Literature DB >> 22250703

Modeling analyte transport and capture in porous bead sensors.

Jie Chou1, Alexis Lennart, Jorge Wong, Mehnaaz F Ali, Pierre N Floriano, Nicolaos Christodoulides, James Camp, John T McDevitt.   

Abstract

Porous agarose microbeads, with high surface to volume ratios and high binding densities, are attracting attention as highly sensitive, affordable sensor elements for a variety of high performance bioassays. While such polymer microspheres have been extensively studied and reported on previously and are now moving into real-world clinical practice, very little work has been completed to date to model the convection, diffusion, and binding kinetics of soluble reagents captured within such fibrous networks. Here, we report the development of a three-dimensional computational model and provide the initial evidence for its agreement with experimental outcomes derived from the capture and detection of representative protein and genetic biomolecules in 290 μm porous beads. We compare this model to antibody-mediated capture of C-reactive protein and bovine serum albumin, along with hybridization of oligonucleotide sequences to DNA probes. These results suggest that, due to the porous interior of the agarose bead, internal analyte transport is both diffusion and convection based, and regardless of the nature of analyte, the bead interiors reveal an interesting trickle of convection-driven internal flow. On the basis of this model, the internal to external flow rate ratio is found to be in the range of 1:170 to 1:3100 for beads with agarose concentration ranging from 0.5% to 8% for the sensor ensembles here studied. Further, both model and experimental evidence suggest that binding kinetics strongly affect analyte distribution of captured reagents within the beads. These findings reveal that high association constants create a steep moving boundary in which unbound analytes are held back at the periphery of the bead sensor. Low association constants create a more shallow moving boundary in which unbound analytes diffuse further into the bead before binding. These models agree with experimental evidence and thus serve as a new tool set for the study of bioagent transport processes within a new class of medical microdevices.

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Year:  2012        PMID: 22250703      PMCID: PMC3993991          DOI: 10.1021/ac2022822

Source DB:  PubMed          Journal:  Anal Chem        ISSN: 0003-2700            Impact factor:   6.986


  23 in total

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4.  A spatially addressable bead-based biosensor for simple and rapid DNA detection.

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Journal:  Biosens Bioelectron       Date:  2007-09-12       Impact factor: 10.618

5.  Effect of volume- and time-based constraints on capture of analytes in microfluidic heterogeneous immunoassays.

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7.  Superporous agarose beads as a solid support for microfluidic immunoassay.

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8.  Direct measurements of convective fluid velocities in superporous agarose beads.

Authors:  P E Gustavsson; A Axelsson; P O Larsson
Journal:  J Chromatogr A       Date:  1998-02-06       Impact factor: 4.759

9.  Immuno-pillar chip: a new platform for rapid and easy-to-use immunoassay.

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10.  Validation of the determination of copper and zinc in blood plasma and urine by ICP MS with cross-flow and direct injection nebulization.

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  5 in total

1.  Enhancement of performance in porous bead-based microchip sensors: Effects of chip geometry on bio-agent capture.

Authors:  Eliona Kulla; Jie Chou; Glennon Simmons; Jorge Wong; Michael P McRae; Rushi Patel; Pierre N Floriano; Nicolaos Christodoulides; Robin J Leach; Ian M Thompson; John T McDevitt
Journal:  RSC Adv       Date:  2015       Impact factor: 3.361

2.  Programmable bio-nano-chip system: a flexible point-of-care platform for bioscience and clinical measurements.

Authors:  Michael P McRae; Glennon W Simmons; Jorge Wong; Basil Shadfan; Sanjiv Gopalkrishnan; Nicolaos Christodoulides; John T McDevitt
Journal:  Lab Chip       Date:  2015-08-26       Impact factor: 6.799

3.  Effects of sample delivery on analyte capture in porous bead sensors.

Authors:  Jie Chou; Luanyi E Li; Eliona Kulla; Nicolaos Christodoulides; Pierre N Floriano; John T McDevitt
Journal:  Lab Chip       Date:  2012-12-21       Impact factor: 6.799

4.  Hot embossed polyethylene through-hole chips for bead-based microfluidic devices.

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Review 5.  Porous bead-based diagnostic platforms: bridging the gaps in healthcare.

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  5 in total

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