Key Laboratory of Biorheological Science and Technology, Ministry of Education, Bioengineering College, Chongqing University, Chongqing 400030, China.
Biosensors (Basel). 2021 Oct 12;11(10):385. doi: 10.3390/bios11100385.
Liquid crystals (LCs) with stimuli-responsive configuration transition and optical anisotropic properties have attracted enormous interest in the development of simple and label-free biosensors. The combination of microfluidics and the LCs offers great advantages over traditional LC-based biosensors including small sample consumption, fast analysis and low cost. Moreover, microfluidic techniques provide a promising tool to fabricate uniform and reproducible LC-based sensing platforms. In this review, we emphasize the recent development of microfluidics in the fabrication and integration of LC-based biosensors, including LC planar sensing platforms and LC droplets. Fabrication and integration of LC-based planar platforms with microfluidics for biosensing applications are first introduced. The generation and entrapment of monodisperse LC droplets with different microfluidic structures, as well as their applications in the detection of chemical and biological species, are then summarized. Finally, the challenges and future perspectives of the development of LC-based microfluidic biosensors are proposed. This review will promote the understanding of microfluidic techniques in LC-based biosensors and facilitate the development of LC-based microfluidic biosensing devices with high performance.
具有刺激响应构象转变和各向异性光学性质的液晶 (LC) 在开发简单且无标记的生物传感器方面引起了极大的兴趣。微流控技术与 LC 的结合相对于基于传统 LC 的生物传感器具有许多优势,包括样品消耗少、分析速度快和成本低。此外,微流控技术为制造均匀且可重复的基于 LC 的传感平台提供了有前途的工具。在这篇综述中,我们强调了微流控技术在基于 LC 的生物传感器的制造和集成方面的最新发展,包括 LC 平面传感平台和 LC 液滴。首先介绍了基于 LC 的平面平台与微流控技术在生物传感应用中的制造和集成。然后总结了具有不同微流控结构的单分散 LC 液滴的产生和捕获,以及它们在化学和生物物种检测中的应用。最后,提出了基于 LC 的微流控生物传感器发展的挑战和未来展望。这篇综述将促进对基于 LC 的生物传感器中微流控技术的理解,并有助于开发具有高性能的基于 LC 的微流控生物传感设备。