Nguyen Duong Thanh, Fan Yantao, Akay Yasemin M, Akay Metin
IEEE Trans Nanobioscience. 2016 Apr;15(3):289-93. doi: 10.1109/TNB.2016.2528170. Epub 2016 Mar 25.
Angiogenesis is an indispensable mechanism in physiological and pathological development of tumors that requires an adequate blood supply. Therefore, understanding the angiogenesis mechanism of tumors has become an important research area to develop reliable and effective therapies for the treatment of tumors. Although several in vivo and in vitro models were developed and used to study the underlying mechanism of angiogenesis, they showed limited success. Therefore, there is an urgent need to build a stable and cost-effective three-dimensional (3D) in vitro angiogenesis model to investigate the tumor formation. In this study, we designed a 3D in vitro angiogenesis model based on gelatin methacrylate (GelMA) hydrogel microwells to mimic an in vivo-like microenvironment for co-cultured glioblastoma and endothelial cells. Our results confirmed the in vitro formation of microtubules during the angiogenic process. We believe that our cost-effective platform can be used for the high-throughput screening of anti-angiogenesis drugs and even for the development of better treatment strategies.
血管生成是肿瘤生理和病理发展过程中不可或缺的机制,肿瘤需要充足的血液供应。因此,了解肿瘤的血管生成机制已成为开发可靠有效肿瘤治疗方法的重要研究领域。尽管已开发出多种体内和体外模型用于研究血管生成的潜在机制,但它们的成效有限。因此,迫切需要构建一种稳定且经济高效的三维(3D)体外血管生成模型来研究肿瘤形成。在本研究中,我们基于甲基丙烯酸明胶(GelMA)水凝胶微孔设计了一种3D体外血管生成模型,以模拟体内样微环境用于共培养胶质母细胞瘤和内皮细胞。我们的结果证实了血管生成过程中微管在体外的形成。我们相信,我们这个经济高效的平台可用于抗血管生成药物的高通量筛选,甚至用于开发更好的治疗策略。