Secretome analyses of Aβ(1-42) stimulated hippocampal astrocytes reveal that CXCL10 is involved in astrocyte migration.
暂无分享,去创建一个
J. Xie | Wenjia Lai | Minzhi Zhao | Qingsong Wang | Xuyang Zhao | J. Ji | Xiao Zou | Jing Wu | Liwei Zhang | M. Zhao | Jian Xie
[1] J. Rosales,et al. Viewpoint: Crosstalks between neurofibrillary tangles and amyloid plaque formation , 2013, Ageing Research Reviews.
[2] B. Ahlemeyer,et al. Phenotype, differentiation, and function differ in rat and mouse neocortical astrocytes cultured under the same conditions , 2013, Journal of Neuroscience Methods.
[3] S. Hickman,et al. The neuroimmune system in Alzheimer's disease: the glass is half full. , 2012, Journal of Alzheimer's disease : JAD.
[4] M. Gobbi,et al. Good gene, bad gene: New APP variant may be both , 2012, Progress in Neurobiology.
[5] E. Tirotta,et al. IFN-γ-induced apoptosis of human embryonic stem cell derived oligodendrocyte progenitor cells is restricted by CXCR2 signaling. , 2012, Stem cell research.
[6] C. Crescioli,et al. CXCL10: a candidate biomarker in transplantation. , 2012, Clinica chimica acta; international journal of clinical chemistry.
[7] Y. Ishigaki,et al. Characterization of proteins secreted by pancreatic cancer cells with anticancer drug treatment in vitro , 2012, Oncology reports.
[8] Jae-Seon Lee,et al. Secretome analysis of ionizing radiation‐induced senescent cancer cells reveals that secreted RKIP plays a critical role in neighboring cell migration , 2012, Proteomics.
[9] R. Bodnar,et al. An IP-10 (CXCL10)-Derived Peptide Inhibits Angiogenesis , 2012, PloS one.
[10] D. Thal. The role of astrocytes in amyloid β-protein toxicity and clearance , 2012, Experimental Neurology.
[11] Seungbok Lee,et al. CXCL10 promotes osteolytic bone metastasis by enhancing cancer outgrowth and osteoclastogenesis. , 2012, Cancer research.
[12] Jiali Du,et al. Identification of beta-amyloid-binding sites on transthyretin. , 2012, Protein engineering, design & selection : PEDS.
[13] P. Rossini,et al. GSTM1 null genotype as risk factor for late-onset Alzheimer's disease in Italian patients , 2012, Journal of the Neurological Sciences.
[14] F. van Leuven,et al. Protein Tau: Prime Cause of Synaptic and Neuronal Degeneration in Alzheimer's Disease , 2012, International journal of Alzheimer's disease.
[15] D. Banner,et al. CXCL10 contributes to p38-mediated apoptosis in primary T lymphocytes in vitro , 2012, Cytokine.
[16] A. Suzumura,et al. Sweepers in the CNS: Microglial Migration and Phagocytosis in the Alzheimer Disease Pathogenesis , 2012, International journal of Alzheimer's disease.
[17] T. Mayadas,et al. Complement component C3 and complement receptor type 3 contribute to the phagocytosis and clearance of fibrillar Aβ by microglia , 2012, Glia.
[18] K. Jellinger,et al. Correlation of Alzheimer Disease Neuropathologic Changes With Cognitive Status: A Review of the Literature , 2012, Journal of neuropathology and experimental neurology.
[19] H. Kazui,et al. A promoter variant in the chitinase 3-like 1 gene is associated with serum YKL-40 level and personality trait , 2012, Neuroscience Letters.
[20] Randy F. Stout,et al. Glial cells in (patho)physiology , 2012, Journal of neurochemistry.
[21] Biqiong Wang,et al. CXCL10 enhances radiotherapy effects in HeLa cells through cell cycle redistribution. , 2012, Oncology letters.
[22] D. Baumgart,et al. Targeting leukocyte migration and adhesion in Crohn’s disease and ulcerative colitis , 2012, Inflammopharmacology.
[23] Xinyi Li,et al. Transthyretin and the brain re-visited: Is neuronal synthesis of transthyretin protective in Alzheimer's disease? , 2011, Molecular Neurodegeneration.
[24] K. Suk,et al. Lipocalin-2 Is a Chemokine Inducer in the Central Nervous System , 2011, The Journal of Biological Chemistry.
[25] S. Brunak,et al. SignalP 4.0: discriminating signal peptides from transmembrane regions , 2011, Nature Methods.
[26] Hua Han,et al. Synergistic effects of galectin-1 and reactive astrocytes on functional recovery after contusive spinal cord injury , 2011, Archives of Orthopaedic and Trauma Surgery.
[27] J. Motlík,et al. Mapping of the secretome of primary isolates of mammalian cells, stem cells and derived cell lines , 2011, Proteomics.
