Population control of resident and immigrant microglia by mitosis and apoptosis.
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J. Zimmer | Í. Azcoitia | M. Wirenfeldt | F. Dagnaes-hansen | B. Finsen | L. Dissing-Olesen | M. Meldgaard | R. Leslie | Alicia Anne Babcock | Marianne Nielsen | Lasse Dissing‐Olesen
[1] R. Landmann,et al. Toll-Like Receptor 2 Signaling in Response to Brain Injury: An Innate Bridge to Neuroinflammation , 2006, The Journal of Neuroscience.
[2] K. Lambertsen,et al. Validation of two reference genes for mRNA level studies of murine disease models in neurobiology , 2006, Journal of Neuroscience Methods.
[3] K. Lambertsen,et al. Reactive microgliosis engages distinct responses by microglial subpopulations after minor central nervous system injury , 2005, Journal of neuroscience research.
[4] W. Gan,et al. ATP mediates rapid microglial response to local brain injury in vivo , 2005, Nature Neuroscience.
[5] F. Helmchen,et al. Resting Microglial Cells Are Highly Dynamic Surveillants of Brain Parenchyma in Vivo , 2005, Science.
[6] R. Gregersen,et al. Proliferating resident microglia express the stem cell antigen CD34 in response to acute neural injury , 2005, Glia.
[7] U. Dirnagl,et al. Circulating monocytic cells infiltrate layers of anterograde axonal degeneration where they transform into microglia , 2005, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[8] Sunhee C. Lee,et al. Inhibition of Granulocyte-Macrophage Colony-Stimulating Factor Signaling and Microglial Proliferation by Anti-CD45RO: Role of Hck Tyrosine Kinase and Phosphatidylinositol 3-Kinase/Akt1 , 2005, The Journal of Immunology.
[9] H. Neumann,et al. Clearance of apoptotic neurons without inflammation by microglial triggering receptor expressed on myeloid cells-2 , 2005, The Journal of experimental medicine.
[10] I. Bechmann,et al. CXCR3-Dependent Microglial Recruitment Is Essential for Dendrite Loss after Brain Lesion , 2004, The Journal of Neuroscience.
[11] L. Naldini,et al. Correction of metachromatic leukodystrophy in the mouse model by transplantation of genetically modified hematopoietic stem cells. , 2004, The Journal of clinical investigation.
[12] Y. Imai,et al. Human CD34+ cells differentiate into microglia and express recombinant therapeutic protein. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[13] M. Wirenfeldt,et al. Estimation of absolute microglial cell numbers in mouse fascia dentata using unbiased and efficient stereological cell counting principles , 2003, Glia.
[14] E. Ringelstein,et al. Microglial activation precedes and predominates over macrophage infiltration in transient focal cerebral ischemia: a study in green fluorescent protein transgenic bone marrow chimeric mice , 2003, Experimental Neurology.
[15] W. Kuziel,et al. Chemokine Expression by Glial Cells Directs Leukocytes to Sites of Axonal Injury in the CNS , 2003, The Journal of Neuroscience.
[16] P. Sawchenko,et al. Bone Marrow-Derived Cells that Populate the Adult Mouse Brain Preserve Their Hematopoietic Identity , 2003, The Journal of Neuroscience.
[17] S. Tsirka,et al. Microglial activation and recruitment, but not proliferation, suffice to mediate neurodegeneration , 2002, Cell Death and Differentiation.
[18] P. Marrack,et al. Observation of antigen-dependent CD8+ T-cell/ dendritic cell interactions in vivo. , 2001, Cellular immunology.
[19] 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.
[20] F. Aloisi. Immune function of microglia , 2001, Glia.
[21] Leena Peltonen,et al. Loss-of-function mutations in TYROBP (DAP12) result in a presenile dementia with bone cysts , 2000, Nature Genetics.
[22] M. Schlissel,et al. Annexin V Binds to Viable B Cells and Colocalizes with a Marker of Lipid Rafts upon B Cell Receptor Activation1 , 2000, The Journal of Immunology.
[23] R. Nitsch,et al. Proliferation of microglia and astrocytes in the dentate gyrus following entorhinal cortex lesion: a quantitative bromodeoxyuridine‐labelling study , 1999, The European journal of neuroscience.
[24] W. Streit,et al. Reactive microgliosis , 1999, Progress in Neurobiology.
[25] D. Ingram,et al. Stereological estimation of total microglia number in mouse hippocampus , 1998, Journal of Neuroscience Methods.
[26] G. Kreutzberg,et al. Regulation of MSCF receptors on microglia in the normal and injured mouse central nervous system: A quantitative immunofluorescence study using confocal laser microscopy , 1998, The Journal of comparative neurology.
