박사

Engineered magnetic resonance imaging contrast agent for molecular imaging application

김봉준 2015년
논문상세정보
' Engineered magnetic resonance imaging contrast agent for molecular imaging application' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • aptamer
  • diagnosis
  • magnetic nanoparticle
  • magnetic resonance imaging
  • moleclular imaging probe
  • molecular imaging
  • specific targeting
  • targeting moiety
  • 분자 영상
  • 압타머
  • 자기공명 영상
  • 자성나노입자
  • 지능형 조영제
  • 표적리간드
  • 표적지향
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
830 0

0.0%

' Engineered magnetic resonance imaging contrast agent for molecular imaging application' 의 참고문헌

  • van Furth W R, Laughlin S, Taylor M D, Salhia B, Mainprize T, Henkelman M, Cusimano M D, Ackerley C and Rutka J T: Imaging of murine brain tumors using a 1.5 Tesla clinical MRI system. The Canadian journal of neurological sciences. Le journal canadien des sciences neurologiques 2003, 30: 326-32.
  • Zhao S-Y, Lee D K, Kim C W, Cha H G, Kim Y H, Kang Y S: Synthesis of Magnetic Nanoparticles of Fe3O4 and CoFe2O4 and Their Surface Modification by Surfactant Adsorption. B Korean Chem Soc 2006, 27: 237-42.
  • Zhao M, Beauregard D A, Loizou L, Davletov B, Brindle K M: Non-invasive detection of apoptosis using magnetic resonance imaging and a targeted contrast agent. Nat Med 2001, 7: 1241-4.
  • Zhang Y, Yang M, Portney N, Cui D, Budak G, Ozbay E, Ozkan M and Ozkan C: Zeta potential: a surface electrical characteristic to probe the interaction of nanoparticles with normal and cancer human breast epithelial cells. Biomed Microdevices 2008, 10: 321-8.
  • Zhang L, Zhong X, Wang L, et al. T1-weighted ultrashort echo time method for positive contrast imaging of magnetic nanoparticles and cancer cells bound with the targeted nanoparticles. Journal of Magnetic Resonance Imaging. 2011;33(1):194-202.
  • Zhang L, He R, Gu H-C: Oleic acid coating on the monodisperse magnetite nanoparticles. Appl Surf Sci 2006, 253: 2611-7.
  • You DG, Saravanakumar G, Son S, et al. Dextran sulfate-coated superparamagnetic iron oxide nanoparticles as a contrast agent for atherosclerosis imaging. Carbohydr Polym.1202014;101:1225-33.
  • Yigit M V, Mazumdar D, Kim H-K, Lee J H, Odintsov B and Lu Y: Smart Turn-on Magnetic Resonance Contrast Agents Based on Aptamer-Functionalized Superparamagnetic Iron Oxide Nanoparticles. ChemBioChem 2007, 8: 1675-8.
  • Yang J, Park SB, Yoon H-G, et al. Preparation of poly ?-caprolactone nanoparticles containing magnetite for magnetic drug carrier. International Journal of Pharmaceutics. 2006;324(2):185-90.
  • Yang J, Park S B, Yoon H-G, Huh Y M, Haam S: Preparation of poly ?-caprolactone nanoparticles containing magnetite for magnetic drug carrier. Int J Pharm 2006, 324: 185-90.
  • Yang J, Lee E-S, Noh M-Y, Koh S-H, Lim E-K, Yoo A R, Lee K, Suh J-S, Kim S H, Haam S and Huh Y-M: Ambidextrous magnetic nanovectors for synchronous gene transfection and labeling of human MSCs. Biomaterials 2011, 32: 6174-82.
  • Yang J, Lee C-H, Park J, Seo S, Lim E-K, Song Y J, Suh J-S, Yoon H-G, Huh Y-M, Haam S: Antibody conjugated magnetic PLGA nanoparticles for diagnosis and treatment of breast cancer. J Mater Chem 2007, 17: 2695-9.
