Appearance of Cxcl10‐expressing cell clusters is common for traumatic brain injury and neurodegenerative disorders
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K. Kullander | H. Bengtsson | L. Lannfelt | H. Wootz | L. Hillered | A. Kylberg | T. Ebendal | L. Nilsson | C. Israelsson | A. Lobell | M. Isaksson
[1] K. Blennow,et al. A highly insoluble state of Aβ similar to that of Alzheimer's disease brain is found in Arctic APP transgenic mice , 2009, Neurobiology of Aging.
[2] N. Marklund,et al. Neutralization of interleukin‐1β modifies the inflammatory response and improves histological and cognitive outcome following traumatic brain injury in mice , 2009, The European journal of neuroscience.
[3] S. Steavenson,et al. An antibody to IP-10 is a potent antagonist of cell migration in vitro and in vivo and does not affect disease in several animal models of inflammation , 2009, Autoimmunity.
[4] I. Chiu,et al. T lymphocytes potentiate endogenous neuroprotective inflammation in a mouse model of ALS , 2008, Proceedings of the National Academy of Sciences.
[5] K. Kullander,et al. Distinct cellular patterns of upregulated chemokine expression supporting a prominent inflammatory role in traumatic brain injury. , 2008, Journal of neurotrauma.
[6] E. Hall,et al. Evolution of post-traumatic neurodegeneration after controlled cortical impact traumatic brain injury in mice and rats as assessed by the de Olmos silver and fluorojade staining methods. , 2008, Journal of neurotrauma.
[7] O. Kämpe,et al. Unexpected regulatory roles of TLR4 and TLR9 in experimental autoimmune encephalomyelitis , 2008, European journal of immunology.
[8] A. Mildner,et al. Microglia in the adult brain arise from Ly-6ChiCCR2+ monocytes only under defined host conditions , 2007, Nature Neuroscience.
[9] I. Campbell,et al. CXCR3 Signaling Reduces the Severity of Experimental Autoimmune Encephalomyelitis by Controlling the Parenchymal Distribution of Effector and Regulatory T Cells in the Central Nervous System1 , 2007, The Journal of Immunology.
[10] L. Hillered,et al. T lymphocyte trafficking: a novel target for neuroprotection in traumatic brain injury. , 2007, Journal of neurotrauma.
[11] P. Libby,et al. Ly-6Chi monocytes dominate hypercholesterolemia-associated monocytosis and give rise to macrophages in atheromata. , 2007, The Journal of clinical investigation.
[12] H. Chu,et al. Dendritic Cells Amplify T Cell-Mediated Immune Responses in the Central Nervous System1 , 2006, The Journal of Immunology.
[13] F. Tacke,et al. A Novel Model of Demyelinating Encephalomyelitis Induced by Monocytes and Dendritic Cells1 , 2006, The Journal of Immunology.
[14] C. Deng,et al. Genetically modified bone morphogenetic protein signalling Alters traumatic brain injury‐induced gene expression responses in the adult mouse , 2006, Journal of neuroscience research.
[15] W. Whetstone,et al. Traumatic injury to the immature brain: Inflammation, oxidative injury, and iron-mediated damage as potential therapeutic targets , 2006, NeuroRX.
[16] R. Ransohoff,et al. The many roles of chemokines and chemokine receptors in inflammation. , 2006, The New England journal of medicine.
[17] L. Lannfelt,et al. The Arctic Alzheimer mutation facilitates early intraneuronal Aβ aggregation and senile plaque formation in transgenic mice , 2006, Neurobiology of Aging.
[18] S. Gordon,et al. Monocyte and macrophage heterogeneity , 2005, Nature Reviews Immunology.
[19] T. Mathiesen,et al. Genomic responses in rat cerebral cortex after traumatic brain injury , 2005, BMC Neuroscience.
[20] A. Stalder,et al. Invasion of Hematopoietic Cells into the Brain of Amyloid Precursor Protein Transgenic Mice , 2005, The Journal of Neuroscience.
[21] P. Sharp,et al. Differentiation to the CCR2+ Inflammatory Phenotype In Vivo Is a Constitutive, Time-Limited Property of Blood Monocytes and Is Independent of Local Inflammatory Mediators1 , 2005, The Journal of Immunology.
[22] L. Beck,et al. Chemokines: key players in innate and adaptive immunity. , 2005, The Journal of investigative dermatology.
[23] B. Becher,et al. Dendritic cells permit immune invasion of the CNS in an animal model of multiple sclerosis , 2005, Nature Medicine.
[24] T. Lane,et al. The CC chemokine ligand 3 regulates CD11c+CD11b+CD8α− dendritic cell maturation and activation following viral infection of the central nervous system: implications for a role in T cell activation , 2004, Virology.
[25] R. Klein. Regulation of neuroinflammation: The role of CXCL10 in lymphocyte infiltration during autoimmune encephalomyelitis , 2004, Journal of cellular biochemistry.
[26] B. Stoica,et al. Gene expression profile changes are commonly modulated across models and species after traumatic brain injury. , 2003, Journal of neurotrauma.
[27] Steffen Jung,et al. Blood monocytes consist of two principal subsets with distinct migratory properties. , 2003, Immunity.
[28] T. Lane,et al. Adenovirus-mediated expression of CXCL10 in the central nervous system results in T-cell recruitment and limited neuropathology , 2003, Journal of NeuroVirology.
[29] G. Clifton,et al. Altered expression of novel genes in the cerebral cortex following experimental brain injury. , 2002, Brain research. Molecular brain research.
[30] S. Jander,et al. Dendritic cells and dendritic-like microglia in focal cortical ischemia of the mouse brain , 2002, Journal of Neuroimmunology.
[31] T. Sugawara,et al. Akt Phosphorylation and Neuronal Survival after Traumatic Brain Injury in Mice , 2002, Neurobiology of Disease.
[32] H. Hartung,et al. Chemokines and chemokine receptors in inflammatory demyelinating neuropathies: a central role for IP-10. , 2002, Brain : a journal of neurology.
[33] S. Kunkel,et al. Selective CC chemokine receptor expression by central nervous system‐infiltrating encephalitogenic T cells during experimental autoimmune encephalomyelitis , 2001, Journal of neuroscience research.
[34] C. Plata-salamán,et al. Inflammation and Alzheimer’s disease , 2000, Neurobiology of Aging.
[35] T. Mcintosh,et al. Experimental models of brain trauma. , 1999, Current opinion in neurology.
[36] Jakob S. Jensen,et al. Expression of specific chemokines and chemokine receptors in the central nervous system of multiple sclerosis patients. , 1999, The Journal of clinical investigation.
[37] J. Trojanowski,et al. gThe Dorothy Russell Memorial Lecture* The molecular and cellular sequelae of experimental traumatic brain injury: pathogenetic mechanisms , 1998, Neuropathology and applied neurobiology.
[38] N. Berman,et al. Selective chemokine mRNA expression following brain injury , 1998, Brain Research.
[39] D F Meaney,et al. A model of parasagittal controlled cortical impact in the mouse: cognitive and histopathologic effects. , 1995, Journal of neurotrauma.
[40] M. Gurney,et al. Motor neuron degeneration in mice that express a human Cu,Zn superoxide dismutase mutation. , 1994, Science.
[41] J. Sutcliffe,et al. Microglia stimulate naive T‐cell differentiation without stimulating T‐cell proliferation , 1999, Journal of neuroscience research.