Jeong Su-Yeong, Lee Ji-Hyun, Shin Yoojin, Chung Seok, Kuh Hyo-Jeong
Department of Biomedicine & Health Sciences, Graduate School, The Catholic University of Korea, Seoul, Republic of Korea.
Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts, United States of America.
PLoS One. 2016 Jul 8;11(7):e0159013. doi: 10.1371/journal.pone.0159013. eCollection 2016.
Multicellular 3D culture and interaction with stromal components are considered essential elements in establishing a 'more clinically relevant' tumor model. Matrix-embedded 3D cultures using a microfluidic chip platform can recapitulate the microscale interaction within tumor microenvironments. As a major component of tumor microenvironment, cancer-associated fibroblasts (CAFs) play a role in cancer progression and drug resistance. Here, we present a microfluidic chip-based tumor tissue culture model that integrates 3D tumor spheroids (TSs) with CAF in proximity within a hydrogel scaffold. HT-29 human colorectal carcinoma cells grew into 3D TSs and the growth was stimulated when co-cultured with fibroblasts as shown by 1.5-folds increase of % changes in diameter over 5 days. TS cultured for 6 days showed a reduced expression of Ki-67 along with increased expression of fibronectin when co-cultured with fibroblasts compared to mono-cultured TSs. Fibroblasts were activated under co-culture conditions, as demonstrated by increases in α-SMA expression and migratory activity. When exposed to paclitaxel, a survival advantage was observed in TSs co-cultured with activated fibroblasts. Overall, we demonstrated the reciprocal interaction between TSs and fibroblasts in our 7-channel microfluidic chip. The co-culture of 3D TS-CAF in a collagen matrix-incorporated microfluidic chip may be useful to study the tumor microenvironment and for evaluation of drug screening and evaluation.
多细胞3D培养以及与基质成分的相互作用被认为是建立“更具临床相关性”肿瘤模型的基本要素。使用微流控芯片平台的基质包埋3D培养可以重现肿瘤微环境内的微观相互作用。作为肿瘤微环境的主要成分,癌症相关成纤维细胞(CAF)在癌症进展和耐药性中发挥作用。在此,我们展示了一种基于微流控芯片的肿瘤组织培养模型,该模型在水凝胶支架中将3D肿瘤球体(TS)与CAF近距离整合。HT-29人结肠癌细胞生长成3D TS,与成纤维细胞共培养时生长受到刺激,5天内直径变化百分比增加了1.5倍。与单培养的TS相比,与成纤维细胞共培养6天的TS显示Ki-67表达降低,同时纤连蛋白表达增加。在共培养条件下,成纤维细胞被激活,α-SMA表达和迁移活性增加证明了这一点。当暴露于紫杉醇时,与激活的成纤维细胞共培养的TS中观察到生存优势。总体而言,我们在7通道微流控芯片中证明了TS与成纤维细胞之间的相互作用。在包含胶原基质的微流控芯片中3D TS-CAF的共培养可能有助于研究肿瘤微环境以及用于药物筛选和评估。