DOI: 10.1021/acs.analchem.6c02453 ISSN: 0003-2700

Internalized Liquid Crystal Microcapsules for pH Sensing in Living Single Cells

Wenjun Liao, Jun Li, Xueting Xie, Tianzi Song, Honghua Li, Qiyu Wu, Ling Lin

Abstract

Liquid crystal (LC) materials provide a unique sensing platform because their long-range molecular order is highly sensitive to interfacial physicochemical changes. However, most LC-based systems operate at extracellular interfaces, limiting their applicability for intracellular analysis in living cells. Here, we report cell-internalized liquid crystal microcapsules for configuration-based monitoring of local intracellular pH-responsive changes. The sensing platform, denoted M-E7PBA, consists of an E7 liquid crystal core doped with pentyl biphenyl carboxylic acid (PBA) and encapsulated within a polyelectrolyte shell via layer-by-layer self-assembly. Protonation of PBA modulates interfacial anchoring, inducing a reversible radial–bipolar transition of the LC director that can be directly visualized under polarized optical microscopy. This interfacial transduction mechanism enables optical detection of pH variations over a physiologically relevant range (5.8–7.8) with a resolution of 0.1 pH units. Importantly, microfluidic control enables efficient and reproducible internalization of the LC microcapsules, allowing intracellular LC optical measurements at the single-cell level. Using this platform, vincristine-induced intracellular acidification in HeLa cells was monitored in real time. These results establish a microfluidic-enabled LC-based analytical strategy for probing intracellular biochemical dynamics in living cells.

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