生物样品处理用电动微型装置

Gloria Porro, Till Ryser, Pierre-Emmanuel Thiriet, Micaela Siria Cristofori, Carlotta Guiducci
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引用次数: 0

摘要

结合流体动力学和电场感应力的微系统已经成为操纵和隔离生物物种的有力工具。电动力学理论的进步,结合优化的微加工工艺,是开发能够直接处理未处理样品并无缝集成分析功能的高通量设备的核心。电动技术可以操纵从几纳米到几十微米的生物颗粒,达到每秒106个颗粒的吞吐量,与其他最先进的技术相当。本综述首先介绍了应用于生物粒子的电动势产生的物理现象的基本原理。然后,我们提供了现有技术的概述,重点是影响新电动微器件发展的关键因素。最后,我们深入探讨了将这些集成微系统转化为商业系统所面临的独特挑战,并强调了在体外诊断和医疗保健领域的机遇、未来的研究方向和应用。电动力学的进步使集成流体动力学和电场力的高通量微系统能够操纵生物颗粒。本文综述了用于诊断和医疗保健的电动微型设备的基本现象、现有技术、挑战和未来发展方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Electrokinetic microdevices for biological sample processing

Electrokinetic microdevices for biological sample processing
Microsystems combining fluid dynamics and electric-field-induced forces have emerged as powerful tools for manipulating and isolating biological species. Advances in electrokinetic theory, combined with optimized microfabrication processes, are at the core of the development of high-throughput devices capable of directly handling unprocessed samples and seamlessly integrating analytical functions. Electrokinetic technologies can manipulate bioparticles ranging from a few nanometres to tens of micrometres, achieving throughputs of up to 106 particles per second, comparable to other state-of-the-art techniques. This Review starts by presenting the fundamentals of physical phenomena underlying the generation of electrokinetic forces applied to biological particles. We then provide an overview of existing technologies, with a focus on key factors influencing the development of new electrokinetic microdevices. Lastly, we delve into the unique challenges associated with translating these integrated microsystems into commercial systems, and we highlight the opportunities, future research directions and applications in the fields of in vitro diagnostics and healthcare. Advances in electrokinetics enable high-throughput microsystems integrating fluid dynamics and electric field forces to manipulate bioparticles. This Review covers fundamental phenomena, existing technologies, challenges and future directions in the development of electrokinetic microdevices for diagnostics and healthcare.
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