State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210023, China.
Angew Chem Int Ed Engl. 2021 Dec 1;60(49):25762-25765. doi: 10.1002/anie.202111608. Epub 2021 Nov 3.
With reduced background and high sensitivity, photoelectrochemistry (PEC) may be applied as an intracellular nanotool and open a new technological direction of single-cell study. Nevertheless, the present palette of single-cell tools lacks such a PEC-oriented solution. Here a dual-functional photocathodic single-cell nanotool capable of direct electroosmotic intracellular drug delivery and evaluation of oxidative stress is devised by engineering a target-specific organic molecule/NiO/Ni film at the tip of a nanopipette. Specifically, the organic molecule probe serves simultaneously as the biorecognition element and sensitizer to synergize with p-type NiO. Upon intracellular delivery at picoliter level, the oxidative stress effect will cause structural change of the organic probe, switching its optical absorption and altering the cathodic response. This work has revealed the potential of PEC single-cell nanotool and extended the boundary of current single-cell electroanalysis.
具有低背景和高灵敏度的光电化学(PEC)可作为一种细胞内纳米工具,并为单细胞研究开辟新的技术方向。然而,目前的单细胞工具缺乏这样一种面向 PEC 的解决方案。在这里,通过在纳米管尖端构建靶向特定有机分子/NiO/Ni 薄膜,设计了一种双功能光电阴极单细胞纳米工具,能够直接进行电渗细胞内药物输送和评估氧化应激。具体来说,该有机分子探针同时作为生物识别元件和敏化剂与 p 型 NiO 协同作用。在 picoliter 级别的细胞内递送后,氧化应激效应会导致有机探针的结构发生变化,从而改变其光学吸收并改变阴极响应。这项工作揭示了 PEC 单细胞纳米工具的潜力,并扩展了当前单细胞电分析的边界。