Exosomes as mediators of intercellular crosstalk in metabolism.
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J. Olefsky | Wei Ying | R. Isaac | F. C. Reis
[1] P. Fischer-Posovszky,et al. Extracellular vesicle-based interorgan transport of mitochondria from energetically stressed adipocytes. , 2021, Cell metabolism.
[2] J. Olefsky,et al. Hepatocyte-derived exosomes from early onset obese mice promote insulin sensitivity through miR-3075 , 2021, Nature Metabolism.
[3] S. Klein,et al. Associations among adipose tissue immunology, inflammation and exosomes and insulin sensitivity in people with obesity and nonalcoholic fatty liver disease. , 2021, Gastroenterology.
[4] Panwen Wang,et al. ω-3PUFA supplementation ameliorates adipose tissue inflammation and insulin-stimulated glucose disposal in subjects with obesity: a potential role for apolipoprotein E , 2021, International Journal of Obesity.
[5] Jin Fan,et al. Exosomal miR-155 from M1-polarized macrophages promotes EndoMT and impairs mitochondrial function via activating NF-κB signaling pathway in vascular endothelial cells after traumatic spinal cord injury , 2021, Redox biology.
[6] J. Olefsky,et al. Chronic tissue inflammation and metabolic disease , 2021, Genes & development.
[7] S. Gurunathan,et al. A Comprehensive Review on Factors Influences Biogenesis, Functions, Therapeutic and Clinical Implications of Exosomes , 2021, International journal of nanomedicine.
[8] J. Olefsky,et al. MiR-690, an exosomal-derived miRNA from M2-polarized macrophages, improves insulin sensitivity in obese mice. , 2021, Cell metabolism.
[9] A. Saltiel. Insulin signaling in health and disease. , 2021, The Journal of clinical investigation.
[10] A. Ceriello,et al. Extracellular vesicle-shuttled miRNAs: a critical appraisal of their potential as nano-diagnostics and nano-therapeutics in type 2 diabetes mellitus and its cardiovascular complications , 2021, Theranostics.
[11] Yueqin Liu,et al. Regulation of exosome production and cargo sorting , 2021, International journal of biological sciences.
[12] S. Hirano,et al. Scavenger receptor MARCO contributes to cellular internalization of exosomes by dynamin-dependent endocytosis and macropinocytosis , 2020, Scientific Reports.
[13] J. Jankovičová,et al. Tetraspanins, More than Markers of Extracellular Vesicles in Reproduction , 2020, International journal of molecular sciences.
[14] Xuan T T Dang,et al. Extracellular Vesicles as an Efficient and Versatile System for Drug Delivery , 2020, Cells.
[15] Amber L. Simpson,et al. Extracellular Vesicle and Particle Biomarkers Define Multiple Human Cancers , 2020, Cell.
[16] B. Costa-Silva,et al. DNA in extracellular vesicles: biological and clinical aspects , 2020, Molecular oncology.
[17] P. Gleeson,et al. Macropinocytosis in Different Cell Types: Similarities and Differences , 2020, Membranes.
[18] G. Mias,et al. Characterizing Extracellular Vesicles and Their Diverse RNA Contents , 2020, Frontiers in Genetics.
[19] S. Agarwal,et al. Extracellular vesicles: novel communicators in lung diseases , 2020, Respiratory Research.
[20] Douglas A. Simonetto,et al. Characterization and Proteome of Circulating Extracellular Vesicles as Potential Biomarkers for NASH , 2020, Hepatology communications.
[21] Z. Qin,et al. Kupffer cells promote T-cell hepatitis by producing CXCL10 and limiting liver sinusoidal endothelial cell permeability , 2020, Theranostics.
[22] L. Laurent,et al. RNA delivery by extracellular vesicles in mammalian cells and its applications , 2020, Nature Reviews Molecular Cell Biology.
[23] Yang Jin,et al. Post-translational Modification Regulates Formation and Cargo-Loading of Extracellular Vesicles , 2020, Frontiers in Immunology.
[24] D. Sabry,et al. The effect of exosomes derived from mesenchymal stem cells in the treatment of induced type 1 diabetes mellitus in rats , 2020, Biotechnology Letters.
