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Laudemir Carlos Varanda, Miguel Jafelicci Júnior and Watson Beck Júnior (2011)

JAMA 293, 855–62

41. Laudemir Carlos Varanda, Miguel Jafelicci Júnior and Watson Beck Júnior (2011)

Magnetic and multifunctional magnetic nanoparticles in nanomedicine: challenges and trends in synthesis and surface engineering for diagnostic and therapy applications, biomedical engineering. Trends in Materials Science, Mr Anthony Laskovski (Ed.), ISBN: 978-953-307-513-6, InTech, Available from:

http://www.intechopen.com/books/biomedical-engineering-trends-in-materials- science/magnetic-and-multifunctional-magnetic-nanoparticles-in-nanomedicine-challenges-and-trends-in-synthes.

42. Yan, K., Li, P., Zhu, H., Zhou, Y., Ding, J., Shen, J., Li, Z., Xu, Z., and Chu, P. K.

(2013) Recent advances in multifunctional magnetic nanoparticles and applications to biomedical diagnosis and treatment. RSC Adv. DOI:

10.1039/C3RA40348C.

43. Yu, H., Chen, M., Rice, P. M., Wang, S. X., White, R. L., and Sun, S. H. (2005) Dumbbell-like bifunctional Au-Fe

3

O

4

nanoparticles. Nano. Lett. 5, 379-82.

44. Mokari, T., Rothenberg, E., Popov, I., Costi, R., and Banin, U. (2004) Selective growth of metal tips onto semiconductor quantum rods and tetrapods. Science 304, 1787-90.

45. Shi, W. L., Sahoo, Y., Zeng, H., Ding, Y., Swihart, M. T. and Prasad, P. N. (2006) Anisotropic growth of PbSe nanocrystals on Au-Fe

3

O

4

hybrid nanoparticles. Adv.

Mater. 18, 1889-94.

46. Sun, C., Lee, J. S. H., and Zhang, M. Q. (2008) Magnetic nanoparticles in MR imaging and drug delivery. Adv. Drug Deliv. Rev. 60, 1252-65.

47. Hunter, R. J. (2001). Foundations of colloid science, Oxford University Press,

Multifunctional MNPs as Theragnostics Chapter 1

! 44!

ISBN: 0198505027, Oxford, UK.

48. Sharma, P. K., Dutta, R. K., and Pandey, A. C. (2011) Advances in multifunctional magnetic nanoparticles. Adv. Mat. Lett. 2, 246-63.

49. Brunner, T. J., Wick, P., Manser, P., Spohn, P., Grass, R. N., Limbach, L. K., Bruinink, A., and Stark, W. J. (2006) In vitro cytotoxicity of oxide nanoparticles:

comparison to asbestos, silica, and the effect of particle solubility. Environ. Sci.

Technol. 40, 4374-81.

50. Oberdo ̈rster, G., Stone, V., and Donaldson, K. (2007) Toxicology of nanoparticles: a historical perspective. Nanotoxicology 1, 2-25.

51. Veranth, J. M., Kaser, E. G., Veranth, M. M., Koch, M., and Yost, G. S. (2007) Cytokine responses of human lung cells (BEAS-2B) treated with micron-sized and nanoparticles of metal oxides compared to soil dusts. Part Fibre. Toxicol. 4.

52. Sadeghiani, N., Barbosa, L. S., Silva, L. P., Azevedo, R. B., Morais, P. C., and Lacava, Z. G. M. (2005) Genotoxicity and inflammatory investigation in mice treated with magnetite nanoparticles surface coated with polyaspartic acid. J.

Magn. Magn. Mater. 289, 466-8.

53. Singh, N., Jenkins, G. J., Asadi, R., and Doak, S. H. (2010) Potential toxicity of superparamagnetic iron oxide nanoparticles (SPION), Nano Rev. 1, 5358.

54. Alexiou, C., Arnold, W., Hulin, P., Klein, R. J., Renz, H., Parak, F. G., Bergemann, C., and Lübbe, A. S. (2001) Magnetic mitoxantrone nanoparticle detection by histology, X-ray and MRI after magnetic tumor targeting. J. Magn. Magn. Mater.

225, 187-93.

55. Grüttner, C., Rudershausen, S., and Teller, J. (2001) Improved properties of magnetic particles by combination of different polymer materials as particle matrix. J. Magn. Magn. Mater. 225, 1-7.

56. Sivakumar, B., Aswathy, R. G., Nagaoka, Y., Suzuki, M., Fukuda, T., Yoshida, Y.,

Maekawa, T., and Sakthikumar, D. N. (2013) Multifunctional carboxymethyl

Multifunctional MNPs as Theragnostics Chapter 1

cellulose based magnetic nanovector as theragnostic system for folate receptor targeted chemotherapy, imaging and hyperthermia against cancer. Langmuir 29, 3453-66.

57. van Ewijk , G. A., Vroege, G. J., and Philipse, A. P. (1999) Convenient preparation methods for magnetic colloids. J. Magn. Magn. Mater. 201, 31-33.

58. Mornet, S., Grasset, F., Portier, J., and Duguet, E. (2002) Maghemite@silica nanoparticles for biological applications. Eur. Cells Mater. 3,110-3.

59. Bogdanov, A., Wright, S. C., Marecos, E. M., Bogdanova, A., Martin, C., Petherick, P., and Weissleder, R. (1997) A long-circulating co-polymer in "passive targeting"

to solid tumors. J. Drug Target. 4, 321-30.

60. Maeda, H. (2010) Tumor-selective delivery of macromolecular drugs via the EPR effect: background and future prospects. Bioconjug. Chem. 21, 797–802.

