PARK7/DJ-1 deficiency impairs microglial activation in response to LPS-induced inflammation
暂无分享,去创建一个
A. Ginolhac | A. Michelucci | D. Coowar | Carole Sousa | T. Kaoma | A. Grünewald | Katja Badanjak | D. V. Vogt Weisenhorn | A. Scafidi | Frida Lind-Holm Mogensen | Corrado Ameli | Maria Tziortziou | Sandro L. Pereira | S. Poovathingal | Aurélie Poli | Alex Skupin | Arnaud Muller | Paul M. A. Antony | Nathalie Nicot | Wolfgang Wurst | Petr V. Nazarov
[1] Fengguang Yang,et al. S100A6: molecular function and biomarker role , 2023, Biomarker Research.
[2] M. Pajares,et al. Appraising the Role of Astrocytes as Suppliers of Neuronal Glutathione Precursors , 2023, International journal of molecular sciences.
[3] A. Poli,et al. PARK7/DJ-1 in microglia: implications in Parkinson’s disease and relevance as a therapeutic target , 2023, Journal of Neuroinflammation.
[4] Tuan Leng Tay,et al. Microglia states and nomenclature: A field at its crossroads , 2022, Neuron.
[5] M. Graeber,et al. Microglia morphophysiological diversity and its implications for the CNS , 2022, Frontiers in Immunology.
[6] Wei Chen,et al. Altered prefrontal neurochemistry in the DJ-1 knockout mouse model of Parkinson’s disease: complementary semi-quantitative analyses with in vivo magnetic resonance spectroscopy and MALDI-MSI , 2022, Analytical and Bioanalytical Chemistry.
[7] Yuan Zhang,et al. Microglia-specific transcriptional repression of interferon-regulated genes after prolonged stress in mice , 2022, Neurobiology of Stress.
[8] Hyacinthe Cartiaux,et al. Aggregating and Consolidating two High Performant Network Topologies: The ULHPC Experience , 2022, PEARC.
[9] Lance Fredrick Pahutan Bosch,et al. The Shape of μ—How Morphological Analyses Shape the Study of Microglia , 2022, Frontiers in Cellular Neuroscience.
[10] N. Pavese,et al. Neuroinflammation and Immune Changes in Prodromal Parkinson’s Disease and Other Synucleinopathies , 2022, Journal of Parkinson's disease.
[11] Brad T. Sherman,et al. DAVID: a web server for functional enrichment analysis and functional annotation of gene lists (2021 update) , 2022, Nucleic Acids Res..
[12] D. Bouvier,et al. Microglia phenotypes are associated with subregional patterns of concomitant tau, amyloid-β and α-synuclein pathologies in the hippocampus of patients with Alzheimer’s disease and dementia with Lewy bodies , 2022, Acta neuropathologica communications.
[13] M. Tansey,et al. Inflammation and immune dysfunction in Parkinson disease , 2022, Nature Reviews Immunology.
[14] Lauren A. Fromont,et al. The European Genome-phenome Archive in 2021 , 2021, Nucleic Acids Res..
[15] H. Ren,et al. DJ-1 inhibits microglial activation and protects dopaminergic neurons in vitro and in vivo through interacting with microglial p65 , 2021, Cell Death & Disease.
[16] Anne E Carpenter,et al. CellProfiler 4: improvements in speed, utility and usability , 2021, BMC Bioinformatics.
[17] Sven Rahmann,et al. Sustainable data analysis with Snakemake , 2021, F1000Research.
[18] T. Kadowaki,et al. Preparation and culture of bone marrow-derived macrophages from mice for functional analysis , 2020, STAR protocols.
[19] Richard J Smeyne,et al. Infection and Risk of Parkinson’s Disease , 2020, Journal of Parkinson's disease.
[20] P. Remy,et al. Increased microglial activation in patients with Parkinson disease using [18F]-DPA714 TSPO PET imaging. , 2020, Parkinsonism & related disorders.
[21] M. Peana,et al. The glutathione system in Parkinson’s disease and its progression , 2020, Neuroscience & Biobehavioral Reviews.
[22] Raphael Gottardo,et al. Integrated analysis of multimodal single-cell data , 2020, Cell.
[23] P. May,et al. A patient-based model of RNA mis-splicing uncovers treatment targets in Parkinson’s disease , 2020, Science Translational Medicine.
[24] Wuxue Peng,et al. Bacterial, viral, and fungal infection‐related risk of Parkinson's disease: Meta‐analysis of cohort and case–control studies , 2020, Brain and behavior.
[25] M. Bennett,et al. Microglial cell hyper-ramification and neuronal dendritic spine loss in the hippocampus and medial prefrontal cortex in a mouse model of PTSD , 2019, Brain, Behavior, and Immunity.