[25] C. Glass,et al. Niche-Specific Reprogramming of Epigenetic Landscapes Drives Myeloid Cell Diversity in Nonalcoholic Steatohepatitis. , 2020, Immunity.
[26] Heedoo Lee,et al. Sorting Mechanisms for MicroRNAs into Extracellular Vesicles and Their Associated Diseases , 2020, Cells.
[27] J. Banales,et al. Extracellular Vesicles in NAFLD/ALD: From Pathobiology to Therapy , 2020, Cells.
[28] A. Llorente,et al. An emerging focus on lipids in extracellular vesicles. , 2020, Advanced drug delivery reviews.
[29] Shuiliang Wang,et al. Mesenchymal stem cell-derived exosomes protect beta cells against hypoxia-induced apoptosis via miR-21 by alleviating ER stress and inhibiting p38 MAPK phosphorylation , 2020, Stem Cell Research & Therapy.
[30] G. Ding,et al. Exosomal miR‐103‐3p from LPS‐activated THP‐1 macrophage contributes to the activation of hepatic stellate cells , 2020, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[31] J. Gruenberg,et al. ALIX- and ESCRT-III–dependent sorting of tetraspanins to exosomes , 2020, The Journal of cell biology.
[32] Raghu Kalluri,et al. The biology, function, and biomedical applications of exosomes , 2020, Science.
[33] W. Bao,et al. The mechanisms and treatments for sarcopenia: could exosomes be a perspective research strategy in the future? , 2020, Journal of cachexia, sarcopenia and muscle.
[34] Yaohui Nie,et al. Multivesicular body and exosome pathway responses to acute exercise , 2020, Experimental physiology.
[35] Alissa M. Weaver,et al. EPHB2 carried on small extracellular vesicles induces tumor angiogenesis via activation of ephrin reverse signaling. , 2019, JCI insight.
[36] Zhongwen Qi,et al. Exosomes in ischemic heart disease: novel carriers for bioinformation. , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[37] Samar H. Ibrahim,et al. Integrin β1-enriched Extracellular Vesicles Mediate Monocyte Adhesion and Promote Liver Inflammation in Murine NASH. , 2019, Journal of hepatology.
[38] Limin Li,et al. Biogenesis and function of extracellular miRNAs , 2019, ExRNA.
[39] W. Qin,et al. Exosomes and Extracellular RNA in Muscle and Bone Aging and Crosstalk , 2019, Current Osteoporosis Reports.
[40] H. Stenmark,et al. The many functions of ESCRTs , 2019, Nature Reviews Molecular Cell Biology.
[41] Zahra Salmasi,et al. Potential of stem cell‐derived exosomes to regenerate β islets through Pdx‐1 dependent mechanism in a rat model of type 1 diabetes , 2019, Journal of cellular physiology.
[42] G. Camussi,et al. HLSC-Derived Extracellular Vesicles Attenuate Liver Fibrosis and Inflammation in a Murine Model of Non-alcoholic Steatohepatitis , 2019, Molecular therapy : the journal of the American Society of Gene Therapy.
[43] I. Shimomura,et al. Interorgan communication by exosomes, adipose tissue, and adiponectin in metabolic syndrome. , 2019, The Journal of clinical investigation.
[44] Jin Tan,et al. The role of microvesicles containing microRNAs in vascular endothelial dysfunction , 2019, Journal of cellular and molecular medicine.
[45] J. Falcón-Pérez,et al. Assessing the role of surface glycans of extracellular vesicles on cellular uptake , 2019, Scientific Reports.
[46] S. Rome,et al. Skeletal Muscle-Released Extracellular Vesicles: State of the Art , 2019, Front. Physiol..
[47] Jiandie D. Lin,et al. Landscape of Intercellular Crosstalk in Healthy and NASH Liver Revealed by Single-Cell Secretome Gene Analysis. , 2019, Molecular cell.
[48] Ting Liu,et al. Adipose tissue macrophage-derived exosomal miR-29a regulates obesity-associated insulin resistance. , 2019, Biochemical and biophysical research communications.
