Magnetic Nanoparticles in Human Health and Medicine

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Explores the application of magnetic nanoparticles in drug delivery, magnetic resonance imaging, and alternative cancer therapy  Magnetic Nanoparticles in Human Health and Medicine Chapters written by a panel of international specialists in the field of magnetic nanoparticles and their applications in biomedicine cover magnetic hyperthermia (MHT), MRI contrast agents, biomedical imaging, modeling and simulation, nanobiotechnology, toxicity issues, and more. Readers are provided with accurate information on the use of magnetic nanoparticles in diagnosis, drug delivery, and therapeutics—featuring discussion of current problems, proposed solutions, and future research directions. Topics include magnetic nanoparticles with antioxidant activity, iron oxide nanoparticles in nanomedicine, superparamagnetic hyperthermia in clinical trials, and simulating the physics of magnetic particle heating for biomedical applications. This comprehensive volume: 
Covers both general research on magnetic nanoparticles in medicine and specific applications in cancer therapeutics Discusses the use of magnetic nanoparticles in alternative cancer therapy by magnetic and superparamagnetic hyperthermia Explores targeted medication delivery using magnetic nanoparticles as a future replacement of conventional techniques Reviews the use of MRI with magnetic nanoparticles to increase the diagnostic accuracy of medical imaging 
 is a valuable resource for researchers in the fields of nanomagnetism, nanomaterials, magnetic nanoparticles, nanoengineering, biopharmaceuticals nanobiotechnologies, nanomedicine,and biopharmaceuticals, particularly those focused on cancer diagnosis and therapeutics.

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18 Chayen, N.E. (2002). Tackling the bottleneck of protein crystallization in the post‐genomic era. Trends in Biotechnology 20 (3): 98.

19 Coral, D.F., Soto, P.A., Blank, V. et al. (2018). Nanoclusters of crystallographically aligned nanoparticles for magnetic thermotherapy: aqueous ferrofluid, agarose phantoms and ex vivo melanoma tumour assessment. Nanoscale 10 (45): 21262–21274.

20 Daniele, M.A., Shaughnessy, M.L., Roeder, R. et al. (2013). Magnetic nanoclusters exhibiting protein‐activated near‐infrared fluorescence. ACS Nano 7 (1): 203–213.

21 Dawson, K.A. (2002). The glass paradigm for colloidal glasses, gels, and other arrested states driven by attractive interactions. Current Opinion in Colloid & Interface Science 7 (3): 218–227.

22 Deka, S.R., Quarta, A., Di Corato, R. et al. (2011). Magnetic nanobeads decorated by thermo‐responsive PNIPAM shell as medical platforms for the efficient delivery of doxorubicin to tumour cells. Nanoscale 3 (2): 619–629.

23 Deng, H., Li, X., Peng, Q. et al. (2005). Monodisperse magnetic single‐crystal ferrite microspheres. Angewandte Chemie International Edition 44 (18): 2782–2785.

24 Desiraju, G.R. (1995). Supramolecular synthons in crystal engineering – a new organic synthesis. Angewandte Chemie International Edition in English 34 (21): 2311–2327.

25 Di Corato, R., Piacenza, P., Musaro, M. et al. (2009). Magnetic‐fluorescent colloidal nanobeads: preparation and exploitation in cell separation experiments. Macromolecular Bioscience 9 (10): 952–958.

26 Di Corato, R., Bigall, N.C., Ragusa, A. et al. (2011). Multifunctional nanobeads based on quantum dots and magnetic nanoparticles: synthesis and cancer cell targeting and sorting. ACS Nano 5 (2): 1109–1121.

27 Di Corato, R., Palumberi, D., Marotta, R. et al. (2012). Magnetic nanobeads decorated with silver nanoparticles as cytotoxic agents and photothermal probes. Small 8 (17): 2731–2742.

28 Di Corato, R., Bealle, G., Kolosnjaj‐Tabi, J. et al. (2015). Combining magnetic hyperthermia and photodynamic therapy for tumor ablation with photoresponsive magnetic liposomes. ACS Nano 9 (3): 2904–2916.

29 Ditsch, A., Laibinis, P.E., Wang, D.I.C., and Hatton, T.A. (2005). Controlled clustering and enhanced stability of polymer‐coated magnetic nanoparticles. Langmuir 21 (13): 6006–6018.

30 Dorogi, M., Gomez, J., Osifchin, R. et al. (1995). Room‐temperature Coulomb blockade from a self‐assembled molecular nanostructure. Physical Review B 52 (12): 9071–9077.

31 Durbin, S.D. and Feher, G. (1996). Protein crystallization. Annual Review of Physical Chemistry 47 (1): 171–204.

32 Dzyaloshinskii, I.E., Lifshitz, E.M., Pitaevskii, L.P., and Priestley, M.G. (1992). The general theory of van der Waals forces. In: Perspectives in Theoretical Physics (ed. L.P. Pitaevski), 443–492. Amsterdam: Pergamon.

33 Euliss, L.E., Grancharov, S.G., O'Brien, S. et al. (2003). Cooperative assembly of magnetic nanoparticles and block copolypeptides in aqueous media. Nano Letters 3 (11): 1489–1493.

34 Fialkowski, M., Bishop, K.J.M., Klajn, R. et al. (2006). Principles and implementations of dissipative (dynamic) self‐assembly. The Journal of Physical Chemistry B 110 (6): 2482–2496.

