A subset of Kupffer cells regulates metabolism through the expression of CD36.
暂无分享,去创建一个
F. Ginhoux | M. Bajénoff | E. Newell | L. Ng | Jinmiao Chen | Bernett Lee | A. Larbi | M. Aouadi | B. Malleret | Zhaoyuan Liu | J. Lum | Ahad Khalilnezhad | Xiao Meng Zhang | S. Howland | Wan Ting Kong | Akhila Balachander | Ankur Sharma | C. Morgantini | V. Azzimato | Emelie Barreby | Connie Xu | M. Iannacone | S. Chakarov | Ivy Low | N. Venteclef | L. Yvan-Charvet | R. Sobota | W. W. Phoo | G. Dunsmore | O. Cexus | F. Andreata | N. Ang | Valeria Fumagalli | Ping Chen | Xenia Ficht | Camille Blériot | Rhea Pai | Wei Guo | Grégoire Gessain | Muhammad Faris Bin Mohd Kairi | Foo Shihui | R. Ballaire | Giorgia De Simone | G. Wan | Josephine Lum | Marc Bajénoff | Olivier N F Cexus | Garett Dunsmore
[1] F. Ginhoux,et al. Identification of a Kupffer cell subset capable of reverting the T cell dysfunction induced by hepatocellular priming , 2021, Immunity.
[2] Amit A. Patel,et al. Cross-tissue single-cell landscape of human monocytes and macrophages in health and disease. , 2021, Immunity.
[3] Aleksandra A. Kolodziejczyk,et al. Acute liver failure is regulated by MYC- and microbiome-dependent programs , 2020, Nature Medicine.
[4] R. Yeung,et al. Human Liver Macrophage Subsets Defined by CD32 , 2020, Frontiers in Immunology.
[5] Justine Jia Wen Seow,et al. Onco-fetal Reprogramming of Endothelial Cells Drives Immunosuppressive Macrophages in Hepatocellular Carcinoma , 2020, Cell.
[6] P. Rada,et al. Understanding lipotoxicity in NAFLD pathogenesis: is CD36 a key driver? , 2020, Cell Death & Disease.
[7] Y. Saeys,et al. Osteopontin Expression Identifies a Subset of Recruited Macrophages Distinct from Kupffer Cells in the Fatty Liver , 2020, Immunity.
[8] F. Ginhoux,et al. Determinants of Resident Tissue Macrophage Identity and Function. , 2020, Immunity.
[9] G. Marcelin,et al. Impaired Kupffer Cell Self-Renewal Alters the Liver Response to Lipid Overload during Non-alcoholic Steatohepatitis. , 2020, Immunity.
[10] C. Glass,et al. Niche-Specific Reprogramming of Epigenetic Landscapes Drives Myeloid Cell Diversity in Nonalcoholic Steatohepatitis. , 2020, Immunity.
[11] V. Lauschke,et al. Liver macrophages inhibit the endogenous antioxidant response in obesity-associated insulin resistance , 2020, Science Translational Medicine.
[12] F. Ginhoux,et al. Understanding the Heterogeneity of Resident Liver Macrophages , 2019, Front. Immunol..
[13] Y. Saeys,et al. Stellate Cells, Hepatocytes, and Endothelial Cells Imprint the Kupffer Cell Identity on Monocytes Colonizing the Liver Macrophage Niche , 2019, Immunity.
[14] C. Glass,et al. Liver-Derived Signals Sequentially Reprogram Myeloid Enhancers to Initiate and Maintain Kupffer Cell Identity. , 2019, Immunity.
[15] C. Ponting,et al. Resolving the fibrotic niche of human liver cirrhosis at single cell level , 2019, Nature.
[16] F. Ginhoux,et al. Fate Mapping via Ms4a3-Expression History Traces Monocyte-Derived Cells , 2019, Cell.
[17] Jiandie D. Lin,et al. Landscape of Intercellular Crosstalk in Healthy and NASH Liver Revealed by Single-Cell Secretome Gene Analysis. , 2019, Molecular cell.
[18] R. Gottardo,et al. A Targeted Multi-omic Analysis Approach Measures Protein Expression and Low-Abundance Transcripts on the Single-Cell Level , 2019, bioRxiv.
[19] I. Amit,et al. Lipid-Associated Macrophages Control Metabolic Homeostasis in a Trem2-Dependent Manner , 2019, Cell.
[20] Dominic Grün,et al. A Human Liver Cell Atlas reveals Heterogeneity and Epithelial Progenitors , 2019, Nature.
[21] Paul J. Hoffman,et al. Comprehensive Integration of Single-Cell Data , 2018, Cell.
[22] C. Kutter,et al. Liver macrophages regulate systemic metabolism through non-inflammatory factors , 2019, Nature metabolism.
[23] F. Ginhoux,et al. Two distinct interstitial macrophage populations coexist across tissues in specific subtissular niches , 2019, Science.
