A Radioluminescent Metal-Organic Framework for Monitoring 225Ac in Vivo.
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Longlong Tian | Wang-suo Wu | Ning Liu | Yaxing Wang | Shuao Wang | Feize Li | Yugang Zhang | Zhencun Cui | Jingwen Guan | Kaizhong Li | Zhifang Chai
[1] P. Khong,et al. Alpha-peptide receptor radionuclide therapy using actinium-225 labeled somatostatin receptor agonists and antagonists , 2022, Frontiers in Medicine.
[2] F. Bénard,et al. H4picoopa─Robust Chelate for 225Ac/111In Theranostics. , 2022, Bioconjugate chemistry.
[3] Xuan Yi,et al. Pleiotropic Immunomodulatory Functions of Radioactive Inactivated Bacterial Vectors for Enhanced Cancer Radio-immunotherapy. , 2022, ACS nano.
[4] Tong Liu,et al. Boron encapsulated in a liposome can be used for combinational neutron capture therapy , 2022, Nature communications.
[5] Korey P. Carter,et al. Evaluation of 134Ce as a PET imaging surrogate for antibody drug conjugates incorporating 225Ac. , 2022, Nuclear medicine and biology.
[6] Kanyi Pu,et al. Molecular Probes for Autofluorescence-Free Optical Imaging. , 2021, Chemical reviews.
[7] M. Wuest,et al. First In Vivo and Phantom Imaging of Cyclotron-Produced 133La as a Theranostic Radionuclide for 225Ac and 135La , 2021, The Journal of Nuclear Medicine.
[8] Xiaolian Sun,et al. Smart 131I labeled self-illuminating photosensitizers for deep tumor imaging guided therapy. , 2021, Angewandte Chemie.
[9] Kanyi Pu,et al. Molecular imaging and disease theranostics with renal-clearable optical agents , 2021, Nature Reviews Materials.
[10] E. Boros,et al. Multiplex and In Vivo Optical Imaging of Discrete Luminescent Lanthanide Complexes Enabled by In Situ Cherenkov Radiation Mediated Energy Transfer. , 2021, Journal of the American Chemical Society.
[11] J. Grimm,et al. Ultrasmall Downconverting Nanoparticle for Enhanced Cerenkov Imaging. , 2021, Nano letters.
[12] F. Wuest,et al. Targeted Alpha Therapy: Progress in Radionuclide Production, Radiochemistry, and Applications , 2020, Pharmaceutics.
[13] F. M. Nortier,et al. Developing the 134Ce and 134La pair as companion positron emission tomography diagnostic isotopes for 225Ac and 227Th radiotherapeutics , 2020, Nature Chemistry.
[14] J. Engle,et al. Cyclotron-Produced 132La as a PET Imaging Surrogate for Therapeutic 225Ac , 2020, The Journal of Nuclear Medicine.
[15] Mohammed Z. Rahman,et al. Alpha emitting nuclides for targeted therapy. , 2020, Nuclear medicine and biology.
[16] Gaeun Kim,et al. Europium-Diethylenetriaminepentaacetic Acid (Eu-DTPA) Loaded Radioluminescence Liposome Nano-Platform for Effective Radioisotope-Mediated Photodynamic Therapy. , 2020, ACS nano.
[17] R. Decréau,et al. Dual Cherenkov Radiation-induced Near-Infrared Luminescence Imaging and Photodynamic Therapy towards Tumor Resection. , 2020, Journal of medicinal chemistry.
[18] Zachary T. Rosenkrans,et al. ImmunoPET: Concept, Design, and Applications. , 2020, Chemical reviews.
[19] Huanwei Huang,et al. A bioorthogonal system reveals antitumour immune function of pyroptosis , 2020, Nature.
[20] G. Gasser,et al. Classification of Metal-based Drugs According to Their Mechanisms of Action. , 2020, Chem.
[21] Zachary T. Rosenkrans,et al. A “Missile‐Detonation” Strategy to Precisely Supply and Efficiently Amplify Cerenkov Radiation Energy for Cancer Theranostics , 2019, Advanced materials.
