The secreted neuronal signal spock1 promotes blood-brain barrier development.
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Allon M. Klein | Chenghua Gu | U. Hartmann | Natasha M. O’Brown | Nikit Patel | Sean Gregory Megason
[1] J. Siegenthaler,et al. Formation and function of the meningeal arachnoid barrier around the developing mouse brain. , 2023, Developmental cell.
[2] I. Kovalszky,et al. SPOCK1 with unexpected function. The start of a new career. , 2022, American journal of physiology. Cell physiology.
[3] Raoul F. V. Germano,et al. Engineered Wnt ligands enable blood-brain barrier repair in neurological disorders , 2022, Science.
[4] B. Cui,et al. Pericyte-to-endothelial cell signaling via vitronectin-integrin regulates blood-CNS barrier , 2022, Neuron.
[5] M. Götz,et al. Molecular diversity of diencephalic astrocytes reveals adult astrogenesis regulated by Smad4 , 2021, The EMBO journal.
[6] A. Espinosa,et al. Astrocytes and neurons share region-specific transcriptional signatures that confer regional identity to neuronal reprogramming , 2021, Science Advances.
[7] P. Winter,et al. Astrocyte-derived Wnt growth factors are required for endothelial blood-brain barrier maintenance , 2020, Progress in Neurobiology.
[8] Ziqi Ye,et al. SPOCK1: a multi-domain proteoglycan at the crossroads of extracellular matrix remodeling and cancer development. , 2020, American journal of cancer research.
[9] S. Robel,et al. Astrocytes are necessary for blood–brain barrier maintenance in the adult mouse brain , 2020, Glia.
[10] Danfei Liu,et al. SPOCK1 overexpression induced by platelet-derived growth factor-BB promotes hepatic stellate cell activation and liver fibrosis through the integrin α5β1/PI3K/Akt signaling pathway , 2020, Laboratory Investigation.
[11] A. McKenna,et al. Emergence of Neuronal Diversity during Vertebrate Brain Development , 2019, Neuron.
[12] Fred A. Hamprecht,et al. ilastik: interactive machine learning for (bio)image analysis , 2019, Nature Methods.
[13] S. Megason,et al. Suppression of transcytosis regulates zebrafish blood-brain barrier function , 2019, eLife.
[14] Jennifer L Hu,et al. MULTI-seq: sample multiplexing for single-cell RNA sequencing using lipid-tagged indices , 2019, Nature Methods.
[15] Raoul F. V. Germano,et al. Low wnt/β-catenin signaling determines leaky vessels in the subfornical organ and affects water homeostasis in mice , 2019, eLife.
[16] J. Nathans,et al. Interplay of the Norrin and Wnt7a/Wnt7b signaling systems in blood–brain barrier and blood–retina barrier development and maintenance , 2018, Proceedings of the National Academy of Sciences.
[17] Vincent A. Traag,et al. From Louvain to Leiden: guaranteeing well-connected communities , 2018, Scientific Reports.
[18] Erica Bresciani,et al. An efficient dissociation protocol for generation of single cell suspension from zebrafish embryos and larvae , 2018, MethodsX.
[19] Guocheng Yuan,et al. Identification of spatially associated subpopulations by combining scRNA-seq and sequential fluorescence in situ hybridization data , 2018, Nature Biotechnology.
[20] Allon M. Klein,et al. Single-cell mapping of gene expression landscapes and lineage in the zebrafish embryo , 2018, Science.
[21] Johannes Stegmaier,et al. Third-generation in situ hybridization chain reaction: multiplexed, quantitative, sensitive, versatile, robust , 2018, Development.
[22] Fabian J Theis,et al. SCANPY: large-scale single-cell gene expression data analysis , 2018, Genome Biology.
[23] Berislav V. Zlokovic,et al. Blood–brain barrier breakdown in Alzheimer disease and other neurodegenerative disorders , 2018, Nature Reviews Neurology.
[24] Dal Hyung Kim,et al. Pan-neuronal calcium imaging with cellular resolution in freely swimming zebrafish , 2017, Nature Methods.
[25] Patrick Müller,et al. Dynamics of BMP signaling and distribution during zebrafish dorsal-ventral patterning , 2017, eLife.
[26] J. Nathans,et al. Reck and Gpr124 Are Essential Receptor Cofactors for Wnt7a/Wnt7b-Specific Signaling in Mammalian CNS Angiogenesis and Blood-Brain Barrier Regulation , 2017, Neuron.
[27] Fuquan Yang,et al. CD146 coordinates brain endothelial cell–pericyte communication for blood–brain barrier development , 2017, Proceedings of the National Academy of Sciences.
