Title :
Investigating the Influence of HUVECs in the Formation of Glioblastoma Spheroids in High-Throughput Three-Dimensional Microwells
Author :
Avci, Naze G. ; Yantao Fan ; Dragomir, Andrei ; Akay, Yasemin M. ; Akay, Metin
Author_Institution :
Biomed. Eng. Dept., Univ. of Houston, Houston, TX, USA
Abstract :
Glioblastoma (GBM) is the most common form of primary brain tumor with a high infiltrative capacity, increased vascularity, and largely elusive tumor progression mechanism. The current GBM treatment methods do not increase the patient survival rate and studies using two-dimensional (2D) cell cultures and in vivo animal models to investigate GBM behavior and mechanism have limitations. Therefore, there is an increasing need for in vitro three-dimensional (3D) models that closely mimic in vivo microenvironment of the GBM tumors to understand the underlying mechanisms of the tumor progression. In this study we propose to use a 3D in vitro model to overcome these limitations, using poly (ethylene glycol) dimethyl acrylate (PEGDA) hydrogel-based microwells and co-culture GBM (U87) cells and endothelial cells (HUVEC) in the 3D microwells to provide a 3D in vitro simulation of the tumor microenvironment. Furthermore, we investigated the gene expression differences of co-cultures by quantitative real-time PCR. Our results suggested that the relative expression profiles of tumor angiogenesis markers, PECAM1/CD31, and VEGFR2, in co-cultures are consistent with in vivo GBM studies. Furthermore, we suggest that our microwell platform could provide robust and useful 3D co-culture models for high-throughput drug screening and treatment of the GBM.
Keywords :
brain; cellular biophysics; hydrogels; tumours; 2D cell culture; 3D high throughput microwells; HUVEC; PECAM1/CD31; U87 cells; VEGFR2; endothelial cells; glioblastoma spheroids formation; hydrogel; infiltrative capacity; patient survival rate; poly(ethylene glycol) dimethyl acrylate; primary brain tumor; tumor angiogenesis; tumor microenvironment; tumor progression mechanism; vascularity; Fluorescence; Gene expression; In vitro; In vivo; Solid modeling; Three-dimensional displays; Tumors; Co-culture; PEG hydrogel; endothelial cell; glioblastoma; in vitro; microwells;
Journal_Title :
NanoBioscience, IEEE Transactions on
DOI :
10.1109/TNB.2015.2477818