Plain
BNF-Dextran- oder BNF-Starch-Partikel mit der Oberfläche "plain" besitzen eine unmodifizierte Dextran- bzw. Hydroxyethyl-Stärke-Oberfläche. Sie sind thermisch geblockt bei Raumtemperatur und zeigen spezifische Wechselwirkungen mit magnetischen Wechselfeldern (Dennis et al. 2008 und 2009; Krycka et al., 2011; Bordelon et al., 2011). Die 100 nm – Partikel können mit konventionellen Permanentmagneten separiert werden, während die 80 nm – Partikel vorzugsweise im Hochgradientenmagnetfeld separiert werden. Die BNF-Partikel können einfach durch 0,22 µm-Filter filtriert werden und werden als Suspension in Wasser ohne Zusatz von Detergenzien geliefert.
Alle 4 Ergebnisse werden angezeigt
Referenzen
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- A. Al Faraj, A. Shaik, A. Shaik and B. Al Sayed, Enhanced magnetic delivery of superparamagnetic iron oxide nanoparticles to the lung monitored using noninvasive MR, Journal of Nanoparticle Research, 2014, 16(10), 1–11;
- A. Attaluri, S. K. Kandala, M. Wabler, H. Zhou, C. Cornejo, M. Armour, M. Hedayati, Y. Zhang, T. L. DeWeese, C. Herman and R. Ivkov, Magnetic nanoparticle hyperthermia enhances radiation therapy: A study in mouse models of human prostate cancer, International Journal of Hyperthermia, 2015, 31(4), 359–374;
- A. Attaluri, M. Seshadri, S. Mirpour, M. Wabler, T. Marinho, M. Furqan, H. Zhou, S. De Paoli, C. Grüttner, W. Gilson, T. DeWeese, M. Garcia, R. Ivkov and E. Liapi, Image-guided thermal therapy with a dual-contrast magnetic nanoparticle formulation: A feasibility study, International Journal of Hyperthermia, 2016, 1–15;
- D. E. Bordelon, C. Cornejo, C. Grüttner, F. Westphal, T. L. DeWeese and R. Ivkov, Magnetic nanoparticle heating efficiency reveals magneto-structural differences when characterized with wide ranging and high amplitude alternating magnetic fields, Journal of Applied Physics, 2011, 109(12), 124904;
- L. Branquinho, C., M. Carrião, S., A. Costa, S. , N. Zufelato, M. Sousa, H. , R. Miotto, R. Ivkov and A. Bakuzis, F. , Effect of magnetic dipolar interactions on nanoparticle heating efficiency: Implications for cancer hyperthermia, Scientific Reports, 2013, 3(2887;
- L. Cuny, M. P. Herrling, G. Guthausen, H. Horn and M. Delay, Magnetic resonance imaging reveals detailed spatial and temporal distribution of iron-based nanoparticles transported through water-saturated porous media, Journal of contaminant hydrology, 2015, 182(51–62;
- C. Dennis, A. Jackson, J. Borchers, P. Hoopes, R. Strawbridge, A. Foreman, J. Van Lierop, C. Grüttner and R. Ivkov, Nearly complete regression of tumors via collective behavior of magnetic nanoparticles in hyperthermia, Nanotechnology, 2009, 20(39), 395103;
- C. Dennis, A. Jackson, J. Borchers, R. Ivkov, A. Foreman, P. Hoopes, R. Strawbridge, Z. Pierce, E. Goerntiz and J. Lau, The influence of magnetic and physiological behaviour on the effectiveness of iron oxide nanoparticles for hyperthermia, Journal of Physics D: Applied Physics, 2008, 41(13), 134020;
- C. Dennis, A. Jackson, J. Borchers, R. Ivkov, A. Foreman, J. Lau, E. Görnitz and C. Grüttner, The influence of collective behavior on the magnetic and heating properties of iron oxide nanoparticles, Journal of Applied Physics, 2008, 103(7), 07A319;
- C. L. Dennis, K. L. Krycka, J. A. Borchers, R. D. Desautels, J. van Lierop, N. F. Huls, A. J. Jackson, C. Grüttner and R. Ivkov, Internal magnetic structure of nanoparticles dominates time‐dependent relaxation processes in a magnetic field, Advanced Functional Materials, 2015, 25(27), 4300–4311;