35 Foffi, G., McCullagh, G.D., Lawlor, A. et al. (2002). Phase equilibria and glass transition in colloidal systems with short‐ranged attractive interactions: application to protein crystallization. Physical Review E 65 (3): 031407.

36 Fresnais, J., Lavelle, C., and Berret, J.F. (2009). Nanoparticle aggregation controlled by desalting kinetics. The Journal of Physical Chemistry C 113 (37): 16371–16379.

37 Ganesan, V., Lahiri, B.B., Louis, C. et al. (2019). Size‐controlled synthesis of superparamagnetic magnetite nanoclusters for heat generation in an alternating magnetic field. Journal of Molecular Liquids 281: 315–323.

38 Ge, J.P., Hu, Y.X., Biasini, M. et al. (2007). Superparamagnetic magnetite colloidal nanocrystal clusters. Angewandte Chemie International Edition 46 (23): 4342–4345.

39 Goyal, A., Hall, C.K., and Velev, O.D. (2008). Phase diagram for stimulus‐responsive materials containing dipolar colloidal particles. Physical Review E 77 (3): 031401.

40 Guardia, P., Di Corato, R., Lartigue, L. et al. (2012). Water‐soluble iron oxide nanocubes with high values of specific absorption rate for cancer cell hyperthermia treatment. ACS Nano 6 (4): 3080–3091.

41 Guo, S. and Dong, S. (2011). Metal nanomaterial‐based self‐assembly: development, electrochemical sensing and SERS applications. Journal of Materials Chemistry 21 (42): 16704–16716.

42 Hahn, Y.K., Jin, Z., Kang, J.H. et al. (2007). Magnetophoretic immunoassay of allergen‐specific IgE in an enhanced magnetic field gradient. Analytical Chemistry 79 (6): 2214–2220.

43 Hamaker, H.C. (1937). The London – van der Waals attraction between spherical particles. Physica 4 (10): 1058–1072.

44 Harfenist, S.A., Wang, Z.L., Alvarez, M.M. et al. (1996). Highly oriented molecular Ag nanocrystal arrays. The Journal of Physical Chemistry 100 (33): 13904–13910.

45 Hayashi, K., Nakamura, M., Sakamoto, W. et al. (2013). Superparamagnetic nanoparticle clusters for cancer theranostics combining magnetic resonance imaging and hyperthermia treatment. Theranostics 3 (6): 366–376.

46 Hecht, S. (2005). Optical switching of hierarchical self‐assembly: towards “enlightened” materials. Small 1 (1): 26–29.

47 Hugounenq, P., Levy, M., Alloyeau, D. et al. (2012). Iron oxide monocrystalline nanoflowers for highly efficient magnetic hyperthermia. The Journal of Physical Chemistry C 116 (29): 15702–15712.

48 Jana, N.R. (2004). Shape effect in nanoparticle self‐assembly. Angewandte Chemie International Edition 43 (12): 1536–1540.

49 Johnson, S.R., Evans, S.D., Mahon, S.W., and Ulman, A. (1997). Alkanethiol molecules containing an aromatic moiety self‐assembled onto gold clusters. Langmuir 13 (1): 51–57.

50 Jordan, A., Scholz, R., Wust, P. et al. (1999). Magnetic fluid hyperthermia (MFH): cancer treatment with AC magnetic field induced excitation of biocompatible superparamagnetic nanoparticles. Journal of Magnetism and Magnetic Materials 201 (1): 413–419.

51 Kim, M.‐H., Kim, B., Lim, E.‐K. et al. (2014). Magnetic nanoclusters engineered by polymer‐controlled self‐assembly for the accurate diagnosis of atherosclerotic plaques via magnetic resonance imaging. Macromolecular Bioscience 14 (7): 943–952.

52 Kimura, M., Kobayashi, S., Kuroda, T. et al. (2004). Assembly of gold nanoparticles into fibrous aggregates using thiol‐terminated gelators. Advanced Materials 16 (4): 335–338.

53 Kralj, S. and Makovec, D. (2015). Magnetic assembly of superparamagnetic iron oxide nanoparticle clusters into nanochains and nanobundles. ACS Nano 9 (10): 9700–9707.

54 Lalatonne, Y., Richardi, J., and Pileni, M.P. (2004). Van der Waals versus dipolar forces controlling mesoscopic organizations of magnetic nanocrystals. Nature Materials 3 (2): 121–125.

55 Levins, J.M. and Vanderlick, T.K. (1992). Reduction of the roughness of silver films by the controlled application of surface forces. The Journal of Physical Chemistry 96 (25): 10405–10411.

56 Li, H.L., Henderson, M.J., Wang, K.Z. et al. (2017). Colloidal assembly of magnetic nanoparticles and polyelectrolytes by arrested electrostatic interaction. Colloids and Surfaces A – Physicochemical and Engineering Aspects 514: 107–116.

57 Lifshitz, E.M. and Hamermesh, M. (1992). The theory of molecular attractive forces between solids. In: Perspectives in Theoretical Physics (ed. L.P. Pitaevski), 329–349. Amsterdam: Pergamon.

58 Lin, M.Y., Lindsay, H.M., Weitz, D.A. et al. (1989). Universality in colloid aggregation. Nature 339 (6223): 360–362.

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