Magnetically and biologically active bead-patterned hydrogels

被引:42
作者
Pregibon, Daniel C.
Toner, Mehmet
Doyle, Patrick S.
机构
[1] MIT, Dept Chem Engn, Cambridge, MA 02139 USA
[2] Massachusetts Gen Hosp, Ctr Engn Med, Boston, MA 02214 USA
关键词
D O I
10.1021/la0534625
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We present a new approach to the direct patterning of biologically and magnetically active microbeads in nonbiofouling polymer scaffolds for use in microfluidic devices. Briefly, the process involves treatment of a glass substrate, conformal contact bonding of a PDMS microchannel on the substrate, filling of the channel with beads and prepolymer solution, and UV-initiated photopolymerization of a mask-defined pattern using a standard inverted microscope. This versatile and simple method allows for the rapid fabrication of dispersed or packed bead patterns in poly(ethylene glycol) (PEG) hydrogels that are covalently linked to glass surfaces. By exploiting the relative opacity of the microbeads used, we are able to create both partially exposed and fully encapsulated bead patterns. To demonstrate the utility of this new technology, we separated magnetic bead-bound B lymphocytes from T lymphocytes on a PEG-encapsulated magnetic filtration platform and also captured B cells directly on patterned, protein-decorated beads in a flow-through microfluidic device. Beyond cell sorting, the accurate patterning of industrially standardized, chemically diverse microbeads may have significant implications for microchip-based analyte detection.
引用
收藏
页码:5122 / 5128
页数:7
相关论文
共 39 条
[1]   Patterned colloidal deposition controlled by electrostatic and capillary forces [J].
Aizenberg, J ;
Braun, PV ;
Wiltzius, P .
PHYSICAL REVIEW LETTERS, 2000, 84 (13) :2997-3000
[2]   DNA hybridization and discrimination of single-nucleotide mismatches using chip-based microbead arrays [J].
Ali, MF ;
Kirby, R ;
Goodey, AP ;
Rodriguez, MD ;
Ellington, AD ;
Neikirk, DP ;
McDevitt, JT .
ANALYTICAL CHEMISTRY, 2003, 75 (18) :4732-4739
[3]   Functional hydrogel structures for autonomous flow control inside microfluidic channels [J].
Beebe, DJ ;
Moore, JS ;
Bauer, JM ;
Yu, Q ;
Liu, RH ;
Devadoss, C ;
Jo, BH .
NATURE, 2000, 404 (6778) :588-+
[4]   Microfluidic mixers: from microfabricated to self-assembling devices [J].
Campbell, CJ ;
Grzybowski, BA .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2004, 362 (1818) :1069-1086
[5]   Selective self-organization of colloids on patterned polyelectrolyte templates [J].
Chen, KM ;
Jiang, XP ;
Kimerling, LC ;
Hammond, PT .
LANGMUIR, 2000, 16 (20) :7825-7834
[6]   Patterned deposition of cells and proteins onto surfaces by using three-dimensional microfluidic systems [J].
Chiu, DT ;
Jeon, NL ;
Huang, S ;
Kane, RS ;
Wargo, CJ ;
Choi, IS ;
Ingber, DE ;
Whitesides, GM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2000, 97 (06) :2408-2413
[7]   An integrated microfluidic biochemical detection system for protein analysis with magnetic bead-based sampling capabilities [J].
Choi, JW ;
Oh, KW ;
Thomas, JH ;
Heineman, WR ;
Halsall, HB ;
Nevin, JH ;
Helmicki, AJ ;
Henderson, HT ;
Ahn, CH .
LAB ON A CHIP, 2002, 2 (01) :27-30
[8]   Protein micropatterns using a pH-responsive polymer and light [J].
Christman, KL ;
Maynard, HD .
LANGMUIR, 2005, 21 (18) :8389-8393
[9]   KINETIC APPROACH OF O-2 INHIBITION IN ULTRAVIOLET-INDUCED AND LASER-INDUCED POLYMERIZATIONS [J].
DECKER, C ;
JENKINS, AD .
MACROMOLECULES, 1985, 18 (06) :1241-1244
[10]  
DENDUKURI D, IN PRESS NAT MAT