  • Yang J, Gunn J, Dave S R, Zhang M, Wang Y A, Gao X: Ultrasensitive detection and molecular imaging with magnetic nanoparticles. Analyst 2008, 133: 141-280.
  • Yang J, Eom K, Lim E-K, Park J, Kang Y, Yoon D S, Na S, Koh E K, Suh J-S, Huh Y-M, Kwon T Y and Haam S: In Situ Detection of Live Cancer Cells by Using Bioprobes Based on Au Nanoparticles. Langmuir 2008, 24: 12112-5.
  • X. Michalet, F. F. Pinaud, L. A. Bentolila, J. M. Tsay, S. Doose, J. J. Li, G. Sundaresan, A. M. Wu, S. S. Gambhir, S. Weiss, Quantum Dots for Live Celss, in vivo Imaging, and Diagnostics Science 2005,307,538
  • Wu YL, Ye Q, Foley LM, et al. In situ labeling of immune cells with iron oxide particles: An approach to detect organ rejection by cellular MRI. Proceedings of the National Academy of Sciences of the United States of America. 2006;103(6):1852-7.
  • Winter P M, Morawski A M, Caruthers S D, Fuhrhop R W, Zhang H, Williams T A, Allen J S, Lacy E K, Robertson J D, Lanza G M and Wickline S A: Molecular Imaging of Angiogenesis in Early-Stage Atherosclerosis With ??v??3-Integrin?Targeted Nanoparticles. Circulation 2003, 108: 2270-4.
  • Weissleder R, Moore A, Mahmood U, et al. In vivo magnetic resonance imaging of transgene expression. Nat Med. 2000;6(3):351-4.
  • Weissleder R, Moore A, Mahmood U, Bhorade R, Benveniste H, Chiocca E A, Basilion J P: In vivo magnetic resonance imaging of transgene expression. Nat Med 2000, 6: 351-5.
  • Weissleder R, Moore A, Mahmood U, Bhorade R, Benveniste H, Chiocca E A and Basilion J P: In vivo magnetic resonance imaging of transgene expression. Nat Med 2000, 6: 351-4.
  • Weissleder R, Elizondo G, Wittenberg J, et al. Ultrasmall superparamagnetic iron oxide: an intravenous contrast agent for assessing lymph nodes with MR imaging. Radiology. 1990;175(2):494-8.
  • Weinstein J S, Varallyay C G, Dosa E, Gahramanov S, Hamilton B, Rooney W D, Muldoon L L and Neuwelt E A: Superparamagnetic iron oxide nanoparticles: diagnostic magnetic resonance imaging and potential therapeutic applications in neurooncology and central nervous system inflammatory pathologies, a review. J Cereb Blood Flow Metab 2009, 30: 15-35.
  • Wang Y-X, Hussain S, Krestin G. Superparamagnetic iron oxide contrast agents: physicochemical characteristics and applications in MR imaging. European Radiology. 2001;11(11):2319-31.
  • Veiseh O, Sun C, Fang C, Bhattarai N, Gunn J, Kievit F, Du K, Pullar B, Lee D, Ellenbogen R G, Olson J and Zhang M: Specific Targeting of Brain Tumors with an Optical/Magnetic Resonance Imaging Nanoprobe across the Blood-Brain Barrier. Cancer Research 2009, 69: 6200-7.
  • Tromsdorf U I, Bigall N C, Kaul M G, Bruns O T, Nikolic M S, Mollwitz B, Sperling R A, Reimer R, Hohenberg H, Parak W J, Forster S, Beisiegel U, Adam G, Weller H: Size and Surface Effects on the MRI Relaxivity of Manganese Ferrite Nanoparticle Contrast Agents. Nano Lett 2007, 7: 2422-7.
  • Sun S, Zeng H, Robinson DB, et al. Monodisperse MFe2O4 (M = Fe, Co, Mn) Nanoparticles. Journal of the American Chemical Society. 2003;126(1):273-9.
