Plain
Nanomag®-D-Partikel mit der Oberfläche "plain" besitzen eine unmodifizierte Dextranoberfläche und sind mit Durchmessern von 130 nm, 250 nm und 500 nm erhältlich. Sie haben ein großes Potenzial für die Nukleinsäureseparation. Speziell die 500 nm nanomag®-D-Partikel bieten eine exzellente Magnetomobilität in Hochdurchsatz-Nukleinsäureseparationen. nanomag®-D-Partikel werden in Wasser ohne Zusatz von Detergenzien geliefert.
Die Untersuchung der Bildung von magnetischen Ketten aus 130 nm nanomag®-D und deren Eigenschaften bei der Separation von Biomolekülen und Zellen hat gezeigt, dass magnetische Ketten an immunomagnetisch gelabelte Zellen binden und als temporäre Werkzeuge dienen, die neuartige magnetische Manipulationen erlauben (Wilson et al., 2009). In einer anderen Anwendung dienten plain nanomag®-D-Partikel als Modellpartikel, um das Foulingpotenzial von Kompositpartikeln zu untersuchen (Lipp et al., 2009).
Alle 3 Ergebnisse werden angezeigt
- A. P. Astalan, F. Ahrentorp, C. Johansson, K. Larsson and A. Krozer, Biomolecular reactions studied using changes in Brownian rotation dynamics of magnetic particles, Biosensors and Bioelectronics, 2004, 19(8), 945–951;
- J. J. Benkoski, J. L. Breidenich, O. M. Uy, A. T. Hayes, R. M. Deacon, H. B. Land, J. M. Spicer, P. Y. Keng and J. Pyun, Dipolar organization and magnetic actuation of flagella-like nanoparticle assemblies, Journal of Materials Chemistry, 2011, 21(20), 7314–7325;
- P. Buchegger, U. Sauer, H. Toth-Szekely and C. Preininger, Miniaturized protein microarray with internal calibration as point-of-care device for diagnosis of neonatal sepsis, Sensors, 2012, 12(1494–1508;
- B. T. Dalslet, C. Damsgaard, M. Donolato, M. Stromme, M. Strömberg, P. Svedlindh and M. F. Hansen, Bead magnetorelaxometry with an on-chip magnetoresistive sensor, Lab Chip, 2011, 11(296–302;
- M. Donolato, F. Lofink, S. Hankemeier, J. Porro, H. Oepen and P. Vavassori, Characterization of domain wall-based traps for magnetic beads separation, Journal of Applied Physics, 2012, 111(7), 07B336;
- J. Eveness, J. Kiely, P. Hawkins, P. Wraith and R. Luxton, Evaluation of paramagnetic particles for use in a resonant coil magnetometer based magneto-immunoassay, Sensors and Actuators B: Chemical, 2009, 139(2), 538–542;
- A. Glatz, M. E. Bastin, A. J. Kiker, I. J. Deary, J. M. Wardlaw and M. C. V. Hernández, Automated segmentation of multifocal basal ganglia T2*-weighted MRI hypointensities, NeuroImage, 2015, 105(332–346;
- M. Hedayati, B. Abubaker-Sharif, M. Khattab, A. Razavi, I. Mohammed, A. Nejad, M. Wabler, H. Zhou, J. Mihalic, C. Grüttner, T. DeWeese and R. Ivkov, An optimised spectrophotometric assay for convenient and accurate quantitation of intracellular iron from iron oxide nanoparticles, International Journal of Hyperthermia, 2017, 1–9;
- Y.-L. Lin, Y.-C. Lin, L.-J. Wang, S.-T. Ngo and Y.-H. Ma, Renal perfusion assessment using magnetic nanoparticles with 7T dynamic susceptibility contrast MRI in rats, Journal of Magnetism and Magnetic Materials, 2019, 475(76–82;
