Target delivery in a microfluidic immunosensor

被引:42
作者
Golden, Joel P.
Floyd-Smith, Tamara M.
Mott, David R.
Ligler, Frances S.
机构
[1] USN, Res Lab, Ctr Biomol Sci & Engn, Washington, DC 20375 USA
[2] USN, Res Lab, Lab Computat Phys & Fluid Dynam, Washington, DC 20375 USA
[3] Tuskegee Univ, Dept Chem Engn, Tuskegee, AL 36088 USA
关键词
mixer; grooves; microchannels; fluorescence; immunoassay; depletion;
D O I
10.1016/j.bios.2006.12.017
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
A study is presented that examines the effect of rn icrofluidic mixing elements on direct and sandwich assays performed in microchannels. Patterned grooves were embossed in the top of microchannels made in PDMS using soft lithography. The grooves redirected the fluid flowing in the channel, enhancing delivery of the target from the bulk fluid to the surface and preventing the formation of a depletion layer at the surface. Comparing assays in grooved and plain channels demonstrated that the mixers improved assay results by 26-46%. A computational flow analysis showed that the grooves caused virtual particles in the bulk flow to come close to the surface (similar to 11 mu m) which is consistent with the signal increase seen experimentally. Direct assays for several concentrations of CY5-labeled biotin were performed in the microchannels. The mixers also improved signal intensity in sandwich assays for botulinum toxin which required mixing of the reagents as well as the direction of the target to the surface. (C) 2006 Elsevier B.V. All rights reserved.
引用
收藏
页码:2763 / 2767
页数:5
相关论文
共 23 条
[1]   Adaptation of a surface plasmon resonance biosensor with miorofluidics for use with small sample volumes and long contact times [J].
Abrantes, M ;
Magone, MT ;
Boyd, LF ;
Schuck, P .
ANALYTICAL CHEMISTRY, 2001, 73 (13) :2828-2835
[2]   Microfluidic immunosensor systems [J].
Bange, A ;
Halsall, HB ;
Heineman, WR .
BIOSENSORS & BIOELECTRONICS, 2005, 20 (12) :2488-2503
[3]   Micromosaic immunoassays [J].
Bernard, A ;
Michel, B ;
Delamarche, E .
ANALYTICAL CHEMISTRY, 2001, 73 (01) :8-12
[4]   Microstructure for efficient continuous flow mixing [J].
Bessoth, FG ;
deMello, AJ ;
Manz, A .
ANALYTICAL COMMUNICATIONS, 1999, 36 (06) :213-215
[5]   USE OF THIOL-TERMINAL SILANES AND HETEROBIFUNCTIONAL CROSSLINKERS FOR IMMOBILIZATION OF ANTIBODIES ON SILICA SURFACES [J].
BHATIA, SK ;
SHRIVERLAKE, LC ;
PRIOR, KJ ;
GEORGER, JH ;
CALVERT, JM ;
BREDEHORST, R ;
LIGLER, FS .
ANALYTICAL BIOCHEMISTRY, 1989, 178 (02) :408-413
[6]   Formation of gradients of proteins on surfaces with microfluidic networks [J].
Caelen, I ;
Bernard, A ;
Juncker, D ;
Michel, B ;
Heinzelmann, H ;
Delamarche, E .
LANGMUIR, 2000, 16 (24) :9125-9130
[7]   High-sensitivity miniaturized immunoassays for tumor necrosis factor a using microfluidic systems [J].
Cesaro-Tadic, S ;
Dernick, G ;
Juncker, D ;
Buurman, G ;
Kropshofer, H ;
Michel, B ;
Fattinger, C ;
Delamarche, E .
LAB ON A CHIP, 2004, 4 (06) :563-569
[8]   Characterization of passive microfluidic mixers fabricated using soft lithography [J].
Floyd-Smith, TM ;
Golden, JP ;
Howell, PB ;
Ligler, FS .
MICROFLUIDICS AND NANOFLUIDICS, 2006, 2 (02) :180-183
[9]  
Golden J.P., 1998, US patent, Patent No. [5827748, 5,827,748]
[10]   Three-dimensional microfluidic confinement for efficient sample delivery to biosensor surfaces. Application to immunoassays on planar optical waveguides [J].
Hofmann, O ;
Voirin, G ;
Niedermann, P ;
Manz, A .
ANALYTICAL CHEMISTRY, 2002, 74 (20) :5243-5250