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11 Radiolabeling Method: Core/Surface Labeling, Chemical …
227
coupling of single quantum dots in phospholipid micelles for their use in cellular and in vivo
imaging. Nat. Protoc. 2(10), 2383–2390 (2007)
87. H. Wu, H. Zhu, J. Zhuang, S. Yang, C. Liu, Y.C. Cao, Water-soluble nanocrystals through
dual-interaction ligands. Angew. Chem. Int. Ed. Engl. 47(20), 3730–3734 (2008)
88. A. Samanta, K.K. Maiti, K.S. Soh, X. Liao, M. Vendrell, U.S. Dinish et al., Ultrasensitive
near-infrared Raman reporters for SERS-based in vivo cancer detection. Angew. Chem. Int.
Ed. Engl. 50(27), 6089–6092 (2011)
89. B.-H. Jun, D.W. Hwang, H.S. Jung, J. Jang, H. Kim, H. Kang et al., Ultrasensitive,
biocompatible, quantum-dot-embedded silica nanoparticles for bioimaging. Adv. Funct.
Mater. 22(9), 1843–1849 (2012)
90. B.Y. Yang, S.H. Moon, S.R. Seelam, M.J. Jeon, Y.S. Lee, D.S. Lee et al., Development of a
multimodal imaging probe by encapsulating iron oxide nanoparticles with functionalized
amphiphiles for lymph node imaging. Nanomed. (Lond.) 10(12), 1899–1910 (2015)
91. D.S. Lee, Preparation of multifunctional multimodal nanoparticles using specific
amphiphiles: click chemistry for nanoparticles. Annu. Congress Clinam (Abstr.) (2013)
92. D.S. Lee, In vivo application of Cu-64 labeled upconversion nanoparticles. Annu. Congress
Clinam (Abstr.) (2014)
93. H. Kang, S. Jeong, Y. Park, J. Yim, B.-H. Jun, S. Kyeong et al., Near-infrared SERS
nanoprobes with plasmonic Au/Ag hollow-shell assemblies for in vivo multiplex detection.
Adv. Funct. Mater. 23(30), 3719–3727 (2013)
94. K. Susumu, H.T. Uyeda, I.L. Medintz, T. Pons, J.B. Delehanty, H. Mattoussi, Enhancing the
stability and biological functionalities of quantum dots via compact multifunctional ligands.
J. Am. Chem. Soc. 129(45), 13987–13996 (2007)
95. J. Hrkach, D. Von Hoff, M. Mukkaram Ali, E. Andrianova, J. Auer, T. Campbell et al.,
Preclinical development and clinical translation of a PSMA-targeted docetaxel nanoparticle
with a differentiated pharmacological profile. Sci. Transl. Med. 4(128), 128ra39 (2012)
96. F. Danhier, B. Vroman, N. Lecouturier, N. Crokart, V. Pourcelle, H. Freichels et al.,
Targeting of tumor endothelium by RGD-grafted PLGA-nanoparticles loaded with
paclitaxel. J. Control Release 140(2), 166–173 (2009)
97. D. Sarko, M. Eisenhut, U. Haberkorn, W. Mier, Bifunctional chelators in the design and
application of radiopharmaceuticals for oncological diseases. Curr. Med. Chem. 19(17),
2667–2688 (2012)
98. Y. Xing, J. Zhao, P.S. Conti, K. Chen, Radiolabeled nanoparticles for multimodality tumor
imaging. Theranostics 4(3), 290–306 (2014)
99. G.F.F. Enrique Morales-Avila, B.E. Ocampo-García, F. de María Ramírez, Radiolabeled
Nanoparticles for Molecular Imaging, ed. by B. Schaller. (InTech) (2012)
100. T.J. Wadas, E.H. Wong, G.R. Weisman, C.J. Anderson, Coordinating radiometals of copper,
gallium, indium, yttrium, and zirconium for PET and SPECT imaging of disease. Chem.
Rev. 110(5), 2858–2902 (2010)
101. Y.-S. Lee, in Radiopharmaceutical Chemistry, ed. by E.E. Kim, U. Tateishi, R. Baum.
Handbook of Nuclear Medicine and Molecular Imaging (World Scientific Publishing Co.
Pte. Ltd, NJ, 2012) pp. 21–51
102. W.T. Phillips, B.A. Goins, A. Bao, Radioactive liposomes. Wiley Interdiscip. Rev.
Nanomed. Nanobiotechnol. 1(1), 69–83 (2009)
103. S. Jeger, K. Zimmermann, A. Blanc, J. Grunberg, M. Honer, P. Hunziker et al., Site-specific
and stoichiometric modification of antibodies by bacterial transglutaminase. Angew. Chem.
Int. Ed. Engl. 49(51), 9995–9997 (2010)
104. S. Goel, F. Chen, E.B. Ehlerding, W. Cai, Intrinsically radiolabeled nanoparticles: an
emerging paradigm. Small 10(19), 3825–3830 (2014)
11 Radiolabeling Method: Core/Surface Labeling, Chemical …
227
