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Photonique Moléculaire, Chémobiologie et Imageries
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IBIO
Publications
Quantifying gadolinium-based nanoparticle uptake distributions in brain metastases via magnetic resonance imaging. In Scientific Reports (Vol. 14, Issue 1, p. 11959). https://doi.org/10.1038/s41598-024-62389-1
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Implantable theranostic device for in vivo real-time NMR evaluation of drug impact in brain tumors. In Scientific Reports (Vol. 14, Issue 1, p. 4541). https://doi.org/10.1038/s41598-024-55269-1
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Quantitative brain T1 maps derived from T1-weighted MRI acquisitions: a proof-of-concept study. In European Radiology Experimental (Vol. 8, Issue 1, p. 109). https://doi.org/10.1186/s41747-024-00517-2
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NANO-GBM trial of AGuIX nanoparticles with radiotherapy and temozolomide in the treatment of newly diagnosed Glioblastoma: Phase 1b outcomes and MRI-based biodistribution. In Clinical and Translational Radiation Oncology (Vol. 48, p. 100833). https://doi.org/10.1016/j.ctro.2024.100833
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T1 Mapping From MPRAGE Acquisitions: Application to the Measurement of the Concentration of Nanoparticles in Tumors for Theranostic Use. In Journal of Magnetic Resonance Imaging (Vol. 58, Issue 1, p. 313-323). https://doi.org/10.1002/jmri.28509
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Editorial for “Volume-Controlled 19F MR Ventilation Imaging of Fluorinated Gas”. In Journal of Magnetic Resonance Imaging (Vol. 57, Issue 4, p. 1129-1130). https://doi.org/10.1002/jmri.28384
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The metal brain. In Journal of Neuroscience Methods (Vol. 385, p. 109777). https://doi.org/10.1016/j.jneumeth.2022.109777
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Proton MRS on sub-microliter volume in rat brain using implantable NMR microcoils. In NMR in Biomedicine (Vol. 34, Issue 10, p. e4578). https://doi.org/10.1002/nbm.4578
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Theranostic AGuIX nanoparticles as radiosensitizer: A phase I, dose-escalation study in patients with multiple brain metastases (NANO-RAD trial). In Radiotherapy and Oncology (Vol. 160, p. 159-165). https://doi.org/10.1016/j.radonc.2021.04.021
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Implantable NMR microcoils in rats: A new tool for exploring tumor metabolism at sub-microliter scale?. In Metabolites (Vol. 11, Issue 3, p. 176). https://doi.org/10.3390/metabo11030176
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Targeting brain metastases with ultrasmall theranostic nanoparticles, a first-in-human trial from an MRI perspective. In Science Advances (Vol. 6, Issue 29, p. eaay5279). https://doi.org/10.1126/sciadv.aay5279
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Three-dimensional quantitative MRI of aerosolized gadolinium-based nanoparticles and contrast agents in isolated ventilated porcine lungs. In Magnetic Resonance in Medicine (Vol. 83, Issue 5, p. 1774-1782). https://doi.org/10.1002/mrm.28041
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EPR-mediated tumor targeting using ultrasmall-hybrid nanoparticles: From animal to human with theranostic AGuIX nanoparticles. In Theranostics (Vol. 10, Issue 3, p. 1319-1331). https://doi.org/10.7150/thno.37543
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Nebulised gadolinium-based nanoparticles for a multimodal approach: Quantitative and qualitative lung distribution using magnetic resonance and scintigraphy imaging in isolated ventilated porcine lungs. In International Journal of Nanomedicine (Vol. 15, p. 7251-7262). https://doi.org/10.2147/IJN.S260640
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Antibody-targeting of ultra-small nanoparticles enhances imaging sensitivity and enables longitudinal tracking of multiple myeloma. In Nanoscale (Vol. 11, Issue 43, p. 20485-20496). https://doi.org/10.1039/c9nr06512a
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Online quantification of lactate concentration in microdialysate during cerebral activation using 1 H-MRS and sensitive NMR microcoil. In Frontiers in Cellular Neuroscience (Vol. 13, p. 1-8). https://doi.org/10.3389/fncel.2019.00089
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AGuiX ® from bench to bedside-transfer of an ultrasmall theranostic gadolinium-based nanoparticle to clinical medicine. In British Journal of Radiology (Vol. 92, Issue 1093, p. 20180365). https://doi.org/10.1259/bjr.20180365
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Online 1H-MRS measurements of time-varying lactate production in an animal model of glioma during administration of an anti-tumoral drug. In NMR in Biomedicine (Vol. 31, Issue 2, p. e3861). https://doi.org/10.1002/nbm.3861
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Magnetic resonance imaging in animal models of respiratory diseases. In Medical Radiology (Issue 9783319426167, p. 433-452). https://doi.org/10.1007/174_2016_85
