved commercial success and extrapolate these trends to the future economic viability of a new subfield in the world of biosensing: the development of biomimetic sensor platforms. Therefore, an overview of recent advances in the field of biomimetic bacteria detection will be presented, after which the challenges that need to be addressed in the coming years to improve market penetration will be critically evaluated. We will zoom into the current shortcomings of biomimetic sensors based on imprinting technology and aptamers and try to come up with a recommendation for further development based on the trends observed from previous commercial success stories in biosensing.
在环境监测、食品安全和临床诊断等各个领域,确保快速准确地识别有害细菌至关重要。传统检测方法往往存在诸如分析时间长、操作复杂以及需要专业人员等局限性。因此,大量研究致力于开发能够通过提供快速、灵敏且用户友好的即时检测平台来彻底变革病原菌检测的技术。鉴于此,生物传感器近年来因其简单性、便携性和快速分析能力而备受商业关注。本综述的目的是通过分析哪些生物传感器技术在细菌检测领域取得了商业成功来确定一种趋势。此外,我们强调了生物传感器最终进入市场并因此落入终端用户手中必须具备的特性,并展示了各种技术的市场应用关键示例。目的是研究某些技术取得商业成功的原因,并将这些趋势推断到生物传感新子领域的未来经济可行性:仿生传感器平台的开发。因此,将介绍仿生细菌检测领域的最新进展概述,之后将对未来几年为提高市场渗透率需要解决的挑战进行批判性评估。我们将深入探讨基于印迹技术和适配体的仿生传感器当前的缺点,并尝试根据从生物传感领域先前商业成功案例中观察到的趋势提出进一步发展的建议。