- J. Fock, C. Jonasson, C. Johansson and M. F. Hansen, Characterization of fine particles using optomagnetic measurements, Physical Chemistry Chemical Physics, 2017, 19(13), 8802–8814;
- A. Giustini, R. Ivkov and P. Hoopes, Magnetic nanoparticle biodistribution following intratumoral administration, Nanotechnology, 2011, 22(34), 345101;
- A. J. Giustini, I. Perreard, A. M. Rauwerdink, P. J. Hoopes and J. B. Weaver, Noninvasive assessment of magnetic nanoparticle–cancer cell interactions, Integrative Biology, 2012, 4(10), 1283–1288;
- A. J. Giustini, A. A. Petryk and P. J. Hoopes, Ionization radiation increases systemic nanoparticle tumor accumulation, Nanomedicine, 2012, 8(6), 818–821;
- C. Grüttner, K. Müller, J. Teller and F. Westphal, Synthesis and functionalisation of magnetic nanoparticles for hyperthermia applications, International Journal of Hyperthermia, 2013, 29(8), 777–789;
- L. Gutierrez, R. Costo, C. Grüttner, F. Westphal, N. Gehrke, D. Heinke, A. Fornara, Q. A. Pankhurst, C. Johansson and S. Veintemillas-Verdaguer, Synthesis methods to prepare single-and multi-core iron oxide nanoparticles for biomedical applications, Dalton Transactions, 2015, 44(2943–2952;
- S. Hapuarachchige, Y. Kato, E. J. Ngen, B. Smith, M. Delannoy and D. Artemov, Non-Temperature Induced Effects of Magnetized Iron Oxide Nanoparticles in Alternating Magnetic Field in Cancer Cells, PLoS ONE, 2016, 11(5), e0156294;
- 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;
- M. Hedayati, O. Thomas, B. Abubaker-Sharif, H. Zhou, C. Cornejo, Y. Zhang, M. Wabler, J. Mihalic, C. Grüttner, F. Westphal, A. Geyt, T. L. DeWeese and R. Ivkov, The effect of cell-cluster size on intracellular nanoparticle-mediated hyperthermia: is it possible to treat microscopic tumors, Nanomedicine, 2012, 8(1), 29–41;
- A. Jaufenthaler, T. Kornack, V. Lebedev, M. E. Limes, R. Körber, M. Liebl and D. Baumgarten, Pulsed Optically Pumped Magnetometers: Addressing Dead Time and Bandwidth for the Unshielded Magnetorelaxometry of Magnetic Nanoparticles, Sensors, 2021, 21(4), 1212;
- S. K. Kandala, E. Liapi, L. L. Whitcomb, A. Attaluri and R. Ivkov, Temperature-controlled power modulation compensates for heterogeneous nanoparticle distributions: a computational optimization analysis for magnetic hyperthermia, International Journal of Hyperthermia, 2018, 1–15;
- A. Kasten, C. Grüttner, J.-P. Kühn, R. Bader, J. Pasold and B. Frerich, Comparative In Vitro Study on Magnetic Iron Oxide Nanoparticles for MRI Tracking of Adipose Tissue-Derived Progenitor Cells, PloS one, 2014, 9(9), e108055;
- A. Kasten, B. J. Siegmund, C. Grüttner, J.-P. Kühn and B. Frerich, Tracking of adipose tissue-derived progenitor cells using two magnetic nanoparticle types, Journal of Magnetism and Magnetic Materials, 2015, 380(34–38;
- K. Kekalo, I. Baker, R. Meyers and J. Shyong, Magnetic Nanoparticles with High Specific Absorption Rate at Low Alternating Magnetic Field, Nano LIFE, 2015, 5(2), 1550002;
- K. Krycka, A. Jackson, J. Borchers, J. Shih, R. Briber, R. Ivkov, C. Grüttner and C. Dennis, Internal magnetic structure of dextran coated magnetite nanoparticles in solution using small angle neutron scattering with polarization analysis, Journal of Applied Physics, 2011, 109(7), 07B513;
- D. A. Kuckla, J.-S. Brand, B. Czech, A. Asharion, J. V. Jüttner, I. P. Novoselova, A. Neusch, P. Hagemann, M. Getzlaff and C. Monzel, An efficient magnetothermal actuation setup for fast heating/cooling cycles or long-term induction heating of different magnetic nanoparticle classes, Journal of Physics D: Applied Physics, 2023, 56(50), 505002;