  • Sun S, Zeng H, Robinson D B, Raoux S, Rice P M, Wang S X, Li G: Monodisperse MFe2O4 (M = Fe Co Mn) Nanoparticles. J Am Chem Soc 2003, 126: 273-9.
  • Sun S, Zeng H, Robinson D B, Raoux S, Rice P M, Wang S X and Li G: Monodisperse71MFe2O4 (M = Fe, Co, Mn) Nanoparticles. Journal of the American Chemical Society 2003, 126: 273-9.
  • Stuber M, Gilson WD, Schar M, et al. Positive contrast visualization of iron oxide-labeled119stem cells using inversion-recovery with ON-resonant water suppression (IRON). Magnetic Resonance in Medicine. 2007;58(5):1072-7.
  • Simon G, Bauer J, Saborovski O, et al. T1 and T2 relaxivity of intracellular and extracellular USPIO at 1.5T and 3T clinical MR scanning. European Radiology. 2006;16(3):738-45.
  • Shiomi M, Ito T. The Watanabe heritable hyperlipidemic (WHHL) rabbit, its characteristics and history of development: A tribute to the late Dr. Yoshio Watanabe. Atherosclerosis. 2009;207(1):1-7.
  • Shevchenko E V, Talapin D V, Kotov N A, O'Brien S, Murray C B: Structural diversity in binary nanoparticle superlattices. Nature 2006, 439: 55-9.
  • Shapiro EM, Skrtic S, Koretsky AP. Sizing it up: Cellular MRI using micron-sized iron oxide particles. Magnetic Resonance in Medicine. 2005;53(2):329-38.
  • Seo S-B, Yang J, Lee T-I, Chung C-H, Song Y J, Suh J-S, Yoon H-G, Huh Y-M, Haam S: Enhancement of magnetic resonance contrast effect using ionic magnetic clusters. J Colloid Interf Sci 2008, 319: 429-34.
  • Sasaki T, Kuzuya M, Nakamura K, et al. A Simple Method of Plaque Rupture Induction in Apolipoprotein E.Deficient Mice. Arteriosclerosis, Thrombosis, and Vascular Biology. 2006;26(6):1304-9.
  • Sanz J, Fayad ZA. Imaging of atherosclerotic cardiovascular disease. Nature. 2008;451(7181):953-7.121
  • SCHMITZ SA, COUPLAND SE, GUST R, et al. Superparamagnetic Iron Oxide.Enhanced MRI of Atherosclerotic Plaques in Watanabe Hereditable Hyperlipidemic Rabbits. Investigative Radiology. 2000;35(8):460-71.
  • Ruehm SG, Corot C, Vogt P, et al. Magnetic Resonance Imaging of Atherosclerotic Plaque With Ultrasmall Superparamagnetic Particles of Iron Oxide in Hyperlipidemic Rabbits. Circulation. 2001;103(3):415-22.
  • Roch A, Gossuin Y, Muller R N, Gillis P: Superparamagnetic colloid suspensions: Water magnetic relaxation and clustering. J Magn Magn Mater 2005, 293: 532-9.
  • R. Massart preparation of aqueous magnetic liquids in alkaline and acidic media IEEE Transactions on Magnetics, 1981, MAG-17(2).
  • Prakash A, Zhu H, Jones C J, Benoit D N, Ellsworth A Z, Bryant E L, Colvin V L: Bilayers as Phase Transfer Agents for Nanocrystals Prepared in Nonpolar Solvents. ACS Nano952009, 3: 2139-46.
  • Platt N, Gordon S. Is the class A macrophage scavenger receptor (SR-A) multifunctional? - The mouse's tale. J Clin Invest. 2001;108(5):649-54.
  • Perez J M, Josephson L, O'Loughlin T, Hogemann D, Weissleder R: Magnetic relaxation94switches capable of sensing molecular interactions. Nat Biotech 2002, 20: 816-20.
