Literature DB >> 10565276

Dynamic DNA hybridization on a chip using paramagnetic beads.

Z H Fan1, S Mangru, R Granzow, P Heaney, W Ho, Q Dong, R Kumar.   

Abstract

Dynamic DNA hybridization is presented as an approach to perform gene expression analysis. The method is advantageous because of its dynamic supplies of both DNA samples and probes. The approach was demonstrated on a microfluidic platform by incorporating paramagnetic beads as a transportable solid support. A glass chip was fabricated to allow simultaneous interrogation of eight DNA target samples by DNA probes. DNA targets were immobilized on beads via streptavidin-biotin conjugation or base pairing between oligonucleotide residues. The DNA/bead complex was introduced into the device in which hybridization took place with a complementary probe. The hybridized probe was then removed by heat denaturation to allow the DNA sample to be interrogated again by another probe with a different sequence of interest. A pneumatic pumping apparatus was constructed to transport DNA probes and other reagents into the microfluidic device while hydrostatic pumping was used for the introduction of paramagnetic beads with samples. After investigating three types of paramagnetic beads, we found Dynabeads Oligo(dT)25 best suited this application. Targets on the beads could be sequentially interrogated by probes for 12 times, and the hybridization signal was maintained within experimental variation. Demonstration of specific hybridization reactions in an array format was achieved using four synthesized DNA targets in duplicate and five probes in sequence, indicating the potential application of this approach to gene expression analysis.

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Year:  1999        PMID: 10565276     DOI: 10.1021/ac9902190

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


  11 in total

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4.  Magnetic microsphere-based methods to study the interaction of teicoplanin with peptides and bacteria.

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7.  Parallel RNA extraction using magnetic beads and a droplet array.

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Authors:  Tobias Klamp; Marta Camps; Benjamin Nieto; Francesc Guasch; Rohan T Ranasinghe; Jens Wiedemann; Zdeněk Petrášek; Petra Schwille; David Klenerman; Markus Sauer
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Review 9.  Synergism between particle-based multiplexing and microfluidics technologies may bring diagnostics closer to the patient.

Authors:  S Derveaux; B G Stubbe; K Braeckmans; C Roelant; K Sato; J Demeester; S C De Smedt
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10.  An integrated microfluidic system using a micro-fluxgate and micro spiral coil for magnetic microbeads trapping and detecting.

Authors:  Xuecheng Sun; Zhu Feng; Shaotao Zhi; Chong Lei; Di Zhang; Yong Zhou
Journal:  Sci Rep       Date:  2017-10-11       Impact factor: 4.379

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