Magnetic/upconversion fluorescent NaGdF4:Yb,Er nanoparticle-based dual-modal molecular probes for imaging tiny tumors in vivo.
暂无分享,去创建一个
Mingyuan Gao | Jianfeng Zeng | Yi Hou | F. Fang | H. Lei | Wensheng Yang | Mingyuan Gao | Chunyan Liu | Yi Hou | Jianfeng Zeng | Hao Lei | Chunyan Liu | Ruirui Qiao | Wensheng Yang | Ruirui Qiao | Zhenyu Gao | Yilin Li | Zhenyu Gao | Yilin Li | Lin Shen | Fang Fang | Lin Shen
[1] Daxiang Cui,et al. Dual Phase‐Controlled Synthesis of Uniform Lanthanide‐Doped NaGdF4 Upconversion Nanocrystals Via an OA/Ionic Liquid Two‐Phase System for In Vivo Dual‐Modality Imaging , 2011 .
[2] A. P. Alivisatos,et al. A new nonhydrolytic single-precursor approach to surfactant-capped nanocrystals of transition metal oxides , 1999 .
[3] Cédric Louis,et al. Biodistribution study of nanometric hybrid gadolinium oxide particles as a multimodal SPECT/MR/optical imaging and theragnostic agent. , 2011, Bioconjugate chemistry.
[4] Jan Grimm,et al. An X-ray computed tomography imaging agent based on long-circulating bismuth sulphide nanoparticles , 2006, Nature materials.
[5] Gan-Moog Chow,et al. Water -soluble NaYF4:Yb,Er (Tm)/NaYF4/Polymer Core/Shell/Shell nanoparticles with significant enhancement of upconversion fluorescence , 2007 .
[6] C. S. Lim,et al. Simultaneous phase and size control of upconversion nanocrystals through lanthanide doping , 2010, Nature.
[7] Louis A. Cuccia,et al. Synthesis of colloidal upconverting NaYF4 nanocrystals doped with Er3+, Yb3+ and Tm3+, Yb3+ via thermal decomposition of lanthanide trifluoroacetate precursors. , 2006, Journal of the American Chemical Society.
[8] Yun Sun,et al. Dual-modality in vivo imaging using rare-earth nanocrystals with near-infrared to near-infrared (NIR-to-NIR) upconversion luminescence and magnetic resonance properties. , 2010, Biomaterials.
[9] Juan Wang,et al. Direct evidence of a surface quenching effect on size-dependent luminescence of upconversion nanoparticles. , 2010, Angewandte Chemie.
[10] Greg J. Stanisz,et al. Size-Tunable, Ultrasmall NaGdF4 Nanoparticles: Insights into Their T1 MRI Contrast Enhancement , 2011 .
[11] Jun Fang,et al. The EPR effect: Unique features of tumor blood vessels for drug delivery, factors involved, and limitations and augmentation of the effect. , 2011, Advanced drug delivery reviews.
[12] Hao Zeng,et al. DNA-functionalized MFe2O4 (M = Fe, Co, or Mn) nanoparticles and their hybridization to DNA-functionalized surfaces. , 2005, Langmuir : the ACS journal of surfaces and colloids.
[13] Chenghui Liu,et al. Morphology- and phase-controlled synthesis of monodisperse lanthanide-doped NaGdF4nanocrystals with multicolor photoluminescence , 2009 .
[14] Christopher McRae,et al. Upconversion luminescence with tunable lifetime in NaYF4:Yb,Er nanocrystals: role of nanocrystal size. , 2013, Nanoscale.
[15] Jinwoo Cheon,et al. Artificially engineered magnetic nanoparticles for ultra-sensitive molecular imaging , 2007, Nature Medicine.
[16] Jin-Sil Choi,et al. In vivo magnetic resonance detection of cancer by using multifunctional magnetic nanocrystals. , 2005, Journal of the American Chemical Society.
[17] Tymish Y. Ohulchanskyy,et al. Combined Optical and MR Bioimaging Using Rare Earth Ion Doped NaYF4 Nanocrystals , 2009 .
[18] Yun Sun,et al. Fluorine-18-labeled Gd3+/Yb3+/Er3+ co-doped NaYF4 nanophosphors for multimodality PET/MR/UCL imaging. , 2011, Biomaterials.
[19] V. Diehl,et al. Lymphocyte predominant Hodgkin's disease: pathology and clinical implication. , 1998, Annals of oncology : official journal of the European Society for Medical Oncology.
[20] Taeghwan Hyeon,et al. Nonblinking and Nonbleaching Upconverting Nanoparticles as an Optical Imaging Nanoprobe and T1 Magnetic Resonance Imaging Contrast Agent , 2009 .
