Department of Electrical and Electronic Engineering, The University of Hong Kong, Hong Kong, China.
School of Microelectronics, Southern University of Science and Technology, Shenzhen, 518055, China.
Adv Sci (Weinh). 2022 Jun;9(17):e2200910. doi: 10.1002/advs.202200910. Epub 2022 Apr 11.
The ability to quantitatively monitor various cellular activities is critical for understanding their biological functions and the therapeutic response of cells to drugs. Unfortunately, existing approaches such as fluorescent staining and impedance-based methods are often hindered by their multiple time-consuming preparation steps, sophisticated labeling procedures, and complicated apparatus. The cost-effective, monolithic gallium nitride (GaN) photonic chip has been demonstrated as an ultrasensitive and ultracompact optical refractometer in a previous work, but it has never been applied to cell studies. Here, for the first time, the so-called GaN chipscope is proposed to quantitatively monitor the progression of different intracellular processes in a label-free manner. Specifically, the GaN-based monolithic chip enables not only a photoelectric readout of cellular/subcellular refractive index changes but also the direct imaging of cellular/subcellular ultrastructural features using a customized differential interference contrast (DIC) microscope. The miniaturized chipscope adopts an ultracompact design, which can be readily mounted with conventional cell culture dishes and placed inside standard cell incubators for real-time observation of cell activities. As a proof-of-concept demonstration, its applications are explored in 1) cell adhesion dynamics monitoring, 2) drug screening, and 3) cell differentiation studies, highlighting its potential in broad fundamental cell biology studies as well as in clinical applications.
定量监测各种细胞活动的能力对于理解它们的生物学功能以及细胞对药物的治疗反应至关重要。不幸的是,现有的方法,如荧光染色和基于阻抗的方法,往往受到其繁琐的准备步骤、复杂的标记程序和复杂的仪器的限制。在以前的工作中,经济高效的单片氮化镓 (GaN) 光子芯片已被证明是一种超灵敏和超紧凑的光学折射计,但从未应用于细胞研究。在这里,首次提出所谓的 GaN 芯片显微镜,以非标记的方式定量监测不同细胞内过程的进展。具体来说,基于 GaN 的单片芯片不仅能够进行光电读取细胞/亚细胞折射率变化,还能够使用定制的微分干涉对比 (DIC) 显微镜直接成像细胞/亚细胞超微结构特征。这种微型芯片显微镜采用超紧凑的设计,可以轻松安装在常规细胞培养皿上,并放置在标准细胞培养箱内,以便实时观察细胞活动。作为概念验证演示,其应用在 1)细胞黏附动力学监测、2)药物筛选和 3)细胞分化研究中进行了探索,突出了其在广泛的基础细胞生物学研究以及临床应用中的潜力。