[28] Michael R. Taylor,et al. CNS angiogenesis and barriergenesis occur simultaneously. , 2017, Developmental biology.
[29] D. Ginty,et al. Blood-Brain Barrier Permeability Is Regulated by Lipid Transport-Dependent Suppression of Caveolae-Mediated Transcytosis , 2017, Neuron.
[30] Chenghua Gu,et al. Gradual Suppression of Transcytosis Governs Functional Blood-Retinal Barrier Formation , 2017, Neuron.
[31] Caleb Weinreb,et al. SPRING: a kinetic interface for visualizing high dimensional single-cell expression data , 2017, bioRxiv.
[32] David A Hartmann,et al. Pericytes as Inducers of Rapid, Matrix Metalloproteinase-9-Dependent Capillary Damage during Ischemia , 2017, The Journal of Neuroscience.
[33] R. Kelsh,et al. Clarification of mural cell coverage of vascular endothelial cells by live imaging of zebrafish , 2016, Development.
[34] Herbert A. Reitsamer,et al. Brain and Retinal Pericytes: Origin, Function and Role , 2016, Front. Cell. Neurosci..
[35] J. Nathans,et al. Tip cell-specific requirement for an atypical Gpr124- and Reck-dependent Wnt/β-catenin pathway during brain angiogenesis , 2015, eLife.
[36] S. Gabriel,et al. Inactivating mutations in MFSD2A, required for omega-3 fatty acid transport in brain, cause a lethal microcephaly syndrome , 2015, Nature Genetics.
[37] Allon M. Klein,et al. Droplet Barcoding for Single-Cell Transcriptomics Applied to Embryonic Stem Cells , 2015, Cell.
[38] K. Arai,et al. p38 MAP kinase mediates transforming-growth factor-β1-induced upregulation of matrix metalloproteinase-9 but not -2 in human brain pericytes , 2014, Brain Research.
[39] Michael R. Taylor,et al. Functional and genetic analysis of choroid plexus development in zebrafish , 2014, Front. Neurosci..
[40] J. Nathans,et al. Gpr124 controls CNS angiogenesis and blood-brain barrier integrity by promoting ligand-specific canonical wnt signaling. , 2014, Developmental cell.
[41] Ian A. Swinburne,et al. Interplay of Cell Shape and Division Orientation Promotes Robust Morphogenesis of Developing Epithelia , 2014, Cell.
[42] J. Nathans,et al. Canonical WNT signaling components in vascular development and barrier formation. , 2014, The Journal of clinical investigation.
[43] Yoav Mayshar,et al. Mfsd2a is critical for the formation and function of the blood–brain barrier , 2014, Nature.
[44] T. Davis,et al. Transporters at CNS barrier sites: obstacles or opportunities for drug delivery? , 2014, Current pharmaceutical design.
[45] C. Moens,et al. Notch3 establishes brain vascular integrity by regulating pericyte number , 2014, Development.
[46] E. Huang,et al. Foxc1 is required by pericytes during fetal brain angiogenesis , 2013, Biology Open.
[47] I. Mook‐Jung,et al. Disruption of blood-brain barrier in Alzheimer disease pathogenesis , 2013, Tissue barriers.
[48] S. Megason,et al. RNA-seq–based mapping and candidate identification of mutations from forward genetic screens , 2013, Genome research.
[49] J. Nathans,et al. Norrin/Frizzled4 Signaling in Retinal Vascular Development and Blood Brain Barrier Plasticity , 2012, Cell.
[50] Johannes E. Schindelin,et al. Fiji: an open-source platform for biological-image analysis , 2012, Nature Methods.
[51] Stanley E. Lazic,et al. Transcriptional Profiling of Human Brain Endothelial Cells Reveals Key Properties Crucial for Predictive In Vitro Blood-Brain Barrier Models , 2012, PloS one.
[52] Joshua S Kaminker,et al. Death receptors DR6 and TROY regulate brain vascular development. , 2012, Developmental cell.
[53] C. Betsholtz,et al. Pericytes: developmental, physiological, and pathological perspectives, problems, and promises. , 2011, Developmental cell.
[54] Colin N. Dewey,et al. RSEM: accurate transcript quantification from RNA-Seq data with or without a reference genome , 2011, BMC Bioinformatics.
[55] Bengt R. Johansson,et al. Pericytes regulate the blood–brain barrier , 2010, Nature.
[56] B. Barres,et al. Pericytes are required for blood–brain barrier integrity during embryogenesis , 2010, Nature.
[57] Berislav V. Zlokovic,et al. Pericytes Control Key Neurovascular Functions and Neuronal Phenotype in the Adult Brain and during Brain Aging , 2010, Neuron.