[21] Frank C J M van Veggel,et al. Surface modification of upconverting NaYF4 nanoparticles with PEG-phosphate ligands for NIR (800 nm) biolabeling within the biological window. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[22] R K Jain,et al. Geometric resistance to blood flow in solid tumors perfused ex vivo: effects of tumor size and perfusion pressure. , 1989, Cancer research.
[23] Wei Feng,et al. Gd3+ complex-modified NaLuF4-based upconversion nanophosphors for trimodality imaging of NIR-to-NIR upconversion luminescence, X-Ray computed tomography and magnetic resonance. , 2012, Biomaterials.
[24] M. Bawendi,et al. Renal clearance of quantum dots , 2007, Nature Biotechnology.
[25] Mingyuan Gao,et al. Superparamagnetic iron oxide nanoparticles: from preparations to in vivo MRI applications , 2009 .
[26] Mingyuan Gao,et al. Preparation of Biocompatible Magnetite Nanocrystals for In Vivo Magnetic Resonance Detection of Cancer , 2006 .
[27] Yanqing Hua,et al. Multifunctional nanoprobes for upconversion fluorescence, MR and CT trimodal imaging. , 2012, Biomaterials.
[28] Fan Zhang,et al. Uniform nanostructured arrays of sodium rare-earth fluorides for highly efficient multicolor upconversion luminescence. , 2007, Angewandte Chemie.
[29] Taeghwan Hyeon,et al. Theranostic Probe Based on Lanthanide‐Doped Nanoparticles for Simultaneous In Vivo Dual‐Modal Imaging and Photodynamic Therapy , 2012, Advanced materials.
[30] Manuela Semmler-Behnke,et al. Biodistribution of PEG-modified gold nanoparticles following intratracheal instillation and intravenous injection. , 2010, Biomaterials.
[31] Zhengquan Li,et al. An efficient and user-friendly method for the synthesis of hexagonal-phase NaYF4:Yb, Er/Tm nanocrystals with controllable shape and upconversion fluorescence , 2008, Nanotechnology.
[32] N. Zheng,et al. Small Adsorbate‐Assisted Shape Control of Pd and Pt Nanocrystals , 2012, Advanced materials.
[33] Francisco Sanz-Rodríguez,et al. Bio-functionalization of ligand-free upconverting lanthanide doped nanoparticles for bio-imaging and cell targeting. , 2012, Nanoscale.
[34] Qing Peng,et al. Lanthanide-doped nanocrystals: synthesis, optical-magnetic properties, and applications. , 2011, Accounts of chemical research.
[35] Jerry S. H. Lee,et al. Magnetic nanoparticles in MR imaging and drug delivery. , 2008, Advanced drug delivery reviews.
[36] Guofeng Zhang,et al. Functional MnO nanoclusters for efficient siRNA delivery. , 2011, Chemical communications.
[37] J. Bussink,et al. Angiogenesis, hypoxia and VEGF expression during tumour growth in a human xenograft tumour model. , 2009, Microvascular research.
[38] Qingfeng Xiao,et al. Rattle-structured multifunctional nanotheranostics for synergetic chemo-/radiotherapy and simultaneous magnetic/luminescent dual-mode imaging. , 2013, Journal of the American Chemical Society.
[39] F. Fang,et al. NaGdF4 nanoparticle-based molecular probes for magnetic resonance imaging of intraperitoneal tumor xenografts in vivo. , 2013, ACS Nano.
[40] Yasuhiko Tabata,et al. Blood clearance and biodistribution of polymer brush-afforded silica particles prepared by surface-initiated living radical polymerization. , 2012, Biomacromolecules.
[41] I. Fidler,et al. Growth and metastasis of tumor cells isolated from a human renal cell carcinoma implanted into different organs of nude mice. , 1986, Cancer research.
[42] Yiguang Ju,et al. A single-step synthesis and the kinetic mechanism for monodisperse and hexagonal-phase NaYF4:Yb, Er upconversion nanophosphors , 2009, Nanotechnology.
[43] Ya-Wen Zhang,et al. Highly Efficient Multicolor Up-Conversion Emissions and Their Mechanisms of Monodisperse NaYF4:Yb,Er Core and Core/Shell-Structured Nanocrystals , 2007 .
[44] Paul A Dayton,et al. A stimulus-responsive contrast agent for ultrasound molecular imaging. , 2008, Biomaterials.
[45] Joachim O. Rädler,et al. Hydrophobic Nanocrystals Coated with an Amphiphilic Polymer Shell: A General Route to Water Soluble Nanocrystals , 2004 .
[46] Qing Peng,et al. Fluorescence resonant energy transfer biosensor based on upconversion-luminescent nanoparticles. , 2005, Angewandte Chemie.
[47] Chenjie Xu,et al. Controlled PEGylation of Monodisperse Fe3O4 Nanoparticles for Reduced Non‐Specific Uptake by Macrophage Cells , 2007 .