[26] K. Patrick,et al. Exploring the “Multiple-Hit Hypothesis” of Neurodegenerative Disease: Bacterial Infection Comes Up to Bat , 2019, Front. Cell. Infect. Microbiol..
[27] R. Balling,et al. MIC‐MAC: An automated pipeline for high‐throughput characterization and classification of three‐dimensional microglia morphologies in mouse and human postmortem brain samples , 2019, Glia.
[28] Samantha Riesenfeld,et al. EmptyDrops: distinguishing cells from empty droplets in droplet-based single-cell RNA sequencing data , 2019, Genome Biology.
[29] Shengdi Chen,et al. Lack of Association Between DJ-1 Gene Promoter Polymorphism and the Risk of Parkinson’s Disease , 2019, Front. Aging Neurosci..
[30] B. Bloem,et al. The Emerging Evidence of the Parkinson Pandemic , 2018, Journal of Parkinson's disease.
[31] F. Azuaje,et al. Single‐cell transcriptomics reveals distinct inflammation‐induced microglia signatures , 2018, EMBO reports.
[32] Yoshiro Saito,et al. Distribution of oxidized DJ-1 in Parkinson’s disease-related sites in the brain and in the peripheral tissues: effects of aging and a neurotoxin , 2018, Scientific Reports.
[33] Gordon K Smyth,et al. The R package Rsubread is easier, faster, cheaper and better for alignment and quantification of RNA sequencing reads , 2018, bioRxiv.
[34] Soyeon Jeong,et al. Oxidized DJ-1 Levels in Urine Samples as a Putative Biomarker for Parkinson's Disease , 2018, Parkinson's disease.
[35] M. Z. Cader,et al. A Highly Efficient Human Pluripotent Stem Cell Microglia Model Displays a Neuronal-Co-culture-Specific Expression Profile and Inflammatory Response , 2017, Stem cell reports.
[36] J. Marshall,et al. DJ‐1/PARK7 Impairs Bacterial Clearance in Sepsis , 2017, American journal of respiratory and critical care medicine.
[37] R. Eils,et al. Complex heatmaps reveal patterns and correlations in multidimensional genomic data , 2016, Bioinform..
[38] F. He,et al. Enteric neurons from Parkinson’s disease patients display ex vivo aberrations in mitochondrial structure , 2016, Scientific Reports.
[39] Måns Magnusson,et al. MultiQC: summarize analysis results for multiple tools and samples in a single report , 2016, Bioinform..
[40] I. Alonso,et al. DJ-1 linked parkinsonism (PARK7) is associated with Lewy body pathology. , 2016, Brain : a journal of neurology.
[41] W. Wurst,et al. Loss of DJ-1 impairs antioxidant response by altered glutamine and serine metabolism , 2016, Neurobiology of Disease.
[42] Pallav Sengupta,et al. Men and mice: Relating their ages. , 2016, Life sciences.
[43] Stinus Lindgreen,et al. AdapterRemoval v2: rapid adapter trimming, identification, and read merging , 2016, BMC Research Notes.
[44] A. del Sol,et al. Gene Regulatory Network Inference of Immunoresponsive Gene 1 (IRG1) Identifies Interferon Regulatory Factor 1 (IRF1) as Its Transcriptional Regulator in Mammalian Macrophages , 2016, PloS one.
[45] P. Linsley,et al. MAST: a flexible statistical framework for assessing transcriptional changes and characterizing heterogeneity in single-cell RNA sequencing data , 2015, Genome Biology.
[46] Huadong Zhou,et al. The association between infectious burden and Parkinson's disease: A case-control study. , 2015, Parkinsonism & related disorders.
[47] W. V. van Gool,et al. Systemic inflammation and microglial activation: systematic review of animal experiments , 2015, Journal of Neuroinflammation.
[48] L. Bodea,et al. Neurodegeneration by Activation of the Microglial Complement–Phagosome Pathway , 2014, The Journal of Neuroscience.
[49] S. Mandel,et al. DJ‐1 deficiency triggers microglia sensitivity to dopamine toward a pro‐inflammatory phenotype that is attenuated by rasagiline , 2014, Journal of neurochemistry.
[50] Yoshiro Saito. Oxidized DJ-1 as a possible biomarker of Parkinson’s disease , 2014, Journal of clinical biochemistry and nutrition.
[51] Young Ho Suh,et al. DJ-1 facilitates the interaction between STAT1 and its phosphatase, SHP-1, in brain microglia and astrocytes: A novel anti-inflammatory function of DJ-1 , 2013, Neurobiology of Disease.
