Adult Neural Stem Cells Are Alerted by Systemic Inflammation through TNF-α Receptor Signaling.
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I. Fariñas | Antonio Jordán-Pla | G. Belenguer | Pere Duart-Abadia | A. Domingo-Muelas | Laura Blasco-Chamarro | S. Ferrón | J. Morante-Redolat | Pere Duart-Abadía | A. Jordán-Pla | Sacri R. Ferrón | Ana Domingo-Muelas
[1] M. Malumbres,et al. p38γ is essential for cell cycle progression and liver tumorigenesis , 2019, Nature.
[2] A. Marciniak-Czochra,et al. Quiescence Modulates Stem Cell Maintenance and Regenerative Capacity in the Aging Brain , 2019, Cell.
[3] T. Rando,et al. Stem Cell Quiescence: Dynamism, Restraint, and Cellular Idling. , 2019, Cell stem cell.
[4] P. Sims,et al. Single-Cell Analysis of Regional Differences in Adult V-SVZ Neural Stem Cell Lineages , 2019, Cell reports.
[5] D. Brenner,et al. The TNF Family of Ligands and Receptors: Communication Modules in the Immune System and Beyond. , 2019, Physiological reviews.
[6] F. C. Bennett,et al. Isolation and Culture of Microglia , 2018, Current protocols in immunology.
[7] Aristotelis Misios,et al. Single-Cell Transcriptomics Characterizes Cell Types in the Subventricular Zone and Uncovers Molecular Defects Impairing Adult Neurogenesis. , 2018, Cell reports.
[8] Lise Morizur,et al. Distinct Molecular Signatures of Quiescent and Activated Adult Neural Stem Cells Reveal Specific Interactions with Their Microenvironment , 2018, Stem cell reports.
[9] Patrick J. Whelan,et al. Single-Cell Transcriptomics and Fate Mapping of Ependymal Cells Reveals an Absence of Neural Stem Cell Function , 2018, Cell.
[10] A. Cebrian-Silla,et al. Adult Neurogenesis Is Sustained by Symmetric Self-Renewal and Differentiation. , 2018, Cell stem cell.
[11] Mauro J. Muraro,et al. Troy+ brain stem cells cycle through quiescence and regulate their number by sensing niche occupancy , 2018, Proceedings of the National Academy of Sciences.
[12] T. Rando,et al. HGFA Is an Injury-Regulated Systemic Factor that Induces the Transition of Stem Cells into GAlert. , 2017, Cell reports.
[13] A. Brunet,et al. Single-Cell Transcriptomic Analysis Defines Heterogeneity and Transcriptional Dynamics in the Adult Neural Stem Cell Lineage. , 2017, Cell reports.
[14] Vincent Gardeux,et al. ASAP: a web-based platform for the analysis and interactive visualization of single-cell RNA-seq data , 2016, bioRxiv.
[15] Mariella G. Filbin,et al. Single-cell RNA-seq supports a developmental hierarchy in human oligodendroglioma , 2016, Nature.
[16] R. Munford. Endotoxemia—menace, marker, or mistake? , 2016, Journal of leukocyte biology.
[17] H. Hahn,et al. Hedgehog Controls Quiescence and Activation of Neural Stem Cells in the Adult Ventricular-Subventricular Zone , 2016, Stem cell reports.
[18] F. Doetsch,et al. A mosaic world: puzzles revealed by adult neural stem cell heterogeneity , 2016, Wiley interdisciplinary reviews. Developmental biology.
[19] M. Götz,et al. Neurogenesis in the Developing and Adult Brain-Similarities and Key Differences. , 2016, Cold Spring Harbor perspectives in biology.
[20] Hongkai Ji,et al. TSCAN: Pseudo-time reconstruction and evaluation in single-cell RNA-seq analysis , 2016, Nucleic acids research.
[21] I. Fariñas,et al. Isolation, culture and analysis of adult subependymal neural stem cells. , 2016, Differentiation; research in biological diversity.
[22] J. O'Connor,et al. Neurogenic Niche Microglia Undergo Positional Remodeling and Progressive Activation Contributing to Age-Associated Reductions in Neurogenesis. , 2016, Stem cells and development.
[23] Enric Llorens-Bobadilla,et al. Single-Cell Transcriptomics Reveals a Population of Dormant Neural Stem Cells that Become Activated upon Brain Injury. , 2015, Cell stem cell.
[24] Fátima Sánchez-Cabo,et al. GOplot: an R package for visually combining expression data with functional analysis , 2015, Bioinform..
[25] L. Probert. TNF and its receptors in the CNS: The essential, the desirable and the deleterious effects , 2015, Neuroscience.
[26] K. Michelsen,et al. Chronic intestinal inflammation alters hippocampal neurogenesis , 2015, Journal of Neuroinflammation.
[27] Steven L Salzberg,et al. HISAT: a fast spliced aligner with low memory requirements , 2015, Nature Methods.
[28] Jian-Bing Fan,et al. CDK6 Levels Regulate Quiescence Exit in Human Hematopoietic Stem Cells , 2015, Cell stem cell.
[29] W. A. Banks. The blood-brain barrier in neuroimmunology: Tales of separation and assimilation , 2015, Brain, Behavior, and Immunity.
[30] W. Huber,et al. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2 , 2014, Genome Biology.
[31] Roger J. Davis,et al. TNF and MAP kinase signalling pathways. , 2014, Seminars in immunology.
[32] S. Morrison,et al. Prospective identification of functionally distinct stem cells and neurosphere-initiating cells in adult mouse forebrain , 2014, eLife.