[22] W. Cai,et al. Radionuclide-Activated Nanomaterials and Their Biomedical Applications. , 2019, Angewandte Chemie.
[23] R. Mikołajczak,et al. Radiometals for imaging and theranostics, current production and future perspectives. , 2019, Journal of labelled compounds & radiopharmaceuticals.
[24] E. Boros,et al. Cherenkov Radiation-Mediated In Situ Excitation of Discrete Luminescent Lanthanide Complexes. , 2018, Angewandte Chemie.
[25] C. Orvig,et al. Radioactive Main Group and Rare Earth Metals for Imaging and Therapy. , 2018, Chemical reviews.
[26] E. Boros,et al. Radioactive Transition Metals for Imaging and Therapy. , 2018, Chemical reviews.
[27] Kai Yang,et al. Combined local immunostimulatory radioisotope therapy and systemic immune checkpoint blockade imparts potent antitumour responses , 2018, Nature Biomedical Engineering.
[28] Travis M. Shaffer,et al. Nanoparticles as multimodal photon transducers of ionizing radiation , 2018, Nature Nanotechnology.
[29] A. Mintz,et al. IL13RA2 targeted alpha particle therapy against glioblastomas , 2017, Oncotarget.
[30] F. Mottaghy,et al. 225Ac-PSMA-617 for PSMA-Targeted α-Radiation Therapy of Metastatic Castration-Resistant Prostate Cancer , 2016, The Journal of Nuclear Medicine.
[31] Jie Tian,et al. In vivo nanoparticle-mediated radiopharmaceutical-excited fluorescence molecular imaging , 2015, Nature Communications.
[32] C. Cutler,et al. Development of a prelabeling approach for a targeted nanochelator , 2015, Journal of Radioanalytical and Nuclear Chemistry.
[33] Samuel Achilefu,et al. Breaking the Depth Dependency of Phototherapy with Cerenkov Radiation and Low Radiance Responsive Nanophotosensitizers , 2015, Nature nanotechnology.
[34] Yong Ding,et al. Self-Illuminating 64Cu-Doped CdSe/ZnS Nanocrystals for in Vivo Tumor Imaging , 2014, Journal of the American Chemical Society.
[35] Young-Seung Kim,et al. An overview of targeted alpha therapy , 2012, Tumor Biology.
[36] Ralph Weissleder,et al. Dextran-coated iron oxide nanoparticles: a versatile platform for targeted molecular imaging, molecular diagnostics, and therapy. , 2011, Accounts of chemical research.
[37] Wenbin Lin,et al. Nanoscale metal-organic frameworks for biomedical imaging and drug delivery. , 2011, Accounts of chemical research.
[38] C. Anderson,et al. Coordinating radiometals of copper, gallium, indium, yttrium, and zirconium for PET and SPECT imaging of disease. , 2010, Chemical reviews.
[39] D. Scheinberg,et al. Realizing the potential of the Actinium-225 radionuclide generator in targeted alpha particle therapy applications. , 2008, Advanced drug delivery reviews.
[40] J. Willmann,et al. Molecular imaging in drug development , 2008, Nature Reviews Drug Discovery.
[41] M. Brechbiel. Targeted α-therapy: past, present, future? , 2007 .
[42] Vasilis Ntziachristos,et al. Looking and listening to light: the evolution of whole-body photonic imaging , 2005, Nature Biotechnology.
[43] S. Gambhir,et al. Molecular imaging in living subjects: seeing fundamental biological processes in a new light. , 2003, Genes & development.
[44] M. Brechbiel,et al. The development of the alpha-particle emitting radionuclides 212Bi and 213Bi, and their decay chain related radionuclides, for therapeutic applications. , 2001, Chemical reviews.
[45] Matthew R. Palmer,et al. Annihilation density distribution calculations for medically important positron emitters , 1992, IEEE Trans. Medical Imaging.