[49] I. Amit,et al. Lipid-Associated Macrophages Control Metabolic Homeostasis in a Trem2-Dependent Manner , 2019, Cell.
[50] Michael Zhuo Wang,et al. Overview of Extracellular Vesicles, Their Origin, Composition, Purpose, and Methods for Exosome Isolation and Analysis , 2019, Cells.
[51] Z. Ouyang,et al. Single cell transcriptomics based-MacSpectrum reveals novel macrophage activation signatures in diseases. , 2019, JCI insight.
[52] Peifeng Li,et al. Emerging Function and Clinical Values of Exosomal MicroRNAs in Cancer , 2019, Molecular therapy. Nucleic acids.
[53] Wayne O. Miles,et al. Beyond CLIP: advances and opportunities to measure RBP–RNA and RNA–RNA interactions , 2019, Nucleic acids research.
[54] C. Kenific,et al. Exosome-Mediated Metastasis: Communication from a Distance. , 2019, Developmental cell.
[55] Qiong Wu,et al. Reduced delivery of epididymal adipocyte‐derived exosomal resistin is essential for melatonin ameliorating hepatic steatosis in mice , 2019, Journal of pineal research.
[56] T. Nielsen,et al. Extracellular Vesicle Encapsulated MicroRNAs in Patients with Type 2 Diabetes Are Affected by Metformin Treatment , 2019, Journal of clinical medicine.
[57] A. Akalin,et al. Global identification of functional microRNA-mRNA interactions in Drosophila , 2019, Nature Communications.
[58] R. Schiffelers,et al. Extracellular vesicle-based therapeutics: natural versus engineered targeting and trafficking , 2019, Experimental & Molecular Medicine.
[59] Isaac T S Li,et al. Challenges and opportunities in exosome research—Perspectives from biology, engineering, and cancer therapy , 2019, APL bioengineering.
[60] A. Tonevitsky,et al. Transcriptome of Extracellular Vesicles: State-of-the-Art , 2019, Front. Immunol..
[61] A. Nomani,et al. A lipase-independent pathway of lipid release and immune modulation by adipocytes , 2019, Science.
[62] Y. Zhang,et al. Exosomes: biogenesis, biologic function and clinical potential , 2019, Cell & Bioscience.
[63] Jinju Wang,et al. Exosomes are the novel players involved in the beneficial effects of exercise on type 2 diabetes , 2019, Journal of cellular physiology.
[64] A. Xu,et al. Adipocyte-secreted exosomal microRNA-34a inhibits M2 macrophage polarization to promote obesity-induced adipose inflammation , 2019, The Journal of clinical investigation.
[65] P. Scherer,et al. Adipogenesis and metabolic health , 2019, Nature Reviews Molecular Cell Biology.
[66] Zixian Wang,et al. Exosomal transfer of obesity adipose tissue for decreased miR-141-3p mediate insulin resistance of hepatocytes , 2019, International journal of biological sciences.
[67] Jing Xu,et al. Minimal information for studies of extracellular vesicles 2018 (MISEV2018): a position statement of the International Society for Extracellular Vesicles and update of the MISEV2014 guidelines , 2018, Journal of Extracellular Vesicles.
[68] Jieun Kim,et al. Liver-Derived Exosomes and Their Implications in Liver Pathobiology , 2018, International journal of molecular sciences.
[69] S. Kalko,et al. Obesity-associated exosomal miRNAs modulate glucose and lipid metabolism in mice , 2018, Proceedings of the National Academy of Sciences.
[70] L. Eliasson,et al. miR-483-5p associates with obesity and insulin resistance and independently associates with new onset diabetes mellitus and cardiovascular disease , 2018, PloS one.
[71] F. van Nieuwerburgh,et al. The presence of extracellular microRNAs in the media of cultured Drosophila cells , 2018, Scientific Reports.
[72] L. Russo,et al. Properties and functions of adipose tissue macrophages in obesity , 2018, Immunology.
[73] J. Cáceres,et al. Post-transcriptional control of miRNA biogenesis , 2018, RNA.