  • Park J, Yang J, Lim E-K, Kim E, Choi J, Ryu J K, Kim N H, Suh J-S, Yook J I, Huh Y-M and Haam S: Anchored Proteinase-Targetable Optomagnetic Nanoprobes for Molecular70Imaging of Invasive Cancer Cells. Angewandte Chemie International Edition 2012, 51: 945-8.
  • Park J, An K, Hwang Y, et al. Ultra-large-scale syntheses of monodisperse nanocrystals. Nat Mater. 2004;3(12):891-5.
  • Park J, An K, Hwang Y, Park J-G, Noh H-J, Kim J-Y, Park J-H, Hwang N-M, Hyeon T: Ultra-large-scale syntheses of monodisperse nanocrystals. Nat Mater 2004, 3: 891-5.
  • Ozkaya T, Toprak M S, Baykal A, Kavas H, Koseo?lu Y, Akta? B: Synthesis of Fe3O4 nanoparticles at 100 C and its magnetic characterization. Nanoscale Res Lett 2012, 7: 144-156.
  • Narayanaswamy A, Xu H, Pradhan N, Peng X: Crystalline Nanoflowers with Different Chemical Compositions and Physical Properties Grown by Limited Ligand Protection. Angew Chem Int Edit 2006, 45: 5361-4.
  • Nahrendorf M, Zhang H, Hembrador S, et al. Nanoparticle PET-CT Imaging of Macrophages in Inflammatory Atherosclerosis. Circulation. 2008;117(3):379-87.
  • Morishige K, Kacher DF, Libby P, et al. High-Resolution Magnetic Resonance Imaging Enhanced With Superparamagnetic Nanoparticles Measures Macrophage Burden in Atherosclerosis. Circulation. 2010;122(17):1707-15.
  • Modo M, Cash D, Mellodew K, et al. Tracking Transplanted Stem Cell Migration Using Bifunctional, Contrast Agent-Enhanced, Magnetic Resonance Imaging. NeuroImage. 2002;17(2):803-11.
  • Moats R A, Velan-Mullan S, Jacobs R, Gonzalez-Gomez I, Dubowitz D J, Taga T, Khankaldyyan V, Schultz L, Fraser S, Nelson M D and Laug W E: Micro-MRI at 11.7 T of a murine brain tumor model using delayed contrast enhancement. Molecular imaging 2003, 2: 150-8.
  • McConville P, Hambardzumyan D, Moody J B, Leopold W R, Kreger A R, Woolliscroft M J, Rehemtulla A, Ross B D and Holland E C: Magnetic Resonance Imaging Determination of Tumor Grade and Early Response to Temozolomide in a Genetically Engineered Mouse Model of Glioma. Clinical Cancer Research 2007, 13: 2897-904.
  • McCarthy J R and Weissleder R: Multifunctional magnetic nanoparticles for targeted imaging and therapy. Advanced Drug Delivery Reviews 2008, 60: 1241-51.
  • Massoud T F and Gambhir S S: Molecular imaging in living subjects: seeing fundamental biological processes in a new light. Genes & Development 2003, 17: 545-80.
  • Louie A Y, Huber M M, Ahrens E T, Rothbacher U, Moats R, Jacobs R E, Fraser S E and Meade T J: In vivo visualization of gene expression using magnetic resonance imaging. Nat Biotech 2000, 18: 321-5.
  • Lim E-K, Yang J, Suh J-S, Huh Y-M and Haam S: Self-labeled magneto nanoprobes using tri-aminated polysorbate 80 for detection of human mesenchymal stem cells. Journal of Materials Chemistry 2009, 19: 8958-63.
  • Lim E-K, Jang E, Kim J, et al. Self-fabricated dextran-coated gold nanoparticles using pyrenyl dextran as a reducible stabilizer and their application as CT imaging agents for atherosclerosis. Journal of Materials Chemistry. 2012;22(34):17518-24.
