Multi-step microfluidic device for studying cancer metastasis

被引:90
作者
Chaw, K. C.
Manimaran, M.
Tay, E. H.
Swaminathan, S.
机构
[1] Inst Bioengn & Nanotechnol, Singapore 138669, Singapore
[2] Med Biol Inst, Singapore 138673, Singapore
[3] NUS, Grad Sch Integrated Sci & Engn, Singapore 117598, Singapore
[4] Dept Mech Engn, Singapore 119260, Singapore
[5] Oncol Res Inst, Dept Physiol, Singapore 117597, Singapore
关键词
D O I
10.1039/b707399m
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
This paper describes a multi-step microfluidic device for studying the deformation and extravasation of primary tumor cells. Prior to extravasation, primary tumor cells undergo sequential steps of deformation through the capillaries, before adhering and transmigrating through the endothelial lining and basement membrane. To study this cascade of events, we fabricated a multi-step microfluidic device whose microgaps were coated with Matrigel to mimic the basement membrane. The microchannel was lined with human microvascular endothelial cells (HMECs) to replicate the endothelial lining. Analysis of deformation, biological and migratory capabilities of various tumor cell lines viz. HepG2, HeLa, and MDA-MB 435S were quantified using the fabricated device. After deformation, the cells' viabilities were significantly reduced and their doubling times were simultaneously increased, indicating changes in their biological capability. However, cell deformation did not significantly reduce their cell motility. Cell motility was co-assessed using the cell's migration rate and the overall population's percentage migration under various conditions (no barrier, Matrigel and Matrigel-HMEC). The device was also used to quantify the effects of Matrigel and the endothelial lining on cell migration. Our results suggest that both played an independent role in inhibiting cell extravasation, with the Matrigel significantly slowing down cell movement and the endothelial lining reducing the total number of transmigrated cells.
引用
收藏
页码:1041 / 1047
页数:7
相关论文
共 30 条
[1]   Intravascular origin of metastasis from the proliferation of endothelium-attached tumor cells: a new model for metastasis [J].
Al-Mehdi, AB ;
Tozawa, K ;
Fisher, AB ;
Shientag, L ;
Lee, A ;
Muschel, RJ .
NATURE MEDICINE, 2000, 6 (01) :100-102
[2]   Tumor necrosis factor-related apoptosis-inducing ligand-mediated proliferation of tumor cells with receptor-proximal apoptosis defects [J].
Baader, E ;
Toloczko, A ;
Fuchs, U ;
Schmid, I ;
Beltinger, C ;
Ehrhardt, H ;
Debatin, KM ;
Jeremias, I .
CANCER RESEARCH, 2005, 65 (17) :7888-7895
[4]   3D-extravasation model -: selection of highly motile and metastatic cancer cells [J].
Brandt, B ;
Heyder, C ;
Gloria-Maercker, E ;
Hatzmann, W ;
Rötger, A ;
Kemming, D ;
Zänker, KS ;
Entschladen, F ;
Dittmar, T .
SEMINARS IN CANCER BIOLOGY, 2005, 15 (05) :387-395
[5]   New technologies for automated cell counting based on optical image analysis 'The Cellscreen' [J].
Brinkmann, M ;
Lütkemeyer, D ;
Gudermann, F ;
Lehmann, J .
CYTOTECHNOLOGY, 2002, 38 (1-2) :119-127
[6]   A quantitative observation and imaging of single tumor cell migration and deformation using a multi-gap microfluidic device representing the blood vessel [J].
Chaw, K. C. ;
Manimaran, M. ;
Tay, Francis E. H. ;
Swaminathan, S. .
MICROVASCULAR RESEARCH, 2006, 72 (03) :153-160
[7]   Untangling the roots of cancer [J].
Gibbs, WW .
SCIENTIFIC AMERICAN, 2003, 289 (01) :56-65
[8]   DYNAMICS OF NEUTROPHIL ROLLING OVER STIMULATED ENDOTHELIUM IN-VITRO [J].
GOETZ, DJ ;
ELSABBAN, ME ;
PAULI, BU ;
HAMMER, DA .
BIOPHYSICAL JOURNAL, 1994, 66 (06) :2202-2209
[9]   Realtime visualization of tumor cell/endothelial cell interactions during transmigration across the endothelial barrier [J].
Heyder, C ;
Gloria-Maercker, E ;
Entschladen, F ;
Hatzmann, W ;
Niggemann, B ;
Zänker, KS ;
Dittmar, T .
JOURNAL OF CANCER RESEARCH AND CLINICAL ONCOLOGY, 2002, 128 (10) :533-538
[10]   Microfluidic system for measuring neutrophil migratory responses to fast switches of chemical gradients [J].
Irimia, D ;
Liu, SY ;
Tharp, WG ;
Samadani, A ;
Toner, M ;
Poznansky, MC .
LAB ON A CHIP, 2006, 6 (02) :191-198