rGO nanomaterial-mediated cancer targeting and photothermal therapy in a microfluidic co-culture platform.
Seok Gyu MunHyung Woo ChoiJong Min LeeJae Hyun LimJang Ho HaMin-Jung KangEun-Joong KimLifeng KangBong Geun ChungPublished in: Nano convergence (2020)
We developed the microfluidic co-culture platform to study photothermal therapy applications. We conjugated folic acid (FA) to target breast cancer cells using reduced graphene oxide (rGO)-based functional nanomaterials. To characterize the structure of rGO-based nanomaterials, we analyzed the molecular spectrum using UV-visible and Fourier-transform infrared spectroscopy (FT-IR). We demonstrated the effect of rGO-FA-based nanomaterials on photothermal therapy of breast cancer cells in the microfluidic co-culture platform. From the microfluidic co-culture platform with breast cancer cells and human umbilical vein endothelial cells (HUVECs), we observed that the viability of breast cancer cells treated with rGO-FA-based functional nanomaterials was significantly decreased after near-infrared (NIR) laser irradiation. Therefore, this microfluidic co-culture platform could be a potentially powerful tool for studying cancer cell targeting and photothermal therapy.
Keyphrases
- reduced graphene oxide
- high throughput
- breast cancer cells
- gold nanoparticles
- single cell
- circulating tumor cells
- endothelial cells
- cancer therapy
- papillary thyroid
- mass spectrometry
- radiation therapy
- lymph node metastasis
- high resolution
- single molecule
- vascular endothelial growth factor
- high speed
- squamous cell
- aqueous solution