  • Lim E-K, Jang E, Kim B, et al. Dextran-coated magnetic nanoclusters as highly sensitive contrast agents for magnetic resonance imaging of inflammatory macrophages. Journal of Materials Chemistry. 2011;21(33):12473-8.
  • Lim E-K, Jang E, Kim B, Choi J, Lee K, Suh J-S, Huh Y-M, Haam S: Dextran-coated magnetic nanoclusters as highly sensitive contrast agents for magnetic resonance imaging of inflammatory macrophages. J Mater Chem 2011, 21: 12473?12478.
  • Lim E-K, Huh Y-M, Yang J, et al. pH-Triggered Drug-Releasing Magnetic Nanoparticles for Cancer Therapy Guided by Molecular Imaging by MRI. Advanced Materials. 2011;23(21):2436-42.
  • Lim E-K, Huh Y-M, Yang J, Lee K, Suh J-S, Haam S: pH-Triggered Drug-Releasing Magnetic Nanoparticles for Cancer Therapy Guided by Molecular Imaging by MRI. Adv Mater 2001, 23: 2436-42.
  • Libby P. Inflammation in atherosclerosis. Nature. 2002;420(6917):868-74.
  • Lee J-H, Huh Y-M, Jun Y-w, et al. Artificially engineered magnetic nanoparticles for ultra-sensitive molecular imaging. Nat Med. 2007;13(1):95-9.
  • Lee J-H, Huh Y-M, Jun Y-w, Seo J-w, Jang J-t, Song H-T, Kim S, Cho E-J, Yoon H-G, Suh J-S and Cheon J: Artificially engineered magnetic nanoparticles for ultra-sensitive molecular imaging. Nat Med 2007, 13: 95-9.
  • Lee J-H, Huh Y-M, Jun Y-W, Seo J-W, Jang J-T, Song H-T, Kim S, Cho E-J, Yoon H-G, Suh J-S, Cheon J Artificially engineered magnetic nanoparticles for ultra-sensitive molecular imaging. Nat Med 2007, 13: 95-9.
  • Lee J, Govorov A O, Kotov N A: Nanoparticle Assemblies with Molecular Springs: A Nanoscale Thermometer. Angew Chem Int Edit 2005, 44: 7439-42.
  • Koutcher J A, Hu X, Xu S, Gade T P, Leeds N, Zhou X J, Zagzag D and Holland E C: MRI of mouse models for gliomas shows similarities to humans and can be used to identify mice72for preclinical trials. Neoplasia 2002, 4: 480-5.
  • Korosoglou G, Weiss RG, Kedziorek DA, et al. Noninvasive Detection of Macrophage-Rich Atherosclerotic Plaque in Hyperlipidemic Rabbits Using Positive Contrast Magnetic Resonance Imaging. Journal of the American College of Cardiology. 2008;52(6):483-91.
  • Kooi ME, Cappendijk VC, Cleutjens KB, et al. Accumulation of ultrasmall superparamagnetic particles of iron oxide in human atherosclerotic plaques can be detected by in vivo magnetic resonance imaging. Circulation. 2003;107(19):2453-8.
  • Klement G, Huang P, Mayer B, Green S K, Man S, Bohlen P, Hicklin D and Kerbel R S: Differences in Therapeutic Indexes of Combination Metronomic Chemotherapy and an Anti-VEGFR-2 Antibody in Multidrug-resistant Human Breast Cancer Xenografts. Clinical Cancer Research 2002, 8: 221-32.
  • Kim B, Yang J, Lim EK, et al. Double-ligand modulation for engineering magnetic nanoclusters. Nanoscale Res Lett. 2013;8(1):104.
  • Kim B, Yang J, Hwang M, et al. Aptamer-modified magnetic nanoprobe for molecular MR imaging of VEGFR2 on angiogenic vasculature. Nanoscale Research Letters. 2013;8(1):1-10.