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Orotracheal manganese-enhanced MRI (MEMRI): An effective approach for lung tumor detection. In NMR in Biomedicine (Vol. 30, Issue 11, p. e3790). https://doi.org/10.1002/nbm.3790
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Morphological and quantitative evaluation of emphysema in chronic obstructive pulmonary disease patients: A comparative study of MRI with CT. In Journal of Magnetic Resonance Imaging (Vol. 44, Issue 6, p. 1656-1663). https://doi.org/10.1002/jmri.25309
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In vivo online magnetic resonance quantification of absolute metabolite concentrations in microdialysate. In Scientific Reports (Vol. 6, p. 36080). https://doi.org/10.1038/srep36080
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Ultrashort echo-time magnetic resonance imaging is a sensitive method for the evaluation of early cystic fibrosis lung disease. In Annals of the American Thoracic Society (Vol. 13, Issue 11, p. 1923-1931). https://doi.org/10.1513/AnnalsATS.201603-203OC
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MR imaging, targeting and characterization of pulmonary fibrosis using intra-tracheal administration of gadolinium-based nanoparticles. In Contrast Media and Molecular Imaging (Vol. 11, Issue 5, p. 396-404). https://doi.org/10.1002/cmmi.1703
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Ultrasmall Nanoplatforms as Calcium-Responsive Contrast Agents for Magnetic Resonance Imaging. In Small (Vol. 11, Issue 37, p. 4900-4909). https://doi.org/10.1002/smll.201500312
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Gadolinium-based nanoparticles for theranostic MRI-radiosensitization. In Nanomedicine (Vol. 10, Issue 11, p. 1801-1815). https://doi.org/10.2217/nnm.15.30
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Orotracheal administration of contrast agents: A new protocol for brain tumor targeting. In NMR in Biomedicine (Vol. 28, Issue 6, p. 738-746). https://doi.org/10.1002/nbm.3295
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Nebulized gadolinium-based nanoparticles: A theranostic approach for lung tumor imaging and radiosensitization. In Small (Vol. 11, Issue 2, p. 215-221). https://doi.org/10.1002/smll.201401284
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Lung Cancer: Nebulized Gadolinium-Based Nanoparticles: A Theranostic Approach for Lung Tumor Imaging and Radiosensitization (Small 2/2015). In Small (Vol. 11, Issue 2, p. 214). https://doi.org/10.1002/smll.201570011
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Three-dimensional assessment of lung tissue density using a clinical ultrashort echo time at 3 tesla: A feasibility study in healthy subjects. In Journal of Magnetic Resonance Imaging (Vol. 40, Issue 4, p. 839-847). https://doi.org/10.1002/jmri.24429
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The use of theranostic gadolinium-based nanoprobes to improve radiotherapy efficacy. In British Journal of Radiology (Vol. 87, Issue 1041, p. 20140134). https://doi.org/10.1259/bjr.20140134
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Targeting and in vivo imaging of non-small-cell lung cancer using nebulized multimodal contrast agents. In Proceedings of the National Academy of Sciences of the United States of America (Vol. 111, Issue 25, p. 9247-9252). https://doi.org/10.1073/pnas.1402196111
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In vivo MRI for effective non-invasive detection and follow-up of an orthotopic mouse model of lung cancer. In NMR in Biomedicine (Vol. 27, Issue 8, p. 971-979). https://doi.org/10.1002/nbm.3142
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Quantitative biodistribution and pharmacokinetics of multimodal gadolinium-based nanoparticles for lungs using ultrashort TE MRI. In Magnetic Resonance Materials in Physics, Biology and Medicine (Vol. 27, Issue 4, p. 303-316). https://doi.org/10.1007/s10334-013-0412-5
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Ultrashort-TE MRI longitudinal study and characterization of a chronic model of asthma in mice: Inflammation and bronchial remodeling assessment. In NMR in Biomedicine (Vol. 26, Issue 11, p. 1451-1459). https://doi.org/10.1002/nbm.2975
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Contrast enhanced lung MRI in mice using ultra-short echo time radial imaging and intratracheally administrated Gd-DOTA-based nanoparticles. In Magnetic Resonance in Medicine (Vol. 70, Issue 5, p. 1419-1426). https://doi.org/10.1002/mrm.24580
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Manganese: A new contrast agent for lung imaging?. In Contrast Media and Molecular Imaging (Vol. 7, Issue 6, p. 542-546). https://doi.org/10.1002/cmmi.1483
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A Super-Wide Bore DNP System for Multiple Sample Polarization: Cryogenic Performance and Polarization at Low Temperature. In Applied Magnetic Resonance (Vol. 43, Issue 1-2, p. 167-180). https://doi.org/10.1007/s00723-012-0354-5