61. Veiseh, O., Gunn, J. W., and Zhang, M. (2010) Design and fabrication of magnetic nanoparticles for targeted drug delivery and imaging. Adv. Drug Deliv. Rev. 62, 284–304.

62. Medarova, Z., Pham, W., Farrar

,

C., Petkova

,

V., and Moore

,

A. (2007) In vivo imaging of siRNA delivery and silencing in tumors. Nat. Med. 13, 372–7.

63. Chertok, B. David, A. E. and Yang, V.C. (2010) Polyethyleneimine-modified iron oxide nanoparticles for brain tumor drug delivery using magnetic targeting and intra-carotid administration. Biomaterials 31, 6317–24.

64. Suh, J. S., Lee, J. Y., Choi, Y. S., Yu, F., Yang, V., Lee, S. J., Chung, C. P., and Park, Y. J. (2009) Efficient labeling of mesenchymal stem cells using cell permeable magnetic nanoparticles. Biochem. Biophys. Res. Commun. 379, 669–75.

65. Torchilin, V.P. (2008) Cell penetrating peptide-modified pharmaceutical nanocarriers for intracellular drug and gene delivery. Biopolymers 90, 604–10.

66. Veiseh, O., Kievit, F. M., Fang, C., Mu, N., Jana, S., Leung, M. C., Mok, H.,

Ellenbogen, R. G., Park, J. O., and Zhang, M. (2010) Chlorotoxin bound magnetic

Multifunctional MNPs as Theragnostics Chapter 1

! 46!

nanovector tailored for cancer cell targeting, imaging, and siRNA delivery.

Biomaterials 31, 8032–42.

67. Dobson, J. (2006) Magnetic nanoparticles for drug delivery. Drug Dev. Res. 67, 55–60!.

68. Pankhurst, Q. A. Connolly

,

J., Jones, S. K., and Dobson, J. (2003) Applications of magnetic nanoparticles in biomedicine. J. Phys. D: Appl. Phys. 36, R167–81.

69. Chen, P., Feng, X., Du, W., and Liu, B. F. (2008) Microfluidic chips for cell sorting.

Front. Biosci. 13, 2464-83.

70. Na, H. B., Lee, J. H., An, K. J., Park, Y. I., Park, M., Lee, I. S., Nam, D. H., Kim, S.

T., Kim, S. H., Kim, S. W., Lim, K. H., Kim, K. S., Kim, S. O., and Hyeon, T. (2007) Development of a T-1 contrast agent for magnetic resonance imaging using MnO nanoparticles. Angew. Chem. Int. Edit. 46, 5397-401.

71. Weinmann, H. J., Ebert, W., Misselwitz, B. and Schmitt-Willich, H. (2003) Tissue-specific MR contrast agents. Eur. J. Radiol. 46, 33-44.

72. Gupta, A. K., Naregalkar, R. R., Vaidya, V. D., and Gupta, M. (2007) Recent advances on surface engineering of magnetic iron oxide nanoparticles and their biomedical applications. Nanomedicine 2, 23-39.

73. Na, H. B., Lee, I. S., Seo, H., Park, Y. I., Lee, J. H., Kim, S. W., and Hyeon, T.

(2007) Versatile PEG-derivatized phosphine oxide ligands for water-dispersible metal oxide nanocrystals. Chem. Commun. 48, 5167-9.

74. Dave, S. R., and Gao, X. (2009) Monodisperse magnetic nanoparticles for biodetection, imaging, and drug delivery: a versatile and evolving technology.

Wiley Interdiscip. Rev. Nanomed. Nanobiotechnol. 1, 583-609.

75. Lee, J. H., Huh, Y. M., Jun, Y., Seo, J., Jang, J., Song, H. T., Kim, S., Cho, E. J., Yoon, H. G., Suh, J. S., and Cheon, J. (2006) Artificially engineered magnetic nanoparticles for ultra-sensitive molecular imaging. Nat. Med. 13, 95 – 99.

76. Huh, Y. M., Jun, Y. W., Song, H. T., Kim, S., Choi, J. S., Lee, J. H., Yoon, S., Kim,

Multifunctional MNPs as Theragnostics Chapter 1

K. S., Shin, J. S., Suh, J. S., and Cheon, J. (2005) In vivo magnetic resonance detection of cancer by using multifunctional magnetic nanocrystals. J. Am. Chem.

Soc. 127, 12387 –91.

77. Hultman, K. L., Raffo, A. J., Grzenda, A. L., Harris, P. E., Brownand, T. R., and O’

Brien, S. (2008) Magnetic resonance imaging of major histocompatibility class II expression in the renal medulla using immunotargeted superparamagnetic iron oxide nanoparticles. ACS Nano 2, 477 – 84.

78. Lee, J. E., Lee, N., Kim, H., Kim, J., choi, S. H., Kim, J. H., Kim, T., Song, I. C., Park, S. P., Moon, W. K., and Hyeon, T. (2010) Uniform mesoporous dye-doped silica nanoparticles decorated with multiple magnetite nanocrystals for simultaneous enhanced magnetic resonance imaging, fluorescence imaging, and drug delivery. J. Am. Chem. Soc. 132, 552-7.

79. Dewhirst, M. W., Gibbs, F. A., Jr, Roemer, R. B., and Samulski, T. V.

Hyperthermia. In: Gunderson LL, Tepper JE (eds.). Clinical Radiation Oncology.

1st ed. Chapter 14. New York, NY: Churchill Livingstone, (2000) 256–82.