  • Kang HW, Josephson L, Petrovsky A, et al. Magnetic Resonance Imaging of Inducible E-Selectin Expression in Human Endothelial Cell Culture. Bioconjugate Chemistry. 2001;13(1):122-7.
  • Kang H W, Josephson L, Petrovsky A, Weissleder R, Bogdanov A: Magnetic Resonance Imaging of Inducible E-Selectin Expression in Human Endothelial Cell Culture. Bioconjugate Chem 2001, 13: 122-7.
  • Jung C W and Jacobs P: Physical and chemical properties of superparamagnetic iron oxide MR contrast agents: Ferumoxides, ferumoxtran, ferumoxsil. Magnetic Resonance Imaging 1995, 13: 661-74.
  • Jun Y-W, Lee J-H, Cheon J: Chemical Design of Nanoparticle Probes for High-Performance Magnetic Resonance Imaging. Angew Chem Int Edit 2008, 47: 5122-35.93
  • Jun Y-W, Huh Y-M, Choi J-S, Lee J-H, Song H-T, Kim S, Yoon S, Kim K-S, Shin J-S, Suh J-S, Cheon J: Nanoscale Size Effect of Magnetic Nanocrystals and Their Utilization for Cancer Diagnosis via Magnetic Resonance Imaging. J Am Chem Soc 2005, 127: 5732-3.
  • Jarrett BR, Frendo M, Vogan J, Louie AY. Size-controlled synthesis of dextran sulfate coated iron oxide nanoparticles for magnetic resonance imaging. Nanotechnology. 2007;18(3):035603.
  • Jaffer FA, Nahrendorf M, Sosnovik D, et al. Cellular imaging of inflammation in atherosclerosis using magnetofluorescent nanomaterials. Molecular Imaging. 2006;5(2):85-92.
  • Jaffer FA, Libby P, Weissleder R. Molecular and cellular imaging of atherosclerosis: emerging applications. J Am Coll Cardiol. 2006;47(7):1328-38.
  • J. yang, T.-I. Lee, E.-K. Lim, W. Hyung, C.-H. Lee, Y.J. Song, J.-S. Suh, H.-G. Yoon, Y.-M. Huh, S. Haam, Synthesis of ultrasensitive magnetic resonance contrast agents for cancer imaging using PEG-fatty acid Chem. Mater. 2007, 19, 3870
  • Isojima T, Suh S K, Vander Sande J B, Hatton T A: Controlled Assembly of Nanoparticle Structures: Spherical and Toroidal Superlattices and Nanoparticle-Coated Polymeric Beads. Langmuir 2009, 25: 8292-8.
  • Howles GP, Ghaghada KB, Qi Y, et al. High-resolution magnetic resonance angiography in the mouse using a nanoparticle blood-pool contrast agent. Magnetic Resonance in Medicine. 2009;62(6):1447-56.
  • Hao B, Li Y, Wang S: Synthesis and Structural Characterization of Surface-Modified TiO2. Adv Mater Res 2010, 129: 154-8.
  • Halpert J E, Porter V J, Zimmer J P, Bawendi M G: Synthesis of CdSe/CdTe Nanobarbells. J Am Chem Soc 2006, 128: 12590-91.
  • Gyergyek S, Makovec D, Drofenik M: Colloidal stability of oleic- and ricinoleic-acid-coated magnetic nanoparticles in organic solvents. J Colloid Interf Sci 2011, 354: 498-505.
  • Grubbs R B: Roles of Polymer Ligands in Nanoparticle Stabilization. Polym Rev 2007, 47: 197-215.
  • Girard OM, Du J, Agemy L, et al. Optimization of iron oxide nanoparticle detection using ultrashort echo time pulse sequences: Comparison of T1, T2*, and synergistic T1 . T2* contrast mechanisms. Magnetic Resonance in Medicine. 2011;65(6):1649-60.