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Longitudinal and noninvasive assessment of emphysema evolution in a murine model using proton MRI. In Magnetic Resonance in Medicine (Vol. 68, Issue 3, p. 898-904). https://doi.org/10.1002/mrm.23281
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In vivo biodistribution and biological impact of injected carbon nanotubes using magnetic resonance techniques.. In International journal of nanomedicine (Vol. 6, p. 351-361). https://doi.org/10.2147/ijn.s16653
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MRI of the Lung: Non-invasive Protocols and Applications to Small Animal Models of Lung Disease. In Methods in Molecular Biology (Vol. 771, p. 459-474). https://doi.org/10.1007/978-1-61779-219-9_24
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Long-term follow-up of lung biodistribution and effect of instilled SWCNTs using multiscale imaging techniques. In Nanotechnology (Vol. 21, Issue 17, p. 175103). https://doi.org/10.1088/0957-4484/21/17/175103
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Hyperpolarized 3he MR for sensitive imaging of ventilation function and treatment efficiency in young cystic fibrosis patients with normal lung function. In Radiology (Vol. 255, Issue 1, p. 225-232). https://doi.org/10.1148/radiol.09090039
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Spatially resolved assessment of serotonin-induced bronchoconstrictive responses in the rat lung using 3He ventilation MRI under spontaneous breathing conditions. In Magnetic Resonance in Medicine (Vol. 63, Issue 6, p. 1669-1674). https://doi.org/10.1002/mrm.22391
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Highly constrained backprojection for improving dynamic 3He MR ventilation imaging in rats. In Contrast Media and Molecular Imaging (Vol. 5, Issue 5, p. 276-285). https://doi.org/10.1002/cmmi.385
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Validation of simple and robust protocols for high-resolution lung proton MRI in mice. In Magnetic Resonance in Medicine (Vol. 64, Issue 2, p. 401-407). https://doi.org/10.1002/mrm.22360
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In vivo imaging of carbon nanotube biodistribution using magnetic resonance imaging. In Nano Letters (Vol. 9, Issue 3, p. 1023-1027). https://doi.org/10.1021/nl8032608
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Free breathing hyperpolarized 3he lung ventilation spiral MR Imaging. In Investigative Radiology (Vol. 44, Issue 4, p. 185-191). https://doi.org/10.1097/RLI.0b013e3181965d52
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Effects of ozone exposure in rat lungs investigated with hyperpolarized 3He MRI. In Journal of Magnetic Resonance Imaging (Vol. 27, Issue 4, p. 771-776). https://doi.org/10.1002/jmri.21216
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Aerosols and gaseous contrast agents for magnetic resonance imaging of the lung. In Contrast Media and Molecular Imaging (Vol. 3, Issue 5, p. 173-190). https://doi.org/10.1002/cmmi.252
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Longitudinal 3He and proton imaging of magnetite biodistribution in a rat model of instilled nanoparticles. In Magnetic Resonance in Medicine (Vol. 59, Issue 6, p. 1298-1303). https://doi.org/10.1002/mrm.21571
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Lung MRI for experimental drug research. In European Journal of Radiology (Vol. 64, Issue 3, p. 381-396). https://doi.org/10.1016/j.ejrad.2007.08.012
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Measurement of nonlinear pO2 decay in mouse lungs using 3He-MRI. In NMR in Biomedicine (Vol. 20, Issue 3, p. 383-391). https://doi.org/10.1002/nbm.1124
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Restrospective cine 3He ventilation imaging under spontaneous breathing conditions: A non-invasive protocol for small-animal lung function imaging. In NMR in Biomedicine (Vol. 20, Issue 2, p. 104-112). https://doi.org/10.1002/nbm.1086
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Alveolar oxygen partial pressure and oxygen depletion rate mapping in rats using 3He ventilation imaging. In Magnetic Resonance in Medicine (Vol. 57, Issue 2, p. 423-430). https://doi.org/10.1002/mrm.21110
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High-resolution contrast-enhanced MRI of atherosclerosis with digital cardiac and respiratory gating in mice. In Magnetic Resonance in Medicine (Vol. 58, Issue 6, p. 1157-1163). https://doi.org/10.1002/mrm.21308
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Quantitative measurements of regional lung ventilation using helium-3 MRI in a methacholine-induced bronchoconstriction model. In Journal of Magnetic Resonance Imaging (Vol. 24, Issue 3, p. 611-616). https://doi.org/10.1002/jmri.20671
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Dynamic 3He imaging for quantification of regional lung ventilation parameters. In Magnetic Resonance in Medicine (Vol. 50, Issue 4, p. 777-783). https://doi.org/10.1002/mrm.10590
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Helium-3 MRI diffusion coefficient: Correlation to morphometry in a model of mild emphysema. In European Respiratory Journal (Vol. 22, Issue 1, p. 14-19). https://doi.org/10.1183/09031936.03.00084402
