• This record comes from PubMed

Detection of immunoglobulins in a laser induced fluorescence system utilizing polydimethysiloxane microchips with advanced surface and optical properties

. 2011 Feb 03 ; 5 (1) : 14101. [epub] 20110203

Status PubMed-not-MEDLINE Language English Country United States Media electronic

Document type Journal Article

We developed an automated laser induced fluorescence system utilizing microfluidic chips for detection and quantification of immunoglobulins. Microchips were fabricated from polydimethysiloxane (PDMS) using the so-called "prepolymerization technique." The microchip structure helped minimize the effects of PDMS autofluorescence and light scattering. Furthermore, a thin and uniform PDMS layer forming the top of the microchip enabled proper focusing and collection of the excitation beam and the emitted fluorescence, respectively. The developed system was tested for the detection of mouse immunoglobulins. The capturing antibodies were immobilized on internal microchannel walls in the form of a polyelectrolyte. We clearly show that this immobilization technique, if correctly realized, gives results with high reproducibility. After sample incubation and washing, secondary antibodies labeled by fluorescein isothiocyanate were introduced into microchannels to build a detectable complex. We show that mouse antibodies can be quantified in a wide concentration range, 0.01-100 μg ml(-1). The lower detection limit was below 0.001 μg ml(-1) (6.7 pM). The developed laser induced fluorescence (LIF) apparatus is relatively cheap and easy to construct. The total cost of the developed LIF detector is lower than a typical price of plate readers. If compared to classical ELISA (enzyme linked immunosorbent assay) plate systems, the detection of immunoglobulins or other proteins in the developed PDMS microfluidic device brings other important benefits such as reduced time demands (10 min incubation) and low reagent consumption (less than 1 μl). The cost of the developed PDMS chips is comparable with the price of commercial ELISA plates. The main troubleshooting related to the apparatus development is also discussed in order to help potential constructors.

See more in PubMed

Gotz S. and Karst U., Anal. Bioanal. Chem. ABCNBP 387, 183 (2007).10.1007/s00216-006-0820-8 PubMed DOI PMC

Hunt H. C. and Wilkinson J. S., Microfluid. Nanofluid. MNIAAR 4, 53 (2008).10.1007/s10404-007-0223-y PubMed DOI PMC

Pribyl M., Knapkova V., Snita D., and Marek M., Microelectron. Eng. MIENEF 83, 1660 (2006).10.1016/j.mee.2006.01.186 DOI

Vilkner T., Janasek D., and Manz A., Anal. Chem. ANCHAM 76, 3373 (2004).10.1021/ac040063q PubMed DOI

Yoo J. -C., Her H. -J., Kang C. J., and Kim Y. -S., Sens. Actuators B SABCEB 130, 65 (2008).10.1016/j.snb.2007.07.116 DOI

Ohashi T., Mawatari K., and Kitamori T., Biomicrofluidics BIOMGB 4, 032207 (2010).10.1063/1.3437592 PubMed DOI PMC

He H., Yuan Y., Wang W., Chiou N. R., Epstein A. J., and Lee L. J., Biomicrofluidics BIOMGB 3, 022401 (2009).10.1063/1.3116665 PubMed DOI PMC

Pittet P., Galvan J. M., Lu G. N., Blum L. J., and Leca-Bouvier B. D., Sens. Actuators B SABCEB 97, 355 (2004).10.1016/j.snb.2003.09.021 DOI

Ro K. W., Lim K., Shim B. C., and Hahn J. H., Anal. Chem. ANCHAM 77, 5160 (2005).10.1021/ac050420c PubMed DOI

Götz S. and Karst U., Sens. Actuators B SABCEB 123, 622 (2007).10.1016/j.snb.2006.08.027 DOI

Yan Q., Chen R. S., and Cheng J. K., Anal. Chim. Acta ACACAM 555, 246 (2006).10.1016/j.aca.2005.08.077 DOI

Matsuno Y., Kinoshita M., and Kakehi K., J. Pharm. Biomed. Anal. JPBADA 37, 429 (2005).10.1016/j.jpba.2004.11.024 PubMed DOI

Xu B. J., Yang M., Wang H., Zhang H. L., Jin Q. H., Zhao J. L., and Wang H. M., Sens. Actuators, A SAAPEB 152, 168 (2009).10.1016/j.sna.2009.04.005 DOI