[52] B. van Wilgenburg,et al. Efficient, Long Term Production of Monocyte-Derived Macrophages from Human Pluripotent Stem Cells under Partly-Defined and Fully-Defined Conditions , 2013, PloS one.
[53] Kathryn E. Crosier,et al. Immunoresponsive gene 1 augments bactericidal activity of macrophage-lineage cells by regulating β-oxidation-dependent mitochondrial ROS production. , 2013, Cell metabolism.
[54] Robert E. Burke,et al. Axon degeneration in Parkinson's disease , 2013, Experimental Neurology.
[55] F. Walker,et al. Chronic stress induced remodeling of the prefrontal cortex: structural re-organization of microglia and the inhibitory effect of minocycline. , 2013, Cerebral cortex.
[56] R. Balling,et al. Immune-responsive gene 1 protein links metabolism to immunity by catalyzing itaconic acid production , 2013, Proceedings of the National Academy of Sciences.
[57] Shengdi Chen,et al. DJ-1 deficiency perturbs microtubule dynamics and impairs striatal neurite outgrowth , 2013, Neurobiology of Aging.
[58] Honglei Chen,et al. CNS infections, sepsis and risk of Parkinson's disease. , 2012, International journal of epidemiology.
[59] B. Ritz,et al. Treatment for Helicobacter pylori infection and risk of parkinson’s disease in Denmark , 2012, European journal of neurology.
[60] Marcel Martin. Cutadapt removes adapter sequences from high-throughput sequencing reads , 2011 .
[61] R. Burke,et al. Clinical progression in Parkinson disease and the neurobiology of axons , 2010, Annals of neurology.
[62] M. Angelis,et al. DJ‐1‐deficient mice show less TH‐positive neurons in the ventral tegmental area and exhibit non‐motoric behavioural impairments , 2010, Genes, brain, and behavior.
[63] R. Krüger,et al. Reduced Basal Autophagy and Impaired Mitochondrial Dynamics Due to Loss of Parkinson's Disease-Associated Protein DJ-1 , 2010, PloS one.
[64] T. Kodama,et al. Preparation and application of monoclonal antibodies against oxidized DJ-1. Significant elevation of oxidized DJ-1 in erythrocytes of early-stage Parkinson disease patients , 2009, Neuroscience Letters.
[65] W. Wurst,et al. Regulation of astrocyte inflammatory responses by the Parkinson's disease‐associated gene DJ–1 , 2009, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[66] F. Costa,et al. Non-coding RNAs, epigenetics and complexity. , 2008, Gene.
[67] M. Sack. Mitochondrial depolarization and the role of uncoupling proteins in ischemia tolerance. , 2006, Cardiovascular research.
[68] T. Mak,et al. DJ-1, a cancer- and Parkinson's disease-associated protein, stabilizes the antioxidant transcriptional master regulator Nrf2 , 2006, Proceedings of the National Academy of Sciences.
[69] M. Cameron Sullards,et al. Oxidative Damage of DJ-1 Is Linked to Sporadic Parkinson and Alzheimer Diseases* , 2006, Journal of Biological Chemistry.
[70] Alexander Hammers,et al. In vivo imaging of microglial activation with [11C](R)-PK11195 PET in idiopathic Parkinson's disease , 2006, Neurobiology of Disease.
[71] Tiffany Mathews,et al. Age-dependent Motor Deficits and Dopaminergic Dysfunction in DJ-1 Null Mice* , 2005, Journal of Biological Chemistry.
[72] David S. Park,et al. Hypersensitivity of DJ-1-deficient mice to 1-methyl-4-phenyl-1,2,3,6-tetrahydropyrindine (MPTP) and oxidative stress. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[73] P. Calabresi,et al. Nigrostriatal Dopaminergic Deficits and Hypokinesia Caused by Inactivation of the Familial Parkinsonism-Linked Gene DJ-1 , 2005, Neuron.
[74] Makoto Sawada,et al. Distribution of major histocompatibility complex class II-positive microglia and cytokine profile of Parkinson's disease brains , 2003, Acta Neuropathologica.
[75] B. Rabin,et al. Stress-induced alterations in interferon production and class II histocompatibility antigen expression , 1992, Brain, Behavior, and Immunity.
[76] H. Willard,et al. Characterization of a murine gene expressed from the inactive X chromosome , 1991, Nature.
[77] OUP accepted manuscript , 2022, Nucleic Acids Research.
[78] OUP accepted manuscript , 2021, Brain.
[79] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[80] Thomas R. Gingeras,et al. STAR: ultrafast universal RNA-seq aligner , 2013, Bioinform..
[81] G. Giglia-Mari,et al. DNA damage response. , 2011, Cold Spring Harbor perspectives in biology.