College of Chemistry and Chemical Engineering, Xinyang Key Laboratory of Functional Nanomaterials for Bioanalysis, Xinyang Normal University, Xinyang, 464000, People's Republic of China.
Mikrochim Acta. 2022 Feb 7;189(3):89. doi: 10.1007/s00604-022-05203-x.
For real-time evaluation of the cell behavior and function under in vivo-like 3D environment, the 3D functionalized scaffolds simultaneously integrate the function of 3D cell culture, and electrochemical sensing is a convincing candidate. Herein, FeO nanoparticles as the nanozyme (peroxide oxidase mimics) were modified on graphene foam scaffold to construct a 3D integrated platform. The platform displayed a wide linear range of 100 nM to 20 μM and a high sensitivity of 53.2 nA μM toward detection of hydrogen peroxide (HO) under the working potential of + 0.6 V (vs. Ag/AgCl). The obtained 3D scaffold also displayed satisfactory selectivity toward the possible interferents that appeared in the cell culture environment. Furthermore, the cells still maintained high cell viability (almost 100%) after their growth and proliferation on the scaffold for 7 days. With the superior performance on cell culture and electrochemical monitoring, the functions on the 3D culture of MCF-7 or HeLa cells and in situ monitoring of cell-released HO was easily achieved on this 3D platform, which show its great application prospects on further cancer-related disease diagnosis or drug screening. A nanozyme-based three-dimensional graphene scaffold was successfully constructed for cell culture and identification of cancer cells through in situ electrochemical monitoring of the cell-released HO.
为了实时评估在类似体内的 3D 环境下细胞的行为和功能,3D 功能化支架同时集成了 3D 细胞培养的功能,而电化学传感是一个有说服力的候选者。在此,将 FeO 纳米粒子作为纳米酶(过氧化物氧化酶模拟物)修饰在石墨烯泡沫支架上,构建了 3D 集成平台。该平台在工作电位为+0.6 V(相对于 Ag/AgCl)时,对过氧化氢(HO)的检测表现出 100 nM 至 20 μM 的宽线性范围和 53.2 nA μM 的高灵敏度。所获得的 3D 支架对细胞培养环境中可能出现的干扰物质也表现出令人满意的选择性。此外,细胞在支架上生长和增殖 7 天后仍保持近 100%的高细胞活力。由于其在细胞培养和电化学监测方面的卓越性能,该 3D 平台很容易实现 MCF-7 或 HeLa 细胞的 3D 培养和细胞释放的 HO 的原位监测,这表明其在进一步的癌症相关疾病诊断或药物筛选方面具有广阔的应用前景。通过原位电化学监测细胞释放的 HO,成功构建了基于纳米酶的 3D 石墨烯支架,用于细胞培养和癌细胞的鉴定。