[24] Lai Guan Ng,et al. Dimensionality reduction for visualizing single-cell data using UMAP , 2018, Nature Biotechnology.
[25] Maxim N. Artyomov,et al. Transcriptome Analysis Reveals Nonfoamy Rather Than Foamy Plaque Macrophages Are Proinflammatory in Atherosclerotic Murine Models , 2018, Circulation research.
[26] Gary D Bader,et al. Single cell RNA sequencing of human liver reveals distinct intrahepatic macrophage populations , 2018, Nature Communications.
[27] Principal Investigators,et al. Single-cell transcriptomics of 20 mouse organs creates a Tabula Muris , 2018 .
[28] I. Amit,et al. Paired-cell sequencing enables spatial gene expression mapping of liver endothelial cells , 2018, Nature Biotechnology.
[29] Y. Saeys,et al. The Transcription Factor ZEB2 Is Required to Maintain the Tissue-Specific Identities of Macrophages , 2018, Immunity.
[30] Jun Kit Wang,et al. Hyaluronan Receptor LYVE‐1‐Expressing Macrophages Maintain Arterial Tone through Hyaluronan‐Mediated Regulation of Smooth Muscle Cell Collagen , 2018, Immunity.
[31] Florent Ginhoux,et al. Hemogenic Endothelial Fate Mapping Reveals Dual Developmental Origin of Mast Cells , 2018, Immunity.
[32] Eyal David,et al. Re-evaluating Microglia Expression Profiles Using RiboTag and Cell Isolation Strategies , 2018, Nature Immunology.
[33] Paul Hoffman,et al. Integrating single-cell transcriptomic data across different conditions, technologies, and species , 2018, Nature Biotechnology.
[34] J. Iredale,et al. An efficient method to isolate Kupffer cells eliminating endothelial cell contamination and selective bias , 2018, Journal of leukocyte biology.
[35] S. Orkin,et al. Mapping the Mouse Cell Atlas by Microwell-Seq , 2018, Cell.
[36] A. Geerts,et al. Non-alcoholic steatohepatitis induces transient changes within the liver macrophage pool. , 2017, Cellular immunology.
[37] M. Czech,et al. Decreasing CB1 receptor signaling in Kupffer cells improves insulin sensitivity in obese mice , 2017, Molecular metabolism.
[38] J. Potash,et al. COMBAT: A Combined Association Test for Genes Using Summary Statistics , 2017, Genetics.
[39] William Ritchie,et al. A Liver Capsular Network of Monocyte‐Derived Macrophages Restricts Hepatic Dissemination of Intraperitoneal Bacteria by Neutrophil Recruitment , 2017, Immunity.
[40] S. Koo,et al. RORα Induces KLF4-Mediated M2 Polarization in the Liver Macrophages that Protect against Nonalcoholic Steatohepatitis. , 2017, Cell reports.
[41] J. Aerts,et al. SCENIC: Single-cell regulatory network inference and clustering , 2017, Nature Methods.
[42] M. Guilliams,et al. Does niche competition determine the origin of tissue-resident macrophages? , 2017, Nature Reviews Immunology.
[43] V. Kuchroo,et al. Phagocytosis imprints heterogeneity in tissue-resident macrophages , 2017, The Journal of experimental medicine.
[44] F. Tacke,et al. Liver macrophages in tissue homeostasis and disease , 2017, Nature Reviews Immunology.
[45] I. Amit,et al. Single-cell spatial reconstruction reveals global division of labor in the mammalian liver , 2016, Nature.
[46] B. A. David,et al. Combination of Mass Cytometry and Imaging Analysis Reveals Origin, Location, and Functional Repopulation of Liver Myeloid Cells in Mice. , 2016, Gastroenterology.
[47] Jane E. Dalton,et al. Bone marrow-derived and resident liver macrophages display unique transcriptomic signatures but similar biological functions , 2016, Journal of hepatology.
[48] A. Lonardo,et al. Global epidemiology of nonalcoholic fatty liver disease: Meta‐analytic assessment of prevalence, incidence, and outcomes , 2016, Hepatology.
[49] Christoph Bock,et al. Specification of tissue-resident macrophages during organogenesis , 2016, Science.
[50] Hao Chen,et al. Cytofkit: A Bioconductor Package for an Integrated Mass Cytometry Data Analysis Pipeline , 2016, PLoS Comput. Biol..
[51] L. Henry,et al. Global epidemiology of nonalcoholic fatty liver disease—Meta‐analytic assessment of prevalence, incidence, and outcomes , 2016, Hepatology.
[52] P. Kubes,et al. A Reservoir of Mature Cavity Macrophages that Can Rapidly Invade Visceral Organs to Affect Tissue Repair , 2016, Cell.
[53] K. Kanki,et al. Liver Resident Macrophages (Kupffer Cells) Share Several Functional Antigens in Common with Endothelial Cells , 2016, Scandinavian journal of immunology.
