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“连接世界——微流控技术的广泛应用展望”。

"Connecting worlds - a view on microfluidics for a wider application".

机构信息

Process and Systems Engineering Center (PROSYS), Department of Chemical and Biochemical Engineering, Technical University of Denmark, Building 229, 2800 Kgs. Lyngby, Denmark.

Process and Systems Engineering Center (PROSYS), Department of Chemical and Biochemical Engineering, Technical University of Denmark, Building 229, 2800 Kgs. Lyngby, Denmark.

出版信息

Biotechnol Adv. 2018 Jul-Aug;36(4):1341-1366. doi: 10.1016/j.biotechadv.2018.05.001. Epub 2018 May 4.

Abstract

From its birth, microfluidics has been referenced as a revolutionary technology and the solution to long standing technological and sociological issues, such as detection of dilute compounds and personalized healthcare. Microfluidics has for example been envisioned as: (1) being capable of miniaturizing industrial production plants, thereby increasing their automation and operational safety at low cost; (2) being able to identify rare diseases by running bioanalytics directly on the patient's skin; (3) allowing health diagnostics in point-of-care sites through cheap lab-on-a-chip devices. However, the current state of microfluidics, although technologically advanced, has so far failed to reach the originally promised widespread use. In this paper, some of the aspects are identified and discussed that have prevented microfluidics from reaching its full potential, especially in the chemical engineering and biotechnology fields, focusing mainly on the specialization on a single target of most microfluidic devices and offering a perspective on the alternate, multi-use, "plug and play" approach. Increasing the flexibility of microfluidic platforms, by increasing their compatibility with different substrates, reactions and operation conditions, and other microfluidic systems is indeed of surmount importance and current academic and industrial approaches to modular microfluidics are presented. Furthermore, two views on the commercialization of plug-and-play microfluidics systems, leading towards improved acceptance and more widespread use, are introduced. A brief review of the main materials and fabrication strategies used in these fields, is also presented. Finally, a step-wise guide towards the development of microfluidic systems is introduced with special focus on the integration of sensors in microfluidics. The proposed guidelines are then applied for the development of two different example platforms, and to three examples taken from literature. With this work, we aim to provide an interesting perspective on the field of microfluidics when applied to chemical engineering and biotechnology studies, as well as to contribute with potential solutions to some of its current challenges.

摘要

从诞生之日起,微流控技术就被认为是一项革命性的技术,能够解决长期存在的技术和社会学问题,如检测稀释化合物和个性化医疗。例如,微流控技术被设想为:(1)能够使工业生产工厂小型化,从而以低成本提高其自动化和操作安全性;(2)能够通过直接在患者皮肤上运行生物分析来识别罕见疾病;(3)通过廉价的芯片实验室设备在现场进行健康诊断。然而,尽管微流控技术目前已经很先进,但迄今为止仍未能达到最初承诺的广泛应用。在本文中,我们确定并讨论了一些阻止微流控技术充分发挥潜力的因素,特别是在化学工程和生物技术领域,主要侧重于大多数微流控设备针对单一目标的专业化,并提供了一种替代性的、多用途的“即插即用”方法的视角。通过增加微流控平台与不同基底、反应和操作条件以及其他微流控系统的兼容性来提高其灵活性确实至关重要,并且提出了当前学术和工业对模块化微流控的方法。此外,本文还介绍了两种关于即插即用微流控系统商业化的观点,这将有助于提高接受度和更广泛的应用。本文还简要回顾了这些领域中使用的主要材料和制造策略。最后,提出了一个微流控系统开发的分步指南,特别关注传感器在微流控中的集成。然后,我们将这些准则应用于两个不同示例平台的开发,并应用于文献中的三个示例。通过这项工作,我们旨在为化学工程和生物技术研究中应用的微流控领域提供一个有趣的视角,并为解决其当前一些挑战提供潜在的解决方案。

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