  • Ge J, Hu Y, Biasini M, Beyermann W P, Yin Y: Superparamagnetic Magnetite Colloidal Nanocrystal Clusters. Angew Chem Int Edit 2007, 46: 4342-5.
  • Furnari F B, Fenton T, Bachoo R M, Mukasa A, Stommel J M, Stegh A, Hahn W C, Ligon K L, Louis D N, Brennan C, Chin L, DePinho R A and Cavenee W K: Malignant astrocytic glioma: genetics, biology, and paths to treatment. Genes & Development 2007, 21: 2683-710.
  • Flacke S, Fischer S, Scott MJ, et al. Novel MRI Contrast Agent for Molecular Imaging of Fibrin: Implications for Detecting Vulnerable Plaques. Circulation. 2001;104(11):1280-5.
  • Ellington A D and Szostak J W: In vitro selection of RNA molecules that bind specific ligands. Nature 1990, 346: 818-22.
  • Durmus Z, Sozeri H, Toprak M S, Baykal A: The Effect of Condensation on the Morphology and Magnetic Properties of Modified Barium Hexaferrite (BaFe12O19). Nano-Micro Lett 2011, 3: 108-114.
  • Dillenback L M, Goodrich G P, Keating C D: Temperature-Programmed Assembly of DNA:Au Nanoparticle Bioconjugates. Nano Lett 2005, 6: 16-23.
  • Deguchi J-o, Aikawa M, Tung C-H, et al. Inflammation in Atherosclerosis: Visualizing Matrix Metalloproteinase Action in Macrophages In Vivo. Circulation. 2006;114(1):55-62.
  • Daugherty A, Manning MW, Cassis LA. Angiotensin II promotes atherosclerotic lesions and aneurysms in apolipoprotein E.deficient mice. The Journal of Clinical Investigation. 2000;105(11):1605-12.
  • Choi R, Yang J, Choi J, et al. Thiolated Dextran-Coated Gold Nanorods for Photothermal Ablation of Inflammatory Macrophages. Langmuir. 2010;26(22):17520-7.
  • Choi J, Yang J, Park J, Kim E, Suh J-S, Huh Y-M and Haam S: Specific Near-IR Absorption Imaging of Glioblastomas Using Integrin-Targeting Gold Nanorods. Advanced Functional Materials 2011, 21: 1082-8.
  • Cho E-J, Yang J, Mohamedali K A, Lim E-K, Kim E-J, Farhangfar C J, Suh J-S, Haam S, Rosenblum M G and Huh Y-M: Sensitive Angiogenesis Imaging of Orthotopic Bladder Tumors in Mice Using a Selective Magnetic Resonance Imaging Contrast Agent Containing VEGF121/rGel. Investigative Radiology 2011, 46: 441-9 10.1097/RLI.0b013e3182174fad.
  • Chertok B, Moffat BA, David AE, et al. Iron oxide nanoparticles as a drug delivery vehicle for MRI monitored magnetic targeting of brain tumors. Biomaterials. 2008;29(4):487-96.
  • Astete C E, Kumar C S S R, Sabliov C M: Size control of poly(dl-lactide-co-glycolide) and poly(dl-lactide-co-glycolide)-magnetite nanoparticles synthesized by emulsion evaporation technique. Colloid Surface A 2007, 299: 209-16.
  • Anton N, Benoit J-P and Saulnier P: Design and production of nanoparticles formulated from nano-emulsion templates?A review. Journal of Controlled Release 2008, 128: 185-99.
  • Akbarzadeh A, Samiei M, Davaran S: Magnetic nanoparticles: preparation, physical properties, and applications in biomedicine. J Alloy Compd 2009, 472: 18-23.
  • Ai H, Flask C, Weinberg B, Shuai X T, Pagel M D, Farrell D, Duerk J, Gao J: Magnetite-Loaded Polymeric Micelles as Ultrasensitive Magnetic-Resonance Probes. Adv Mater 2005, 17: 1949-1952.