18 kDa translocator protein positron emission tomography facilitates early and robust tumor detection in the immunocompetent SB28 glioblastoma mouse model
暂无分享,去创建一个
N. Albert | K. Wind | M. Riemenschneider | M. Brendel | J. Tonn | L. von Baumgarten | A. Zatcepin | A. Holzgreve | S. Kirchleitner | S. Quach | L. Weidner | D. Messerer | J. Blobner | Lukas Gold | Z. I. Kolabas | L. Bartos | P. Bartenstein | Sibylle I. Ziegler | Selin Ulukaya | L. Kunze | L. Gold | S. Ziegler | Sabrina V. Kirchleitner
[1] N. Albert,et al. Single-Cell Radiotracer Allocation via Immunomagnetic Sorting to Disentangle PET Signals at Cellular Resolution , 2022, The Journal of Nuclear Medicine.
[2] F. Barkhof,et al. Impact of cerebral blood flow and amyloid load on SUVR bias , 2022, EJNMMI Research.
[3] N. Albert,et al. Translocator protein (18kDa) TSPO: a new diagnostic or therapeutic target for stress-related disorders? , 2022, Molecular Psychiatry.
[4] N. Albert,et al. Longitudinal [18F]GE-180 PET Imaging Facilitates In Vivo Monitoring of TSPO Expression in the GL261 Glioblastoma Mouse Model , 2022, Biomedicines.
[5] M. Barberi-Heyob,et al. Multi-tracer and multiparametric PET imaging to detect the IDH mutation in glioma: a preclinical translational in vitro, in vivo, and ex vivo study , 2022, Cancer Imaging.
[6] S. Ziegler,et al. Reduced Acquisition Time [18F]GE-180 PET Scanning Protocol Replaces Gold-Standard Dynamic Acquisition in a Mouse Ischemic Stroke Model , 2022, Frontiers in Medicine.
[7] A. Jacobs,et al. Interrogating Glioma-Associated Microglia and Macrophage Dynamics Under CSF-1R Therapy with Multitracer In Vivo PET/MRI , 2022, The Journal of Nuclear Medicine.
[8] S. Ziegler,et al. Differential Spatial Distribution of TSPO or Amino Acid PET Signal and MRI Contrast Enhancement in Gliomas , 2021, Cancers.
[9] A. Drzezga,et al. Microglial activation states drive glucose uptake and FDG-PET alterations in neurodegenerative diseases , 2021, Science Translational Medicine.
[10] H. Adelsberger,et al. Pre-therapeutic microglia activation and sex determine therapy effects of chronic immunomodulation , 2021, bioRxiv.
[11] A. Jacobs,et al. Imaging of the glioma microenvironment by TSPO PET , 2021, European Journal of Nuclear Medicine and Molecular Imaging.
[12] Jacob S. Young,et al. Mouse models of glioblastoma for the evaluation of novel therapeutic strategies , 2021, Neuro-oncology advances.
[13] N. Albert,et al. The Role of Translocator Protein TSPO in Hallmarks of Glioblastoma , 2020, Cancers.
[14] A. Charil,et al. Selective, high-contrast detection of syngeneic glioblastoma in vivo , 2020, Scientific Reports.
[15] M. Preul,et al. Blood-Brain Barrier, Blood-Brain Tumor Barrier, and Fluorescence-Guided Neurosurgical Oncology: Delivering Optical Labels to Brain Tumors , 2020, Frontiers in Oncology.
[16] I. Buvat,et al. Longitudinal mouse-PET imaging: a reliable method for estimating binding parameters without a reference region or blood sampling , 2020, European Journal of Nuclear Medicine and Molecular Imaging.
[17] F. Turkheimer,et al. Anatomy of 18F-GE180, a failed radioligand for the TSPO protein , 2020, European Journal of Nuclear Medicine and Molecular Imaging.
