Department of Cell and Molecular Biology, Faculty of Life Sciences and Biotechnology, Shahid Beheshti University, Tehran, Iran.
Department of Cell and Molecular Biology, Faculty of Life Sciences and Biotechnology, Shahid Beheshti University, Tehran, Iran.
Biosens Bioelectron. 2024 Dec 15;266:116684. doi: 10.1016/j.bios.2024.116684. Epub 2024 Aug 18.
Co-culture spheroids mimic tumor architecture more accurately than traditional 2D cell cultures, but non-invasive, long-term tracking of live cells within these 3D models remains a challenge. This study addresses this critical need by developing a novel approach for live cell imaging in U-87/HUF co-culture spheroids. We introduce water-soluble, biocompatible red carbon dots (R-CDs) exhibiting exceptional stability and brightness (21% quantum yield) specifically designed for imaging within these 3D models. Furthermore, we designed a microfluidic chip with ellipsoid-shaped microwells to efficiently generate two distinct co-culture spheroid types: direct mixing and core-shell. R-CDs enabled non-invasive tracking of U-87 cancer cell location within these 3D models demonstrating their efficacy for long-term monitoring of live cells in cancer research. This R-CD and microfluidic technology has the potential to accelerate cancer drug discovery by enabling live cell studies in 3D tumor models.
共培养球体比传统的 2D 细胞培养更能模拟肿瘤结构,但在这些 3D 模型中对活细胞进行非侵入性、长期跟踪仍然是一个挑战。本研究通过开发一种用于 U-87/HUF 共培养球体活细胞成像的新方法来满足这一关键需求。我们引入了水溶性、生物相容性的红色碳点(R-CDs),这些碳点具有出色的稳定性和亮度(21%的量子产率),专门设计用于在这些 3D 模型中进行成像。此外,我们设计了一种具有椭圆形微井的微流控芯片,可有效地生成两种不同的共培养球体类型:直接混合和核壳。R-CDs 能够在这些 3D 模型中对 U-87 癌细胞的位置进行非侵入性跟踪,证明其在癌症研究中对活细胞进行长期监测的有效性。这种 R-CD 和微流控技术有可能通过在 3D 肿瘤模型中进行活细胞研究来加速癌症药物的发现。