DocumentCode :
1754949
Title :
Engineering a High-Throughput 3-D In Vitro Glioblastoma Model
Author :
Yantao Fan ; Avci, Naze G. ; Nguyen, Duong T. ; Dragomir, Andrei ; Akay, Yasemin M. ; Feng Xu ; Akay, Metin
Author_Institution :
Dept. of Biomed. Eng., Univ. of Houston, Houston, TX, USA
Volume :
3
fYear :
2015
fDate :
2015
Firstpage :
1
Lastpage :
8
Abstract :
Glioblastoma multiforme (GBM) is the most common and malignant primary brain tumor in adults because of its highly invasive behavior. The existing treatment for GBM, which involves a combination of resection, chemotherapy, and radiotherapy, has a very limited success rate with a median survival rate of <;1 year. This is mainly because of the failure of early detection and effective treatment. We designed a novel 3-D GBM cell culture model based on microwells that could mimic in vitro environment and help to bypass the lack of suitable animal models for preclinical toxicity tests. Microwells were fabricated from simple and inexpensive polyethylene glycol material for the control of in vitro 3-D culture. We applied the 3-D micropatterning system to GBM (U-87) cells using the photolithography technique to control the cell spheroids´ shape, size, and thickness. Our preliminary results suggested that uniform GBM spheroids can be formed in 3-D, and the size of these GBM spheroids depends on the size of microwells. The viability of the spheroids generated in this manner was quantitatively evaluated using live/dead assay and shown to improve over 21 days. We believe that in vitro 3-D cell culture model could help to reduce the time of the preclinical brain tumor growth studies. The proposed novel platform could be useful and cost-effective for high-throughput screening of cancer drugs and assessment of treatment responses.
Keywords :
biomedical materials; brain; cancer; cellular biophysics; hydrogels; microfabrication; photolithography; toxicology; tumours; 3D GBM cell culture model; 3D micropatterning system; U-87 cells; cancer drugs; cell spheroid shape; chemotherapy; high-throughput 3D in vitro glioblastoma Model; in vitro 3D culture; inexpensive polyethylene glycol material; live-dead assay; malignant primary brain tumor; median survival rate; microwells; photolithography; preclinical brain tumor growth; preclinical toxicity tests; radiotherapy; resection; treatment response assessment; Cancer; Fluorescence; Glass; In vitro; Solid modeling; Three-dimensional displays; Tumors; Glioblastoma; PEG hydrogel; in vitro; microwells;
fLanguage :
English
Journal_Title :
Translational Engineering in Health and Medicine, IEEE Journal of
Publisher :
ieee
ISSN :
2168-2372
Type :
jour
DOI :
10.1109/JTEHM.2015.2410277
Filename :
7055248
Link To Document :
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