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设计具有手性向列液晶液滴的生物微传感器。

Designing Biological Microsensors with Chiral Nematic Liquid Crystal Droplets.

机构信息

Laboratory of Physical Chemistry and Soft Matter, Wageningen University & Research, Wageningen 6708 WE, The Netherlands.

Host-Microbe Interactomics, Wageningen University & Research, Wageningen 6708 WD, The Netherlands.

出版信息

ACS Appl Mater Interfaces. 2022 Aug 24;14(33):37316-37329. doi: 10.1021/acsami.2c06923. Epub 2022 Aug 15.

Abstract

Biosensing using liquid crystals has a tremendous potential by coupling the high degree of sensitivity of their alignment to their surroundings with clear optical feedback. Many existing set-ups use birefringence of nematic liquid crystals, which severely limits straightforward and frugal implementation into a sensing platform due to the sophisticated optical set-ups required. In this work, we instead utilize chiral nematic liquid crystal microdroplets, which show strongly reflected structural color, as sensing platforms for surface active agents. We systematically quantify the optical response of closely related biological amphiphiles and find unique optical signatures for each species. We detect signatures across a wide range of concentrations (from micromolar to millimolar), with fast response times (from seconds to minutes). The striking optical response is a function of the adsorption of surfactants in a nonhomogeneous manner and the topology of the chiral nematic liquid crystal orientation at the interface requiring a scattering, multidomain structure. We show that the surface interactions, in particular, the surface packing density, to be a function of both headgroup and tail and thus unique to each surfactant species. We show lab-on-a-chip capability of our method by drying droplets in high-density two-dimensional arrays and simply hydrating the chip to detect dissolved analytes. Finally, we show proof-of-principle biosensing in the healthy as well as inflamed intestinal tracts of live zebrafish larvae, demonstrating CLC droplets show a clear optical response specifically when exposed to the gut environment rich in amphiphiles. Our unique approach shows clear potential in developing on-site detection platforms and detecting biological amphiphiles in living organisms.

摘要

利用液晶进行生物传感具有巨大的潜力,它将液晶取向对周围环境的高度敏感性与清晰的光学反馈相结合。许多现有的装置使用向列相液晶的双折射,由于需要复杂的光学装置,这严重限制了将其直接且经济地应用于传感平台。在这项工作中,我们转而利用手性向列相液晶微滴作为表面活性剂的传感平台,它们表现出强烈的反射结构色。我们系统地量化了密切相关的生物两亲分子的光学响应,并为每种物质找到独特的光学特征。我们在很宽的浓度范围内(从微摩尔到毫摩尔)检测到特征,响应时间快(从秒到分钟)。这种明显的光学响应是由于表面活性剂以非均匀的方式吸附以及界面上手性向列相液晶取向的拓扑结构要求散射、多畴结构的结果。我们表明,表面相互作用,特别是表面堆积密度,是头基和尾基的函数,因此每种表面活性剂都是独特的。我们通过在高密度二维阵列中干燥液滴并简单地将芯片水化来检测溶解的分析物,展示了我们方法的片上实验室能力。最后,我们在活体斑马鱼幼虫的健康和发炎肠道中展示了生物传感的原理验证,证明 CLC 液滴在暴露于富含两亲物的肠道环境时会产生明显的光学响应。我们独特的方法在开发现场检测平台和检测活体生物中的生物两亲物方面显示出了明显的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6ed/9412956/9661e37f79d8/am2c06923_0001.jpg

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