[54] Y. Saeys,et al. Bone marrow-derived monocytes give rise to self-renewing and fully differentiated Kupffer cells , 2016, Nature Communications.
[55] Yang Cheng,et al. Categorical Analysis of Human T Cell Heterogeneity with One-Dimensional Soli-Expression by Nonlinear Stochastic Embedding , 2016, The Journal of Immunology.
[56] F. Ginhoux,et al. C-Myb(+) erythro-myeloid progenitor-derived fetal monocytes give rise to adult tissue-resident macrophages. , 2015, Immunity.
[57] Jessica L. Cohen,et al. Activated Kupffer cells inhibit insulin sensitivity in obese mice , 2015, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[58] Gérard Eberl,et al. Liver-resident macrophage necroptosis orchestrates type 1 microbicidal inflammation and type-2-mediated tissue repair during bacterial infection. , 2015, Immunity.
[59] Matthew E. Ritchie,et al. limma powers differential expression analyses for RNA-sequencing and microarray studies , 2015, Nucleic acids research.
[60] Åsa K. Björklund,et al. Full-length RNA-seq from single cells using Smart-seq2 , 2014, Nature Protocols.
[61] Albert Tran,et al. M2 Kupffer cells promote M1 Kupffer cell apoptosis: A protective mechanism against alcoholic and nonalcoholic fatty liver disease , 2014, Hepatology.
[62] Åsa K. Björklund,et al. Smart-seq2 for sensitive full-length transcriptome profiling in single cells , 2013, Nature Methods.
[63] M. Cybulsky,et al. Faculty Opinions recommendation of Tissue-resident macrophages self-maintain locally throughout adult life with minimal contribution from circulating monocytes. , 2013 .
[64] A. Mildner,et al. Fate mapping reveals origins and dynamics of monocytes and tissue macrophages under homeostasis. , 2013, Immunity.
[65] J. Pollard,et al. A Lineage of Myeloid Cells Independent of Myb and Hematopoietic Stem Cells , 2012, Science.
[66] Steffen Jung,et al. Notch2 receptor signaling controls functional differentiation of dendritic cells in the spleen and intestine. , 2011, Immunity.
[67] Colin N. Dewey,et al. RSEM: accurate transcript quantification from RNA-Seq data with or without a reference genome , 2011, BMC Bioinformatics.
[68] M. O’Connor,et al. Glucan particles for selective delivery of siRNA to phagocytic cells in mice. , 2011, The Biochemical journal.
[69] Davis J. McCarthy,et al. edgeR: a Bioconductor package for differential expression analysis of digital gene expression data , 2009, Bioinform..
[70] R. Palmiter,et al. Cell-type-specific isolation of ribosome-associated mRNA from complex tissues , 2009, Proceedings of the National Academy of Sciences.
[71] R. Silverstein,et al. CD36, a Scavenger Receptor Involved in Immunity, Metabolism, Angiogenesis, and Behavior , 2009, Science Signaling.
[72] M. Czech,et al. Orally delivered siRNA targeting macrophage Map4k4 suppresses systemic inflammation , 2009, Nature.
[73] Sofianos Andrikopoulos,et al. Evaluating the glucose tolerance test in mice. , 2008, American journal of physiology. Endocrinology and metabolism.
[74] R. Pierce,et al. Kupffer cell heterogeneity: functional properties of bone marrow derived and sessile hepatic macrophages. , 2007, Blood.
[75] K. Moore,et al. Scavenger Receptors Class A-I/II and CD36 Are the Principal Receptors Responsible for the Uptake of Modified Low Density Lipoprotein Leading to Lipid Loading in Macrophages* , 2002, The Journal of Biological Chemistry.
[76] K. Jungermann,et al. Heterogeneity of liver parenchymal cells , 1978 .
[77] F. Ginhoux,et al. Kupffer Cell Characterization by Mass Cytometry. , 2020, Methods in molecular biology.
[78] M. Aouadi,et al. Glucan-Encapsulated siRNA Particles (GeRPs) for Specific Gene Silencing in Adipose Tissue Macrophages. , 2019, Methods in molecular biology.
[79] M. Aouadi,et al. Isolation of Kupffer Cells and Hepatocytes from a Single Mouse Liver. , 2017, Methods in molecular biology.
[80] Thomas R. Gingeras,et al. STAR: ultrafast universal RNA-seq aligner , 2013, Bioinform..
[81] Chao-Yung Wang,et al. A mouse model of diet-induced obesity and insulin resistance. , 2012, Methods in molecular biology.
[82] J. George,et al. Animal models of nonalcoholic fatty liver disease , 2011, Nature Reviews Gastroenterology &Hepatology.
[83] N. Van Rooijen,et al. Liposomes for specific depletion of macrophages from organs and tissues. , 2010, Methods in molecular biology.
[84] R. Gebhardt. Metabolic zonation of the liver: regulation and implications for liver function. , 1992, Pharmacology & therapeutics.