[28] J. Hébert,et al. Signaling Pathways in Reactive Astrocytes, a Genetic Perspective , 2011, Molecular Neurobiology.
[29] M. Michikawa,et al. Lipoprotein Lipase Is a Novel Amyloid β (Aβ)-binding Protein That Promotes Glycosaminoglycan-dependent Cellular Uptake of Aβ in Astrocytes* , 2010, The Journal of Biological Chemistry.
[30] Damian Szklarczyk,et al. The STRING database in 2011: functional interaction networks of proteins, globally integrated and scored , 2010, Nucleic Acids Res..
[31] R. Veerhuis,et al. Astrocytic Aβ1‐42 uptake is determined by Aβ‐aggregation state and the presence of amyloid‐associated proteins , 2010, Glia.
[32] A. Starkey,et al. YKL-40 expression in traumatic brain injury: an initial analysis. , 2010, Journal of neurotrauma.
[33] T. Greco,et al. Quantitative mass spectrometry-based proteomics reveals the dynamic range of primary mouse astrocyte protein secretion. , 2010, Journal of proteome research.
[34] M. Citron,et al. Alzheimer's disease: strategies for disease modification , 2010, Nature Reviews Drug Discovery.
[35] G. Graham,et al. Astrocytes modulate the chemokine network in a pathogen-specific manner. , 2010, Biochemical and biophysical research communications.
[36] V. Aidinis,et al. ATX expression and LPA signalling are vital for the development of the nervous system. , 2010, Developmental biology.
[37] K. Kullander,et al. Appearance of Cxcl10‐expressing cell clusters is common for traumatic brain injury and neurodegenerative disorders , 2010, The European journal of neuroscience.
[38] Meijuan Yan,et al. Regulated expression of pancreatic triglyceride lipase after rat traumatic brain injury , 2010, Molecular and Cellular Biochemistry.
[39] G. Zito,et al. Anti-copper therapies in Alzheimer's disease: new concepts. , 2009, Recent patents on CNS drug discovery.
[40] E. Spisni,et al. Effect of copper on extracellular levels of key pro-inflammatory molecules in hypothalamic GN11 and primary neurons. , 2009, Neurotoxicology.
[41] Jeffrey A. Johnson,et al. Identification of astrocyte secreted proteins with a combination of shotgun proteomics and bioinformatics. , 2009, Journal of proteome research.
[42] Rachael P. Huntley,et al. The Gene Ontology Annotation (GOA) Database , 2009 .
[43] D. Goodlett,et al. Shotgun proteomics implicates extracellular matrix proteins and protease systems in neuronal development induced by astrocyte cholinergic stimulation , 2009, Journal of neurochemistry.
[44] F. Kiessling,et al. TNF-α and the IFN-γ-inducible protein 10 (IP-10/CXCL-10) delivered by parvoviral vectors act in synergy to induce antitumor effects in mouse glioblastoma , 2009, Cancer Gene Therapy.
[45] R. Balice-Gordon,et al. Mass spectrometric and computational analysis of cytokine‐induced alterations in the astrocyte secretome , 2009, Proteomics.
[46] M. Mann,et al. MaxQuant enables high peptide identification rates, individualized p.p.b.-range mass accuracies and proteome-wide protein quantification , 2008, Nature Biotechnology.
[47] B. Winblad,et al. Decreased Fractalkine and Increased IP-10 Expression in Aged Brain of APPswe Transgenic Mice , 2008, Neurochemical Research.
[48] H. Okano,et al. Galectin-1 regulates neurogenesis in the subventricular zone and promotes functional recovery after stroke , 2007, Experimental Neurology.
[49] Y. Urade,et al. Lipocalin-type prostaglandin D synthase/β-trace is a major amyloid β-chaperone in human cerebrospinal fluid , 2007, Proceedings of the National Academy of Sciences.
[50] I. Kanazawa,et al. Autotaxin expression is enhanced in frontal cortex of Alzheimer-type dementia patients , 2006, Neuroscience Letters.
[51] David Pinson,et al. CXCL10‐induced cell death in neurons: role of calcium dysregulation , 2006, The European journal of neuroscience.
[52] Y. Imai,et al. Functional expression of CCL6 by rat microglia: A possible role of CCL6 in cell–cell communication , 2005, Journal of Neuroimmunology.
[53] K. Kosaka,et al. Lib, transcriptionally induced in senile plaque-associated astrocytes, promotes glial migration through extracellular matrix. , 2005, Biochemical and biophysical research communications.
[54] P. Gottschall,et al. Altered production and proteolytic processing of brevican by transforming growth factor β in cultured astrocytes , 2005, Journal of neurochemistry.
[55] T. Endo. Glycans and glycan-binding proteins in brain: galectin-1-induced expression of neurotrophic factors in astrocytes. , 2005, Current drug targets.