[58] Masahiko Sugimoto,et al. A novel transgenic zebrafish model for blood-brain and blood-retinal barrier development , 2010, BMC Developmental Biology.
[59] D. Rice,et al. TSPAN12 Regulates Retinal Vascular Development by Promoting Norrin- but Not Wnt-Induced FZD4/β-Catenin Signaling , 2009, Cell.
[60] B. Engelhardt,et al. Culture-Induced Changes in Blood—Brain Barrier Transcriptome: Implications for Amino-Acid Transporters in vivo , 2009, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[61] M. Frosch,et al. Matrix metalloproteinase inhibition reduces oxidative stress associated with cerebral amyloid angiopathy in vivo in transgenic mice , 2009, Journal of neurochemistry.
[62] Calvin J Kuo,et al. Wnt/β-catenin signaling is required for CNS, but not non-CNS, angiogenesis , 2009, Proceedings of the National Academy of Sciences.
[63] Andrew P. McMahon,et al. Canonical Wnt Signaling Regulates Organ-Specific Assembly and Differentiation of CNS Vasculature , 2008, Science.
[64] K. Plate,et al. Wnt/β-catenin signaling controls development of the blood–brain barrier , 2008, The Journal of cell biology.
[65] P. Humphries,et al. RNAi‐mediated reversible opening of the blood‐brain barrier , 2008, The journal of gene medicine.
[66] E. Lo,et al. MMP-9–Positive Neutrophil Infiltration Is Associated to Blood–Brain Barrier Breakdown and Basal Lamina Type IV Collagen Degradation During Hemorrhagic Transformation After Human Ischemic Stroke , 2008, Stroke.
[67] Kyu-Won Kim,et al. Functional and developmental analysis of the blood–brain barrier in zebrafish , 2008, Brain Research Bulletin.
[68] Guson Kang,et al. Foxn4 directly regulates tbx2b expression and atrioventricular canal formation. , 2008, Genes & development.
[69] M. Paulsson,et al. Testican-1 is dispensable for mouse development. , 2006, Matrix biology : journal of the International Society for Matrix Biology.
[70] N. Joan Abbott,et al. Evidence for bulk flow of brain interstitial fluid: significance for physiology and pathology , 2004, Neurochemistry International.
[71] J. Nathans,et al. Vascular Development in the Retina and Inner Ear Control by Norrin and Frizzled-4, a High-Affinity Ligand-Receptor Pair , 2004, Cell.
[72] M. Trojano,et al. Serum MMP-2 and MMP-9 are elevated in different multiple sclerosis subtypes , 2003, Journal of Neuroimmunology.
[73] Uwe Strähle,et al. Multiple regulatory elements with spatially and temporally distinct activities control neurogenin1 expression in primary neurons of the zebrafish embryo , 2003, Mechanisms of Development.
[74] H. Sato,et al. Suppression of membrane-type 1 matrix metalloproteinase (MMP)-mediated MMP-2 activation and tumor invasion by testican 3 and its splicing variant gene product, N-Tes. , 2001, Cancer research.
[75] P. Alliel,et al. Expression of the proteoglycan SPOCK during mouse embryo development , 2000, Mechanisms of Development.
[76] A. Schinkel,et al. P-Glycoprotein, a gatekeeper in the blood-brain barrier. , 1999, Advanced drug delivery reviews.
[77] A. Camuzat,et al. Structure and Cellular Distribution of Mouse Brain Testican , 1996, The Journal of Biological Chemistry.
[78] E. Berg,et al. Novel mouse endothelial cell surface marker is suppressed during differentiation of the blood brain barrier , 1995, Developmental dynamics : an official publication of the American Association of Anatomists.
[79] G. Perry,et al. Immunocytochemical localization of the erythroid glucose transporter: abundance in tissues with barrier functions , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[80] R. Janzer,et al. Astrocytes induce blood–brain barrier properties in endothelial cells , 1987, Nature.
[81] M. Wiley,et al. Developing nervous tissue induces formation of blood-brain barrier characteristics in invading endothelial cells: a study using quail--chick transplantation chimeras. , 1981, Developmental biology.
[82] Thomas S. Reese,et al. FINE STRUCTURAL LOCALIZATION OF A BLOOD-BRAIN BARRIER TO EXOGENOUS PEROXIDASE , 1967, The Journal of cell biology.
[83] Hartwig Wolburg,et al. Choroid plexus: biology and pathology , 2009, Acta Neuropathologica.
[84] E. Hansson,et al. Astrocyte–endothelial interactions at the blood–brain barrier , 2006, Nature Reviews Neuroscience.
[85] C. Edgell,et al. Testican-1: a differentially expressed proteoglycan with protease inhibiting activities. , 2004, International review of cytology.