- T.-A. Le, M. P. Bui and J. J. I. j. o. m. s. Yoon, Theoretical Analysis for Wireless Magnetothermal Deep Brain Stimulation Using Commercial Nanoparticles, 2019, 20(12), 2873;
- F. Ludwig, O. Kazakova, L. F. Barquin, A. Fornara, L. Trahms, U. Steinhoff, P. Svedlindh, E. Wetterskog, Q. A. Pankhurst and P. Southern, Magnetic, Structural, and Particle Size Analysis of Single-and Multi-Core Magnetic Nanoparticles, Magnetics, IEEE Transactions on, 2014, 50(11), 1–4;
- B. Mues, B. Bauer, J. Ortega, E. M. Buhl, H. Teller, T. Gries, T. Schmitz-Rode and I. Slabu, Assessing hyperthermia performance of hybrid textile filaments: The impact of different heating agents, Journal of Magnetism and Magnetic Materials, 2021, 519(167486;
- A. Mukherjee, M. Castanares, M. Hedayati, M. Wabler, B. Trock, P. Kulkarni, R. Rodriguez, R. H. Getzenberg, T. L. DeWeese and R. Ivkov, Monitoring nanoparticle-mediated cellular hyperthermia with a high-sensitivity biosensor, Nanomedicine, 2014, 9(18), 2729–2743;
- L. Ocker, A. Adamus, L. Hempfling, B. Wagner, R. Vahdad, F. A. Verburg, M. Luster, T. Schurrat, D. Bier, M. J. P. Frank and p. therapy, Hypericin and its radio iodinated derivatives–A novel combined approach for the treatment of pediatric alveolar rhabdomyosarcoma cells in vitro, 2020, 29(101588;
- A. L. Oei, P. Korangath, K. Mulka, M. Helenius, J. B. Coulter, J. Stewart, E. Velarde, J. Crezee, B. Simons and L. J. Stalpers, Enhancing the abscopal effect of radiation and immune checkpoint inhibitor therapies with magnetic nanoparticle hyperthermia in a model of metastatic breast cancer, International Journal of Hyperthermia, 2019, 36(sup1), 47–63;
- F. W. Østerberg, G. Rizzi, A. D. Henriksen and M. F. Hansen, Planar Hall effect bridge geometries optimized for magnetic bead detection, Journal of Applied Physics, 2014, 115(18), 184505;
- J. Pearce, A. Giustini, R. Stigliano and P. Jack Hoopes, Magnetic Heating of Nanoparticles: The Importance of Particle Clustering to Achieve Therapeutic Temperatures, Journal of Nanotechnology in Engineering and Medicine, 2013, 4(1), 0110071–01100714;
- I. Perreard, D. Reeves, X. Zhang, E. Kuehlert, E. Forauer and J. Weaver, Temperature of the magnetic nanoparticle microenvironment: estimation from relaxation times, Physics in medicine and biology, 2014, 59(5), 1109;
- A. A. Petryk, A. J. Giustini, R. E. Gottesman, P. A. Kaufman and P. J. Hoopes, Magnetic nanoparticle hyperthermia enhancement of cisplatin chemotherapy cancer treatment, International Journal of Hyperthermia, 2013, 29(8), 845–851;
- A. A. Petryk, A. J. Giustini, R. E. Gottesman, B. S. Trembly and P. J. Hoopes, Comparison of magnetic nanoparticle and microwave hyperthermia cancer treatment methodology and treatment effect in a rodent breast cancer model, International Journal of Hyperthermia, 2013, 29(8), 819–827;
- F. Ranzinger, M. P. Herrling, S. Lackner, V. W. Grande, A. Baniodeh, A. K. Powell, H. Horn and G. Guthausen, Direct surface visualization of biofilms with high spin coordination clusters using Magnetic Resonance Imaging, Acta biomaterialia, 2016, 31(167–177;
- D. B. Reeves and J. B. Weaver, Magnetic nanoparticle sensing: decoupling the magnetization from the excitation field, Journal of physics D: Applied physics, 2014, 47(4), 045002;