[56] S. Sealfon,et al. CXC chemokine receptors on human oligodendrocytes: implications for multiple sclerosis. , 2005, Brain : a journal of neurology.
[57] D. Butterfield,et al. Proteomics analysis of human astrocytes expressing the HIV protein Tat. , 2005, Brain research. Molecular brain research.
[58] Yong Zhang,et al. SPD—a web-based secreted protein database , 2004, Nucleic Acids Res..
[59] Christian von Mering,et al. STRING: known and predicted protein–protein associations, integrated and transferred across organisms , 2004, Nucleic Acids Res..
[60] David Botstein,et al. GO: : TermFinder--open source software for accessing Gene Ontology information and finding significantly enriched Gene Ontology terms associated with a list of genes , 2004, Bioinform..
[61] H. Horie,et al. Galectin-1β, a natural monomeric form of galectin-1 lacking its six amino-terminal residues promotes axonal regeneration but not cell death , 2004, Cell Death and Differentiation.
[62] J. Hirabayashi,et al. Galectin-1 induces astrocyte differentiation, which leads to production of brain-derived neurotrophic factor. , 2004, Glycobiology.
[63] N. Blom,et al. Feature-based prediction of non-classical and leaderless protein secretion. , 2004, Protein engineering, design & selection : PEDS.
[64] P. Rakic,et al. SPARC-like 1 Regulates the Terminal Phase of Radial Glia-Guided Migration in the Cerebral Cortex , 2004, Neuron.
[65] P. Marin,et al. Proteomic Analysis of Astrocytic Secretion in the Mouse , 2003, Journal of Biological Chemistry.
[66] T. Wyss-Coray,et al. Adult mouse astrocytes degrade amyloid-β in vitro and in situ , 2003, Nature Medicine.
[67] Thomas D. Schmittgen,et al. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. , 2001, Methods.
[68] D. Loeffler,et al. Ceruloplasmin immunoreactivity in neurodegenerative disorders , 2001, Free radical research.
[69] S. Brunak,et al. Predicting subcellular localization of proteins based on their N-terminal amino acid sequence. , 2000, Journal of molecular biology.
[70] F. Maxfield,et al. Effects of Incorporation of Immunoglobulin G and Complement Component C1q on Uptake and Degradation of Alzheimer's Disease Amyloid Fibrils by Microglia* , 2000, The Journal of Biological Chemistry.
[71] R. Waring,et al. Determination of glutathione S-transferase μ and τ polymorphisms in neurological disease , 1999, Human & experimental toxicology.
[72] K. Abe,et al. Amyloid β protein inhibits cellular MTT reduction not by suppression of mitochondrial succinate dehydrogenase but by acceleration of MTT formazan exocytosis in cultured rat cortical astrocytes , 1998, Neuroscience Research.
[73] D. Schubert,et al. Cytotoxic Amyloid Peptides Inhibit Cellular 3‐(4,5‐Dimethylthiazol‐2‐yl)‐2,5‐Diphenyltetrazolium Bromide (MTT) Reduction by Enhancing MTT Formazan Exocytosis , 1997, Journal of neurochemistry.
[74] C. Nitsch,et al. The prolonged presence of glia-derived nexin, an endogenous protease inhibitor, in the hippocampus after ischemia-induced delayed neuronal death , 1992, Neuroscience.
[75] K. McCarthy,et al. Preparation of separate astroglial and oligodendroglial cell cultures from rat cerebral tissue , 1980, The Journal of cell biology.
[76] Christophe Lemetre,et al. Identification of SPARC-like 1 protein as part of a biomarker panel for Alzheimer's disease in cerebrospinal fluid. , 2012, Journal of Alzheimer's disease : JAD.
[77] N. Hattori,et al. [Neurodegenerative diseases]. , 2012, Nihon rinsho. Japanese journal of clinical medicine.
[78] Shwartsman Al,et al. [Compensatory function of transthyretin in Alzheimer's disease]. , 2011 .
[79] F. LaFerla,et al. Alzheimer's disease. , 2010, The New England journal of medicine.
[80] Jürgen Cox,et al. A practical guide to the MaxQuant computational platform for SILAC-based quantitative proteomics , 2009, Nature Protocols.
[81] M. Godoy,et al. Glutathione S-transferase variants increase susceptibility for late-onset Alzheimer's disease: association study and relationship with apolipoprotein E ɛ4 allele , 2008, Clinical chemistry and laboratory medicine.
[82] R. Nitsch,et al. Autotaxin (NPP-2) in the brain: cell type-specific expression and regulation during development and after neurotrauma , 2006, Cellular and Molecular Life Sciences.
[83] T. Wyss-Coray,et al. Adult mouse astrocytes degrade amyloid-beta in vitro and in situ. , 2003, Nature medicine.
[84] J. Fawcett,et al. Limited growth of severed CNS axons after treatment of adult rat brain with hyaluronidase , 2003, Journal of neuroscience research.