Tracking of systemically administered mononuclear cells in the ischemic brain by high-field magnetic resonance imaging
暂无分享,去创建一个
Ulrich Dirnagl | Jens Steinbrink | Claus Zimmer | Albrecht Stroh | Nikos Werner | Karen Gertz | Kathrine Weir | Golo Kronenberg | Susanne Mueller | Katharina Sieland | Georg Nickenig | Matthias Endres | A. Stroh | M. Endres | U. Dirnagl | J. Steinbrink | G. Nickenig | K. Gertz | G. Kronenberg | C. Zimmer | N. Werner | S. Mueller | K. Sieland | K. Weir
[1] M. Chopp,et al. Adult bone marrow stromal cells administered intravenously to rats after traumatic brain injury migrate into brain and improve neurological outcome , 2001, Neuroreport.
[2] U. Laufs,et al. Intravenous Transfusion of Endothelial Progenitor Cells Reduces Neointima Formation After Vascular Injury , 2003, Circulation research.
[3] M. Frotscher,et al. Targeting gene-modified hematopoietic cells to the central nervous system: Use of green fluorescent protein uncovers microglial engraftment , 2001, Nature Medicine.
[4] Mathias Hoehn,et al. Improved Stem Cell MR Detectability in Animal Models by Modification of the Inhalation Gas , 2005, Molecular imaging.
[5] L. Pitts,et al. Rat middle cerebral artery occlusion: evaluation of the model and development of a neurologic examination. , 1986, Stroke.
[6] M. Taupitz,et al. In Vitro Characterization of Two Different Ultrasmall Iron Oxide Particles for Magnetic Resonance Cell Tracking , 2002, Investigative radiology.
[7] Vítězslav Bryja,et al. Magnetic resonance tracking of transplanted bone marrow and embryonic stem cells labeled by iron oxide nanoparticles in rat brain and spinal cord , 2004, Journal of neuroscience research.
[8] P. Sanberg,et al. Cytokines produced by cultured human umbilical cord blood (HUCB) cells: Implications for brain repair , 2006, Experimental Neurology.
[9] Jeff W M Bulte,et al. In Vivo Magnetic Resonance Tracking of Magnetically Labeled Cells after Transplantation , 2002, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[10] Peter M. Jakob,et al. In vivo detection limits of magnetically labeled embryonic stem cells in the rat brain using high-field (17.6 T) magnetic resonance imaging , 2005, NeuroImage.
[11] U Dirnagl,et al. Mild Cerebral Ischemia Induces Loss of Cyclin-Dependent Kinase Inhibitors and Activation of Cell Cycle Machinery before Delayed Neuronal Cell Death , 2001, The Journal of Neuroscience.
[12] M. Moskowitz,et al. Attenuation of Delayed Neuronal Death after Mild Focal Ischemia in Mice by Inhibition of the Caspase Family , 1998, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[13] Tomoko Nakanishi,et al. ‘Green mice’ as a source of ubiquitous green cells , 1997, FEBS letters.
[14] M. Endres,et al. Ischemia and stroke. , 2002, Advances in experimental medicine and biology.
[15] Michael Chopp,et al. Magnetic resonance imaging and neurosphere therapy of stroke in rat , 2003, Annals of neurology.
[16] H. Naritomi,et al. Administration of CD34+ cells after stroke enhances neurogenesis via angiogenesis in a mouse model. , 2004, The Journal of clinical investigation.
[17] O. Lindvall,et al. Inflammation is detrimental for neurogenesis in adult brain , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[18] Mathias Hoehn,et al. Monitoring of implanted stem cell migration in vivo: A highly resolved in vivo magnetic resonance imaging investigation of experimental stroke in rat , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[19] Andreas Saleh,et al. In vivo MRI of brain in ̄ ammation in human ischaemic stroke , 2004 .
[20] P. Sanberg,et al. Timing of Cord Blood Treatment after Experimental Stroke Determines Therapeutic Efficacy , 2006, Cell transplantation.
[21] P. Bickford,et al. Anti-inflammatory effects of human cord blood cells in a rat model of stroke. , 2005, Stem cells and development.
[22] Alan P Koretsky,et al. Sizing it up: Cellular MRI using micron‐sized iron oxide particles , 2005, Magnetic resonance in medicine.
[23] T. Skotland,et al. In vitro stability analyses as a model for metabolism of ferromagnetic particles (Clariscan), a contrast agent for magnetic resonance imaging. , 2002, Journal of pharmaceutical and biomedical analysis.
[24] Eva Syková,et al. Imaging the fate of implanted bone marrow stromal cells labeled with superparamagnetic nanoparticles , 2003, Magnetic resonance in medicine.
[25] Tilman Grune,et al. Iron oxide particles for molecular magnetic resonance imaging cause transient oxidative stress in rat macrophages. , 2004, Free radical biology & medicine.
[26] M. Chopp,et al. Intraarterial administration of marrow stromal cells in a rat model of traumatic brain injury. , 2001, Journal of neurotrauma.
[27] Mathias Hoehn,et al. MRI detection of macrophage activity after experimental stroke in rats: New indicators for late appearance of vascular degradation? , 2005, Magnetic resonance in medicine.
[28] Mathias Hoehn,et al. Histochemical detection of ultrasmall superparamagnetic iron oxide (USPIO) contrast medium uptake in experimental brain ischemia , 2004, Magnetic resonance in medicine.
[29] Ulrich Dirnagl,et al. Selective Neuronal Vulnerability Following Mild Focal Brain Ischemia in the Mouse , 2003, Brain pathology.
[30] Alan P Koretsky,et al. Highly efficient endosomal labeling of progenitor and stem cells with large magnetic particles allows magnetic resonance imaging of single cells. , 2003, Blood.