Department of Life Science, University of Seoul, Seoul, 02504, Republic of Korea.
Department of Chemical Engineering, Konkuk University, Seoul, 05029, Republic of Korea.
Adv Sci (Weinh). 2023 Aug;10(23):e2301395. doi: 10.1002/advs.202301395. Epub 2023 May 28.
While breathing, alveoli are exposed to external irritants, which contribute to the pathogenesis of lung disease. Therefore, in situ monitoring of alveolar responses to stimuli of toxicants under in vivo environments is important to understand lung disease. For this purpose, 3D cell cultures are recently employed for examining cellular responses of pulmonary systems exposed to irritants; however, most of them have used ex situ assays requiring cell lysis and fluorescent labeling. Here, an alveoli-like multifunctional scaffold is demonstrated for optical and electrochemical monitoring of cellular responses of pneumocytes. Porous foam with dimensions like the alveoli structure is used as a backbone for the scaffold, wherein electroactive metal-organic framework crystals, optically active gold nanoparticles, and biocompatible hyaluronic acid are integrated. The fabricated multifunctional scaffold allows for label-free detection and real-time monitoring of oxidative stress released in pneumocytes under toxic-conditions via redox-active amperometry and nanospectroscopy. Moreover, cellular behavior can be statistically classified based on fingerprint Raman signals collected from the cells on the scaffold. The developed scaffold is expected to serve as a promising platform to investigate cellular responses and disease pathogenesis, owing to its versatility in monitoring electrical and optical signals from cells in situ in the 3D microenvironments.
在呼吸过程中,肺泡会接触到外部刺激物,这会导致肺部疾病的发病机制。因此,在体内环境下原位监测肺泡对有毒物质刺激的反应对于了解肺部疾病非常重要。为此,最近使用 3D 细胞培养来检查暴露于刺激物的肺系统的细胞反应;然而,它们大多数都使用需要细胞裂解和荧光标记的离体细胞测定法。在这里,展示了一种肺泡样多功能支架,用于光学和电化学监测肺细胞的细胞反应。具有类似于肺泡结构的尺寸的多孔泡沫用作支架的骨架,其中集成了电活性金属有机骨架晶体、光学活性金纳米粒子和生物相容性透明质酸。所制造的多功能支架允许通过氧化还原活性安培法和纳米光谱法对有毒条件下肺细胞释放的氧化应激进行无标记检测和实时监测。此外,可以根据从支架上的细胞收集的指纹拉曼信号对细胞行为进行统计分类。由于该支架能够原位监测 3D 微环境中细胞的电和光信号,因此有望成为研究细胞反应和疾病发病机制的有前途的平台。