[48] Y. C. Cao,et al. Synthesis of square gadolinium-oxide nanoplates. , 2004, Journal of the American Chemical Society.
[49] Zhengquan Li,et al. Monodisperse silica-coated polyvinylpyrrolidone/NaYF(4) nanocrystals with multicolor upconversion fluorescence emission. , 2006, Angewandte Chemie.
[50] G. Qin,et al. Greatly enhanced size-tunable ultraviolet upconversion luminescence of monodisperse β-NaYF4:Yb,Tm nanocrystals , 2011 .
[51] Chenjie Xu,et al. PET/MRI Dual-Modality Tumor Imaging Using Arginine-Glycine-Aspartic (RGD)–Conjugated Radiolabeled Iron Oxide Nanoparticles , 2008, Journal of Nuclear Medicine.
[52] Su Seong Lee,et al. Synthesis of highly crystalline and monodisperse maghemite nanocrystallites without a size-selection process. , 2001, Journal of the American Chemical Society.
[53] M. Ogris,et al. Low generation PAMAM dendrimer and CpG free plasmids allow targeted and extended transgene expression in tumors after systemic delivery. , 2010, Journal of controlled release : official journal of the Controlled Release Society.
[54] Donghoon Lee,et al. In vivo MRI detection of gliomas by chlorotoxin-conjugated superparamagnetic nanoprobes. , 2008, Small.
[55] Wei Feng,et al. Core-shell Fe3O4@NaLuF4:Yb,Er/Tm nanostructure for MRI, CT and upconversion luminescence tri-modality imaging. , 2012, Biomaterials.
[56] Shuming Nie,et al. Understanding and overcoming major barriers in cancer nanomedicine. , 2010, Nanomedicine.
[57] Y. Xiong,et al. Controlled synthesis of uniform LaF3 polyhedrons, nanorods and nanoplates using NaOH and ligands , 2013, Nanotechnology.
[58] Yang Yang,et al. Long-term in vivo biodistribution imaging and toxicity of polyacrylic acid-coated upconversion nanophosphors. , 2010, Biomaterials.
[59] Abby M. Gonik,et al. The passive targeting of polymeric micelles in various types and sizes of tumor models , 2010 .
[60] Fuyou Li,et al. High contrast upconversion luminescence targeted imaging in vivo using peptide-labeled nanophosphors. , 2009, Analytical chemistry.
[61] J. W. Stouwdam,et al. Near-infrared Emission of Redispersible Er3+, Nd3+, and Ho3+ Doped LaF3 Nanoparticles , 2002 .
[62] P. Perriat,et al. Hybrid gadolinium oxide nanoparticles: multimodal contrast agents for in vivo imaging. , 2007, Journal of the American Chemical Society.
[63] Sang Moo Lim,et al. RGD Peptide–Conjugated Multimodal NaGdF4:Yb3+/Er3+ Nanophosphors for Upconversion Luminescence, MR, and PET Imaging of Tumor Angiogenesis , 2013, The Journal of Nuclear Medicine.
[64] Mingdong Huang,et al. Amine-functionalized lanthanide-doped KGdF4 nanocrystals as potential optical/magnetic multimodal bioprobes. , 2012, Journal of the American Chemical Society.
[65] W. Wang,et al. Controlled synthesis of NaYF4 nanoparticles and upconversion properties of NaYF4:Yb, Er (Tm)/FC transparent nanocomposite thin films. , 2012, Journal of colloid and interface science.
[66] S. Nie,et al. In vivo cancer targeting and imaging with semiconductor quantum dots , 2004, Nature Biotechnology.
[67] Ya-Wen Zhang,et al. High-quality sodium rare-earth fluoride nanocrystals: controlled synthesis and optical properties. , 2006, Journal of the American Chemical Society.
[68] Shuo Diao,et al. In vivo fluorescence imaging with Ag2S quantum dots in the second near-infrared region. , 2012, Angewandte Chemie.
[69] John V Frangioni,et al. Detection of breast cancer microcalcifications using a dual-modality SPECT/NIR fluorescent probe. , 2008, Journal of the American Chemical Society.
[70] Mingyuan Gao,et al. A novel type of dual-modality molecular probe for MR and nuclear imaging of tumor: preparation, characterization and in vivo application. , 2009, Molecular pharmaceutics.
[71] Kai Yang,et al. Facile preparation of multifunctional upconversion nanoprobes for multimodal imaging and dual-targeted photothermal therapy. , 2011, Angewandte Chemie.
[72] Shuming Nie,et al. Single chain epidermal growth factor receptor antibody conjugated nanoparticles for in vivo tumor targeting and imaging. , 2008, Small.
[73] S. Nie,et al. Molecular imaging of pancreatic cancer in an animal model using targeted multifunctional nanoparticles. , 2009, Gastroenterology.