[27] M. Pender,et al. Microglia are more susceptible than macrophages to apoptosis in the central nervous system in experimental autoimmune encephalomyelitis through a mechanism not involving Fas (CD95). , 1998, International immunology.
[28] M. Graeber,et al. Population control of microglia: does apoptosisplay a role? , 1997, Journal of neurocytology.
[29] Jay X. Tang,et al. Caspase-3-generated fragment of gelsolin: effector of morphological change in apoptosis. , 1997, Science.
[30] J. Abkowitz,et al. Kinetics of central nervous system microglial and macrophage engraftment: analysis using a transgenic bone marrow transplantation model. , 1997, Blood.
[31] G. Kreutzberg. Microglia: a sensor for pathological events in the CNS , 1996, Trends in Neurosciences.
[32] M. Satoh,et al. Apoptosis of cultured microglia by the deprivation of macrophage colony-stimulating factor , 1996, Neuroscience Research.
[33] W. Hickey,et al. Normal adult ramified microglia separated from other central nervous system macrophages by flow cytometric sorting. Phenotypic differences defined and direct ex vivo antigen presentation to myelin basic protein-reactive CD4+ T cells compared. , 1995, Journal of immunology.
[34] C. Piccirillo,et al. TNF-alpha expression by resident microglia and infiltrating leukocytes in the central nervous system of mice with experimental allergic encephalomyelitis. Regulation by Th1 cytokines. , 1995, Journal of immunology.
[35] G. Kreutzberg,et al. Inhibition of Posttraumatic Microglial Proliferation in a Genetic Model of Macrophage Colony‐Stimulating Factor Deficiency in the Mouse , 1994, The European journal of neuroscience.
[36] A. Fagan,et al. Mechanisms of sprouting in the adult central nervous system: Cellular responses in areas of terminal degeneration and reinnervation in the rat hippocampus , 1994, Neuroscience.
[37] V. Perry,et al. Turnover of resident microglia in the normal adult mouse brain , 1992, Neuroscience.
[38] G. Kreutzberg,et al. Increase of macrophage colony‐stimulating factor and granulocyte‐macrophage colony‐stimulating factor receptors in the regenerating rat facial nucleus , 1991, Journal of neuroscience research.
[39] H. Gundersen,et al. Unbiased stereological estimation of the total number of neurons in the subdivisions of the rat hippocampus using the optical fractionator , 1991, The Anatomical record.
[40] V. ter meulen,et al. Isolation and direct characterization of resident microglial cells from the normal and inflamed central nervous system. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[41] A. Fagan,et al. Cholinergic sprouting in the hippocampus: A proposed role for IL-1 , 1990, Experimental Neurology.
[42] H. J. G. Gundersen,et al. The new stereological tools: Disector, fractionator, nucleator and point sampled intercepts and their use in pathological research and diagnosis , 1988, APMIS : acta pathologica, microbiologica, et immunologica Scandinavica.
[43] W. Hickey,et al. Perivascular microglial cells of the CNS are bone marrow-derived and present antigen in vivo. , 1988, Science.
[44] H. Gundersen. Stereology of arbitrary particles * , 1986, Journal of microscopy.
[45] Gary Lynch,et al. An electron microscopic study of lesion-induced synaptogenesis in the dentate gyrus of the adult rat. I. Magnitude and time course of degeneration , 1976, Brain Research.
[46] E. Fifková,et al. Two types of terminal degeneration in the molecular layer of the dentate fascia following lesions of the entorhinal cortex. , 1975, Brain research.
[47] A. Hjorth-Simonsen,et al. Projection of the lateral part of the entorhinal area to the hippocampus and fascia dentata , 1972, The Journal of comparative neurology.
[48] A. Hjorth-Simonsen,et al. Origin and termination of the hippocampal perforant path in the rat studied by silver impregnation , 1972, The Journal of comparative neurology.
[49] J. Sjöstrand. Proliferative changes in glial cells during nerve regeneration , 1965, Zeitschrift für Zellforschung und Mikroskopische Anatomie.
[50] W. Penfield. Cytology & cellular pathology of the nervous system , 1965 .
[51] W. E. Watson. An autoradiographic study of the incorporation of nucleic‐acid precursors by neurones and glia during nerve regeneration. , 1965, The Journal of physiology.
[52] R. J. A. Berry,et al. Cytology and cellular pathology of the nervous system , 1932 .
[53] J. Zimmer,et al. Microglial and astroglial reactions to anterograde axonal degeneration: a histochemical and immunocytochemical study of the adult rat fascia dentata after entorhinal perforant path lesions , 2004, Experimental Brain Research.
[54] T. Fleisher,et al. Immune function. , 1997, Pediatrics in review.
[55] G. Paxinos. The Rat nervous system , 1985 .