[33] Erika Pastrana,et al. Prospective Identification and Purification of Quiescent Adult Neural Stem Cells from Their In Vivo Niche , 2014, Neuron.
[34] Melinda J. Cromie,et al. mTORC1 controls the adaptive transition of quiescent stem cells from G0 to GAlert , 2014, Nature.
[35] Cole Trapnell,et al. The dynamics and regulators of cell fate decisions are revealed by pseudotemporal ordering of single cells , 2014, Nature Biotechnology.
[36] Björn Usadel,et al. Trimmomatic: a flexible trimmer for Illumina sequence data , 2014, Bioinform..
[37] D. Scadden. Nice Neighborhood: Emerging Concepts of the Stem Cell Niche , 2014, Cell.
[38] M. Tyers,et al. BoxPlotR: a web tool for generation of box plots , 2014, Nature Methods.
[39] A. Álvarez-Buylla,et al. Molecular Diversity Subdivides the Adult Forebrain Neural Stem Cell Population , 2014, Stem cells.
[40] Wei Shi,et al. featureCounts: an efficient general purpose program for assigning sequence reads to genomic features , 2013, Bioinform..
[41] Tom H. Cheung,et al. Molecular regulation of stem cell quiescence , 2013, Nature Reviews Molecular Cell Biology.
[42] A. Álvarez-Buylla,et al. Cell cycle and lineage progression of neural progenitors in the ventricular-subventricular zones of adult mice , 2013, Proceedings of the National Academy of Sciences.
[43] N. Kyritsis,et al. Acute Inflammation Initiates the Regenerative Response in the Adult Zebrafish Brain , 2012, Science.
[44] G. Kusek,et al. VCAM1 is essential to maintain the structure of the SVZ niche and acts as an environmental sensor to regulate SVZ lineage progression. , 2012, Cell stem cell.
[45] W. Bowers,et al. Tumor Necrosis Factor-alpha and the Roles it Plays in Homeostatic and Degenerative Processes Within the Central Nervous System , 2011, Journal of Neuroimmune Pharmacology.
[46] Matko Bosnjak,et al. REVIGO Summarizes and Visualizes Long Lists of Gene Ontology Terms , 2011, PloS one.
[47] Marcel Martin. Cutadapt removes adapter sequences from high-throughput sequencing reads , 2011 .
[48] Y. Nolan,et al. Tumour necrosis factor-α impairs neuronal differentiation but not proliferation of hippocampal neural precursor cells: Role of Hes1 , 2010, Molecular and Cellular Neuroscience.
[49] Aaron R. Quinlan,et al. Bioinformatics Applications Note Genome Analysis Bedtools: a Flexible Suite of Utilities for Comparing Genomic Features , 2022 .
[50] Mark D. Robinson,et al. edgeR: a Bioconductor package for differential expression analysis of digital gene expression data , 2009, Bioinform..
[51] I. Fariñas,et al. Vascular niche factor PEDF modulates Notch-dependent stemness in the adult subependymal zone , 2009, Nature Neuroscience.
[52] G. Kempermann,et al. Adaptive peripheral immune response increases proliferation of neural precursor cells in the adult hippocampus , 2009, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[53] Gonçalo R. Abecasis,et al. The Sequence Alignment/Map format and SAMtools , 2009, Bioinform..
[54] Erika Pastrana,et al. Simultaneous prospective purification of adult subventricular zone neural stem cells and their progeny , 2009, Proceedings of the National Academy of Sciences.
[55] J. Malva,et al. Tumor Necrosis Factor‐α Modulates Survival, Proliferation, and Neuronal Differentiation in Neonatal Subventricular Zone Cell Cultures , 2008, Stem cells.
[56] J. García-Verdugo,et al. Persistent inflammation alters the function of the endogenous brain stem cell compartment , 2008, Brain : a journal of neurology.
[57] Kalyani V. P. Guntur,et al. Tumor Necrosis Factor α (TNFα) Stimulates Map4k4 Expression through TNFα Receptor 1 Signaling to c-Jun and Activating Transcription Factor 2* , 2007, Journal of Biological Chemistry.
[58] Henrik Ahlenius,et al. Tumor Necrosis Factor Receptor 1 Is a Negative Regulator of Progenitor Proliferation in Adult Hippocampal Neurogenesis , 2006, The Journal of Neuroscience.
[59] C. Kaltschmidt,et al. Potential role of NF-κB in adult neural stem cells: the underrated steersman? , 2006, International Journal of Developmental Neuroscience.
[60] S. Tzeng,et al. Tumor necrosis factor-α and interleukin-18 modulate neuronal cell fate in embryonic neural progenitor culture , 2005, Brain Research.
[61] A. Turnley,et al. Interferon-γ but not TNFα promotes neuronal differentiation and neurite outgrowth of murine adult neural stem cells , 2004, Experimental Neurology.
[62] Hiroki Toda,et al. Inflammatory Blockade Restores Adult Hippocampal Neurogenesis , 2003, Science.
[63] T. Ben-Hur,et al. Effects of proinflammatory cytokines on the growth, fate, and motility of multipotential neural precursor cells , 2003, Molecular and Cellular Neuroscience.
[64] 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.
[65] C. Ware,et al. TNF receptor-deficient mice reveal divergent roles for p55 and p75 in several models of inflammation. , 1998, Journal of immunology.
[66] F. Brett,et al. Evolution of Neuropathologic Abnormalities Associated with Blood-Brain Barrier Breakdown in Transgenic Mice Expressing lnterleukin-6 in Astrocytes , 1995, Journal of neuropathology and experimental neurology.