• Title/Summary/Keyword: magnetic nanoparticle

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High Throughput Magnetic Separation for Human DNA by Aminosilanized Iron Oxide Nanoparticles (아미노실란화 철산화물 나노입자를 이용한 Human DNA의 초고속 자성분리)

  • Kang, Ki-Ho;Chang, Jeong-Ho
    • Journal of the Korean Ceramic Society
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    • v.45 no.10
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    • pp.605-609
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    • 2008
  • This work describes the preparation of functionalized magnetic nanoparticles(MNPs) and their bioapplication to human DNA separation. Silica coated MNPs were prepared by changing the volume ratio of tetraethyl orthosilicate(TEOS) for controlled coating thickness on the original nanoparticle of MNPs. The sol-gel process in silica coating on MNPs surface was adapted for relatively mild reaction condition, low-cost, and surfactant-free. And then amino functionalized magnetic nanoparticles were synthesized using amine groups as surface modifiers. The result of adsorption efficiency for human DNA with amino-functionalized silica coated MNPs was calculated as a function of the number of amine groups.

Immobilization of Proteins on Magnetic Nanoparticles

  • Wang, Tzu-Hsien;Lee, Wen-Chien
    • Biotechnology and Bioprocess Engineering:BBE
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    • v.8 no.4
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    • pp.263-267
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    • 2003
  • Magnetic nanoparticles prepared from an alkaline solution of divalent and trivalent iron ions could covalently bind protein via the activation of Nethyl-N-(3-dimethylaminopropyl) carbodiimide (EDC). Trypsin and avidin were taken as the model proteins for the formation of protein-nanoparticle conjugates. The immobilized yield of protein increased with molar ratio of EDC/nanoparticie. Higher concentrations of added protein could yield higher immobilized protein densities on the particles. In contrast to EDC, the yields of protein immobilization via the a ctivation of cyanamide were relatively lower. Nanoparticles bound with avidin could attach a single-stranded DNA through the avidin-biotin interaction and hybridize with a DNA probe. The DNA hybridization was confirmed by fluorescence microscopy observations. Immobilized DNA on nanoparticles by this technique may have widespread applicability to the detection of specific nucleic acid sequence and targeting of DNA to particular cells.

Characteristics of Lecithin-adsorbed Magnetic Nanoparticle and Biocompatibility of Its Fluid (Lecithin이 흡착된 나노 자성입자의 특성과 그 자성유체의 생체 친화성)

  • Park, Sang-Im;Kim, Chong-Oh;Kim, Jong-Hee;Kim, Seong-Min;Kim, Keun-Ho
    • Journal of the Korean Magnetics Society
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    • v.16 no.6
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    • pp.293-299
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    • 2006
  • Magnetic nanoparticles were prepared by thermal decomposition and adsorbed with lecithin by applying ultrasonic. The size and saturation magnetization of magnetic nanoparticles were observed with different lecithin concentration, and the maximum tolerated dose (HTD) and toxicity of magnetic fluid was investigated through a biological test. The thickness of lecithin-adsorption layer increased non-linearly with increasing amounts of added lecithin, and the desirable adsorption amount was observed in the lecithin concentration of 20%(w/v). The dispersibility and magnetic properties of lecithin-adsorbed magnetic nanoparticles were most excellent when the ultrasonic exposure time was 1.5h. Also, the maximum tolerated concentration with best cell viability was $32{\mu}g/ml$ in vitro test, and lecithin-adsorbed magnetic fluids improved the biocompatibility by 1.2 times compared with bare magnetite fluids in vivo.

The Influence of Functionalization of the Fe3O4 Nanoparticle on its Dispersion Property

  • Han, Jin Soon;An, Gye Seok;Park, Bong Geun;Choi, Sung-Churl
    • Journal of the Korean Ceramic Society
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    • v.55 no.1
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    • pp.80-84
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    • 2018
  • In this study, to improve the dispersity of $Fe_3O_4$ nanoparticles, dispersion properties were considered with various types of functionalization of $Fe_3O_4$ nanoparticles. Due to its high surface area, the electrically neutral state of its surfaces, and its magnetic momentum, $Fe_3O_4$ nanoparticles are easily aggregated in solution. In order to prevent aggregation, $Fe_3O_4$ nanoparticles were functionalized with carboxyl and amine groups in the form of a polymer compound. Carboxyl and amine groups were attached to the surface of $Fe_3O_4$ nanoparticles and the absolute value of the zeta potential was found to be enhanced by nearly 40 eV. Furthermore, the morphology and the magnetic property were analyzed for the application of $Fe_3O_4$ nanoparticles as a magnetic fluid.