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Helium3 polarization using spin exchange technique: Application to simultaneous pulmonary ventilation/perfusion imaging in small animals. In Investigative Radiology (Vol. 38, Issue 6, p. 334-340). https://doi.org/10.1097/01.RLI.0000066250.86614.32
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Dynamic MR-imaging with radial scanning, a post-acquisition keyhole approach. In Eurasip Journal on Applied Signal Processing (Vol. 2003, Issue 5, p. 405-412). https://doi.org/10.1155/S1110865703211197
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Dynamic magnetic resonance imaging with radial scanning: A post-acquisition keyhole approach. In Magnetic Resonance Materials in Physics, Biology and Medicine (Vol. 16, Issue 1, p. 21-28). https://doi.org/10.1007/s10334-003-0003-y
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Standardized MR protocol for the evaluation of MRA sequences and/or contrast agents effects in high-degree arterial stenosis analysis. In Magnetic Resonance Materials in Physics, Biology and Medicine (Vol. 14, Issue 3, p. 259-267). https://doi.org/10.1016/S1352-8661(02)00071-6
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Hyperpolarized helium3 encapsulated in microbubbles: A new class of blood pool MRI contrast agent. In Academic Radiology (Vol. 9, Issue SUPPL. 2). https://doi.org/10.1016/S1076-6332(03)80276-3
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Vascular and perfusion imaging using encapsulated laser-polarized helium. In Magnetic Resonance Materials in Physics, Biology and Medicine (Vol. 12, Issue 1, p. 16-22). https://doi.org/10.1016/S1352-8661(00)00133-2
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MR perfusion imaging using encapsulated laser-polarized 3He. In Magnetic Resonance in Medicine (Vol. 46, Issue 3, p. 535-540). https://doi.org/10.1002/mrm.1224
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Dynamic imaging of hyperpolarized 3He distribution in rat lungs, using interleaved-spiral scans. In NMR in Biomedicine (Vol. 13, Issue 4, p. 207-213). https://doi.org/10.1002/1099-1492(200006)13:4<207::AID-NBM641>3.0.CO;2-G
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Burst Imaging: Rotation Artifacts and How to Correct Them. In Journal of Magnetic Resonance (Vol. 143, Issue 1, p. 161-171). https://doi.org/10.1006/jmre.1999.1978
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Laser-polarized 3He as a probe for dynamic regional measurements of lung perfusion and ventilation using magnetic resonance imaging. In Magnetic Resonance in Medicine (Vol. 44, Issue 1, p. 1-4). https://doi.org/10.1002/1522-2594(200007)44:1<1::AID-MRM1>3.0.CO;2-U
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A combined 1H perfusion/3He ventilation NMR study in rat lungs. In Magnetic Resonance in Medicine (Vol. 41, Issue 4, p. 645-648). https://doi.org/10.1002/(SICI)1522-2594(199904)41:4<645::AID-MRM1>3.0.CO;2-V
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Functional MR microscopy of the lung using hyperpolarized 3He. In Magnetic Resonance in Medicine (Vol. 41, Issue 4, p. 787-792). https://doi.org/10.1002/(SICI)1522-2594(199904)41:4<787::AID-MRM18>3.0.CO;2-4
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In vivo gradient echo microimaging of rodent spinal cord at 7 T. In Magnetic Resonance in Medicine (Vol. 40, Issue 5, p. 789-791). https://doi.org/10.1002/mrm.1910400521
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High-resolution in vivo measurements of transverse relaxation times in rats at 7 tesla. In Magnetic Resonance in Medicine (Vol. 39, Issue 2, p. 285-290). https://doi.org/10.1002/mrm.1910390216
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STEAM-Burst: A single-shot, multi-slice imaging sequence without rapid gradient switching. In Magnetic Resonance in Medicine (Vol. 38, Issue 4, p. 645-652). https://doi.org/10.1002/mrm.1910380419
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SRS-FT, a Fourier imaging method based on sparse radial scanning and B ayesian estimation. In Journal of Magnetic Resonance - Series B (Vol. 112, Issue 2, p. 119-123). https://doi.org/10.1006/jmrb.1996.0121
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A simple switching unit for gradient reorientation in fast projection-reconstruction NMR imaging. In MAGMA Magnetic Resonance Materials in Physics, Biology, and Medicine (Vol. 2, Issue 4, p. 559-561). https://doi.org/10.1007/BF01766092
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Projection‐reconstruction methods: Fast imaging sequences and data processing. In Magnetic Resonance in Medicine (Vol. 32, Issue 1, p. 23-32). https://doi.org/10.1002/mrm.1910320105
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Correlation between magnetic resonance imaging disturbances and the magnetic susceptibility of dental materials. In Dental Materials (Vol. 10, Issue 4, p. 265-268). https://doi.org/10.1016/0109-5641(94)90072-8
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