个人信息Personal Information
副教授
博士生导师
硕士生导师
主要任职:无
性别:男
毕业院校:中科院大连化物所
学位:博士
所在单位:化工学院
学科:分析化学. 药物分析学. 生物工程与技术
办公地点:化工实验楼G-215
联系方式:yluo@dlut.edu.cn
电子邮箱:yluo@dlut.edu.cn
A novel microfluidic model can mimic organ-specific metastasis of circulating tumor cells
点击次数:
论文类型:期刊论文
发表时间:2016-11-29
发表刊物:ONCOTARGET
收录刊物:SCIE
卷号:7
期号:48
页面范围:78421-78432
ISSN号:1949-2553
关键字:microfluidic; metastasis; circulating tumor cells; multi-organ; bionic model
摘要:A biomimetic microsystem might compensate costly and time-consuming animal metastatic models. Herein we developed a biomimetic microfluidic model to study cancer metastasis. Primary cells isolated from different organs were cultured on the microlfuidic model to represent individual organs. Breast and salivary gland cancer cells were driven to flow over primary cell culture chambers, mimicking dynamic adhesion of circulating tumor cells (CTCs) to endothelium in vivo. These flowing artificial CTCs showed different metastatic potentials to lung on the microfluidic model. The traditional nude mouse model of lung metastasis was performed to investigate the physiological similarity of the microfluidic model to animal models. It was found that the metastatic potential of different cancer cells assessed by the microfluidic model was in agreement with that assessed by the nude mouse model. Furthermore, it was demonstrated that the metastatic inhibitor AMD3100 inhibited lung metastasis effectively in both the microfluidic model and the nude mouse model. Then the microfluidic model was used to mimick liver and bone metastasis of CTCs and confirm the potential for research of multiple-organ metastasis. Thus, the metastasis of CTCs to different organs was reconstituted on the microfluidic model. It may expand the capabilities of traditional cell culture models, providing a low-cost, time-saving, and rapid alternative to animal models.