Fister J. C., Jacobson S. C., and Ramsey J. M., Anal. Chem. ANCHAM 71, 4460 (1999).10.1021/ac990853d DOI

Ros A., Hellmich W., Duong T., and Anselmetti D., J. Biotechnol. JBITD4 112, 65 (2004).10.1016/j.jbiotec.2004.04.020 PubMed DOI

Hellmich W., Pelargus C., Leffhalm K., Ros A., and Anselmetti D., Electrophoresis ELCTDN 26, 3689 (2005).10.1002/elps.200500185 PubMed DOI

Shen F., Yang M., Yu Y., and Kang Q., Chin. Chem. Lett. CCLEE7 19, 1333 (2008).10.1016/j.cclet.2008.06.057 DOI

Kong J., Jiang L., Su X. O., Qin J. H., Du Y. G., and Lin B. C., Lab Chip LCAHAM 9, 1541 (2009).10.1039/b818430e PubMed DOI

See www.olympus.com for typical fluorescence microscopy systems.

Houska M., Brynda E., and Bohata K., J. Colloid Interface Sci. JCISA5 273, 140 (2004).10.1016/j.jcis.2003.12.056 PubMed DOI

Bernard A., Michel B., and Delamarche E., Anal. Chem. ANCHAM 73, 8 (2001).10.1021/ac0008845 PubMed DOI

Eteshola E. and Leckband D., Sens. Actuators B SABCEB 72, 129 (2001).10.1016/S0925-4005(00)00640-7 DOI

McCreedy T. and Wilson N. G., Analyst (Cambridge, U.K.) ANALAO 126, 21 (2001).10.1039/b007223k PubMed DOI

McDonald J. C., Duffy D. C., Anderson J. R., Chiu D. T., Wu H. K., Schueller O. J. A., and Whitesides G. M., Electrophoresis ELCTDN 21, 27 (2000).10.1002/(SICI)1522-2683(20000101)21:1<27::AID-ELPS27>3.0.CO;2-C PubMed DOI

Owen M. J. and Smith P. J., J. Adhes. Sci. Technol. JATEE8 8, 1063 (1994).10.1163/156856194X00942 DOI

Unger M. A., Chou H. P., Thorsen T., Scherer A., and Quake S. R., Science SCIEAS 288, 113 (2000).10.1126/science.288.5463.113 PubMed DOI

Friend J. and Yeo L., Biomicrofluidics BIOMGB 4, 026502 (2010).10.1063/1.3259624 PubMed DOI PMC

Lin C. -H., Chao C. -H., and Lan C. -W., Sens. Actuators B SABCEB 121, 698 (2007).10.1016/j.snb.2006.04.086 DOI

Schrott W., Svoboda M., Slouka Z., Pribyl M., and Snita D., Microelectron. Eng. MIENEF 87, 1600 (2010).10.1016/j.mee.2009.10.049 DOI

Berdichevsky Y., Khandurina J., Guttman A., and Lo Y. H., Sens. Actuators B SABCEB 97, 402 (2004).10.1016/j.snb.2003.09.022 DOI

Ren X. Q., Bachman M., Sims C., Li G. P., and Allbritton N., J. Chromatogr., B: Biomed. Sci. Appl. JCBBEP 762, 117 (2001).10.1016/S0378-4347(01)00327-9 PubMed DOI

Roach L. S., Song H., and Ismagilov R. F., Anal. Chem. ANCHAM 77, 785 (2005).10.1021/ac049061w PubMed DOI PMC

Štĕpánek J., Přibyl M., Šnita D., and Marek M., Biomicrofluidics BIOMGB 1, 024101 (2007).10.1063/1.2723647 PubMed DOI PMC

Schrott W., Slouka Z., Cervenka P., Ston J., Nebyla M., Pribyl M., and Snita D., Biomicrofluidics BIOMGB 3, 044101 (2009).10.1063/1.3243913 PubMed DOI PMC

Fu J. L., Fang Q., Zhang T., Jin X. H., and Fang Z. L., Anal. Chem. ANCHAM 78, 3827 (2006).10.1021/ac060153q PubMed DOI

Find record

Citation metrics

Loading data ...

Archiving options

Loading data ...