- S. Sepehri, J. Andersson, V. Schaller, C. Grüttner, M. Stading and C. Johansson, Remote Sensing of the Nano-Rheological Properties of Soft Materials Using Magnetic Nanoparticles and Magnetic AC Susceptometry, Nanomaterials, 2022, 13(1), 67;
- A. Sharma, E. Cressman, A. Attaluri, D. Kraitchman and R. Ivkov, Current Challenges in Image-Guided Magnetic Hyperthermia Therapy for Liver Cancer, Nanomaterials, 2022, 12(2768;
- B. J. Siegmund, A. Kasten, J.-P. Kühn, K. Winter, C. Grüttner and B. Frerich, MRI-tracking of transplanted human ASC in a SCID mouse model, Journal of Magnetism and Magnetic Materials, 2017, 427(151–155;
- F. Soetaert, S. K. Kandala, A. Bakuzis and R. Ivkov, Experimental estimation and analysis of variance of the measured loss power of magnetic nanoparticles, Scientific Reports, 2017, 7(1), 6661;
- T. Sriviriyakul, S. Bogren, V. Schaller, C. Jonasson, J. Blomgren, F. Ahrentorp, P. Lopez-Sanchez, M. Berta, C. Grüttner and L. Zeng, Nanorheological studies of xanthan/water solutions using magnetic nanoparticles, Journal of Magnetism and Magnetic Materials, 2019, 473(268–271;
- R. V. Stigliano, F. Shubitidze, K. Kekalo, I. Baker, A. J. Giustini and P. J. Hoopes, Understanding mNP Hyperthermia for cancer treatment at the cellular scale, Proceedings - Society of Photo-Optical Instrumentation Engineers, 2013, 8584(85840E;
- M. Wabler, W. Zhu, M. Hedayati, A. Attaluri, H. Zhou, J. Mihalic, A. Geyh, T. L. DeWeese, R. Ivkov and D. Artemov, Magnetic resonance imaging contrast of iron oxide nanoparticles developed for hyperthermia is dominated by iron content, International Journal of Hyperthermia, 2014, 30(3), 192–200;
- J. B. Weaver and E. Kuehlert, Measurement of magnetic nanoparticle relaxation time, Med. Phys., 2012, 39(5), 2765–2770;
- J. B. Weaver, X. Zhang, E. Kuehlert, S. Toraya-Brown, D. B. Reeves, I. M. Perreard and S. N. Fiering, Magnetic Nanoparticle Quantitation with Low Frequency Magnetic Fields: Compensating for Relaxation Effects, Nanotechnology, 2013, 24(32), 325502–325502;
- K. Witte, K. Müller, C. Grüttner, F. Westphal and C. Johansson, Particle size-and concentration-dependent separation of magnetic nanoparticles, Journal of Magnetism and Magnetic Materials, 2017, 427(320–324;
- C.-T. Yang, P. Korangath, J. Stewart, C. Hu, W. Fu, C. Grüttner, S. E. Beck, F.-H. Lin and R. Ivkov, Systemically delivered antibody-labeled magnetic iron oxide nanoparticles are less toxic than plain nanoparticles when activated by alternating magnetic fields, International Journal of Hyperthermia, 2020, 37(3), 59–75;
- P. L. Zadnik, C. A. Molina, R. Sarabia-Estrada, M. L. Groves, M. Wabler, J. Mihalic, E. F. McCarthy, Z. L. Gokaslan, R. Ivkov and D. Sciubba, Characterization of intratumor magnetic nanoparticle distribution and heating in a rat model of metastatic spine disease: Laboratory investigation, Journal of Neurosurgery: Spine, 2014, 20(6), 740–750;
| Artikelnr. | Name | Oberfläche | Durchmesser | Konzentration | Menge | Preis | TDS | MSDS | Bestellung |
|---|---|---|---|---|---|---|---|---|---|
| 84-00-801 | BNF-Dextran | plain | 80 nm | 25 mg/ml | 10 ml | 233,00 € |
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In den Warenkorb |
| 84-00-102 | BNF-Dextran | plain | 100 nm | 25 mg/ml | 10 ml | 198,00 € |
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In den Warenkorb |
| 10-00-801 | BNF-Starch | plain | 80 nm | 25 mg/ml | 10 ml | 233,00 € |
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In den Warenkorb |
| 10-00-102 | BNF-Starch | plain | 100 nm | 25 mg/ml | 10 ml | 198,00 € |
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In den Warenkorb |