- P. J. Metaxas, M. Sushruth, R. A. Begley, J. Ding, R. C. Woodward, I. S. Maksymov, M. Albert, W. Wang, H. Fangohr and A. O. Adeyeye, Sensing magnetic nanoparticles using nano-confined ferromagnetic resonances in a magnonic crystal, Applied Physics Letters, 2015, 106(23), 232406;
- T. Mizuki, M. Sawai, Y. Nagaoka, H. Morimoto and T. Maekawa, Activity of lipase and chitinase immobilized on superparamagnetic particles in a rotational magnetic field, Plos ONE, 2013, 8(6), e66528;
- T. Mizuki, N. Watanabe, Y. Nagaoka, T. Fukushima, H. Morimoto, R. Usami and T. Maekawa, Activity of an enzyme immobilized on superparamagnetic particles in a rotational magnetic field, Biochem. Biophys. Res. Comm., 2010, 779–782;
- F. W. Osterberg, B. T. Dalslet, D. Snakenborg, C. Johansson and M. F. Hansen, Chip-based measurements of brownian relaxation of magnetic beads using a planar hall effect magnetic field sensor, AIP Conf. Proc., 2012, 1311(176–183;
- M. Saari, K. Sakai, T. Kiwa, T. Sasayama, T. Yoshida and K. Tsukada, Characterization of the magnetic moment distribution in low-concentration solutions of iron oxide nanoparticles by a high-Tc superconducting quantum interference device magnetometer, Journal of Applied Physics, 2015, 117(17), 17B321;
- M. Selt, A. Tennstaedt, A. Beyrau, M. Nelles, G. Schneider, C. Löwik and M. Hoehn, In Vivo Non-Invasive Tracking of Macrophage Recruitment to Experimental Stroke, PloS one, 2016, 11(6), e0156626;
- Y. Seo, E. Ikemoto, A. Yoshida and K. Kogure, Particle capture by marine bacteria, Aquatic microbial ecology, 2007, 49(3), 243–253;
- V. Ström, K. Hultenby, C. Grüttner, J. Teller, B. Xu and J. Holgersson, A novel and rapid method for quantification of magnetic nanoparticle-cell interactions using a desktop susceptometer, Nanotechnology, 2004, 15(5), 457;
- M. Sushruth, J. Ding, J. Duczynski, R. C. Woodward, R. Begley, H. Fangohr, R. O. Fuller, A. O. Adeyeye, M. Kostylev and P. J. Metaxas, Resonance-based Detection of Magnetic Nanoparticles and Microbeads Using Nanopatterned Ferromagnets, Physical Review Applied, 2016, 6(044005;
- P. Tseng, J. W. Judy and D. Di Carlo, Magnetic nanoparticle-mediated massively parallel mechanical modulation of single-cell behavior, Nature Methods, 2012, 9(11), 1113–1119;
- M. C. Verwer, J. Mekke, N. Timmerman, F. Waissi, A. Boltjes, G. Pasterkamp, G. J. de Borst and D. P. de Kleijn, Comparison of cardiovascular biomarker expression in extracellular vesicles, plasma and carotid plaque for the prediction of MACE in CEA patients, Scientific Reports, 2023, 13(1), 1010;
- R. J. Wilson, W. Hu, C. Wong Po Fu, A. L. Koh, R. S. Gaster, C. M. Earhart and e. al., Formation and properties of magnetic chains for 100 nm nanoparticles used in separations of molecules and cells, Journal of Magnetism and Magnetic Materials, 2009, 321(10), 1452–1458;
| Artikelnr. | Name | Oberfläche | Durchmesser | Konzentration | Menge | Preis | TDS | MSDS | Bestellung |
|---|---|---|---|---|---|---|---|---|---|
| 09-00-132 | nanomag®-D | plain | 130 nm | 25 mg/ml | 10 ml | 186,00 € |
|
|
In den Warenkorb |
| 09-00-252 | nanomag®-D | plain | 250 nm | 25 mg/ml | 10 ml | 174,00 € |
|
|
In den Warenkorb |
| 09-00-502 | nanomag®-D | plain | 500 nm | 10 mg/ml | 10 ml | 198,00 € |
|
|
In den Warenkorb |