[18] W. Stummer,et al. TSPO imaging-guided characterization of the immunosuppressive myeloid tumor microenvironment in patients with malignant glioma. , 2020, Neuro-oncology.
[19] F. Turkheimer,et al. The validity of 18F-GE180 as a TSPO imaging agent , 2019, European Journal of Nuclear Medicine and Molecular Imaging.
[20] C. Belka,et al. TSPO PET, tumour grading and molecular genetics in histologically verified glioma: a correlative 18F-GE-180 PET study , 2019, Nuklearmedizin.
[21] D. Le Bihan,et al. TSPO-PET and diffusion-weighted MRI for imaging a mouse model of infiltrative human glioma. , 2019, Neuro-oncology.
[22] D. Holtzman,et al. Loss of TREM2 function increases amyloid seeding but reduces plaque associated ApoE , 2018, Nature Neuroscience.
[23] B. Ertl-Wagner,et al. Comparison of 18F-GE-180 and dynamic 18F-FET PET in high grade glioma: a double-tracer pilot study , 2018, European Journal of Nuclear Medicine and Molecular Imaging.
[24] J. Castle,et al. Responsiveness to anti-PD-1 and anti-CTLA-4 immune checkpoint blockade in SB28 and GL261 mouse glioma models , 2018, Oncoimmunology.
[25] Matthias Brendel,et al. Coupling between physiological TSPO expression in brain and myocardium allows stabilization of late-phase cerebral [18F]GE180 PET quantification , 2018, NeuroImage.
[26] N. Albert,et al. TSPO PET for glioma imaging using the novel ligand 18F-GE-180: first results in patients with glioblastoma , 2017, European Journal of Nuclear Medicine and Molecular Imaging.
[27] Raymond Scott Turner,et al. 11C-PBR28 PET detects translocator protein in a patient with astrocytoma and Alzheimer disease , 2017, Neurology.
[28] P. Bartenstein,et al. Automated Spatial Brain Normalization and Hindbrain White Matter Reference Tissue Give Improved [18F]-Florbetaben PET Quantitation in Alzheimer's Model Mice , 2016, Front. Neurosci..
[29] N. Albert,et al. Glial Activation and Glucose Metabolism in a Transgenic Amyloid Mouse Model: A Triple-Tracer PET Study , 2016, The Journal of Nuclear Medicine.
[30] C. Svarer,et al. TSPO Imaging in Glioblastoma Multiforme: A Direct Comparison Between 123I-CLINDE SPECT, 18F-FET PET, and Gadolinium-Enhanced MR Imaging , 2015, The Journal of Nuclear Medicine.
[31] Ernst H K Stelzer,et al. Light-sheet fluorescence microscopy for quantitative biology , 2014, Nature Methods.
[32] Jochen Herms,et al. Impact of partial volume effect correction on cerebral β-amyloid imaging in APP-Swe mice using [18F]-florbetaben PET , 2014, NeuroImage.
[33] F. Turkheimer,et al. [11C]-(R)PK11195 tracer kinetics in the brain of glioma patients and a comparison of two referencing approaches , 2013, European Journal of Nuclear Medicine and Molecular Imaging.
[34] Yongzhuo Huang,et al. Glioma selectivity of magnetically targeted nanoparticles: a role of abnormal tumor hydrodynamics. , 2007, Journal of controlled release : official journal of the Controlled Release Society.
[35] Martine M. Mirrione,et al. Optimizing experimental protocols for quantitative behavioral imaging with 18F-FDG in rodents. , 2007, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[36] R. Clatterbuck,et al. The efficient calculation of neurosurgically relevant volumes from computed tomographic scans using Cavalieri's Direct Estimator. , 1997, Neurosurgery.
[37] David J. Schlyer,et al. Graphical Analysis of Reversible Radioligand Binding from Time—Activity Measurements Applied to [N-11C-Methyl]-(−)-Cocaine PET Studies in Human Subjects , 1990, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.