[74] R. Andriantsitohaina,et al. Phenotyping of circulating extracellular vesicles (EVs) in obesity identifies large EVs as functional conveyors of Macrophage Migration Inhibitory Factor , 2018, Molecular metabolism.
[75] D. Towler,et al. An Endothelial-to-Adipocyte Extracellular Vesicle Axis Governed by Metabolic State , 2018, Cell.
[76] Sudarshan R Malla,et al. Exosomes, Their Biogenesis and Role in Inter-Cellular Communication, Tumor Microenvironment and Cancer Immunotherapy , 2018, Vaccines.
[77] T. Ma,et al. MicroRNA-132, Delivered by Mesenchymal Stem Cell-Derived Exosomes, Promote Angiogenesis in Myocardial Infarction , 2018, Stem cells international.
[78] Valentina R Minciacchi,et al. Large extracellular vesicles carry most of the tumour DNA circulating in prostate cancer patient plasma , 2018, Journal of extracellular vesicles.
[79] M. Smit,et al. Biogenesis and function of extracellular vesicles in cancer. , 2018, Pharmacology & therapeutics.
[80] D. Rees,et al. Evidence for Adipocyte-Derived Extracellular Vesicles in the Human Circulation , 2018, Endocrinology.
[81] A. Andrews,et al. Extracellular vesicles: mediators and biomarkers of pathology along CNS barriers , 2018, Fluids and Barriers of the CNS.
[82] M. Bullock,et al. Exosomal microRNAs (exomiRs): Small molecules with a big role in cancer , 2018, Cancer letters.
[83] M. Mattson,et al. Altered Extracellular Vesicle Concentration, Cargo, and Function in Diabetes , 2018, Diabetes.
[84] J. Meldolesi. Exosomes and Ectosomes in Intercellular Communication , 2018, Current Biology.
[85] F. Milagro,et al. Effects of exosomes from LPS-activated macrophages on adipocyte gene expression, differentiation, and insulin-dependent glucose uptake , 2018, Journal of Physiology and Biochemistry.
[86] Gene W. Yeo,et al. Systematic Discovery of RNA Binding Proteins that Regulate MicroRNA Levels. , 2018, Molecular cell.
[87] M. Tarnopolsky,et al. Exosomes as Mediators of the Systemic Adaptations to Endurance Exercise. , 2018, Cold Spring Harbor perspectives in medicine.
[88] A. Belló-Klein,et al. Circulating extracellular vesicles in the aging process: impact of aerobic exercise , 2018, Molecular and Cellular Biochemistry.
[89] L. Dimeglio,et al. Beta cell extracellular vesicle miR-21-5p cargo is increased in response to inflammatory cytokines and serves as a biomarker of type 1 diabetes , 2018, Diabetologia.
[90] P. Laktionov,et al. Isolation of Extracellular Vesicles: General Methodologies and Latest Trends , 2018, BioMed research international.
[91] T. Tanahashi,et al. Mechanism of recipient cell-dependent differences in exosome uptake , 2018, BMC Cancer.
[92] W. Xue,et al. Comparison of the characteristics of macrophages derived from murine spleen, peritoneal cavity, and bone marrow , 2017, Journal of Zhejiang University-SCIENCE B.
[93] A. Llorente,et al. Detection of circulating miRNAs: comparative analysis of extracellular vesicle-incorporated miRNAs and cell-free miRNAs in whole plasma of prostate cancer patients , 2017, BMC Cancer.
[94] Jong Bae Seo,et al. Adipose Tissue Macrophage-Derived Exosomal miRNAs Can Modulate In Vivo and In Vitro Insulin Sensitivity , 2017, Cell.
[95] M. Boutros,et al. Neutral sphingomyelinases control extracellular vesicles budding from the plasma membrane , 2017, Journal of extracellular vesicles.
[96] Saumya Das,et al. miRNA signatures of insulin resistance in obesity , 2017, Obesity.
[97] S. Herzig,et al. Adipose tissue: between the extremes , 2017, The EMBO journal.
[98] Guodong Yang,et al. Exosome Mediated Delivery of miR-124 Promotes Neurogenesis after Ischemia , 2017, Molecular therapy. Nucleic acids.
[99] L. Moreno,et al. Hepatocyte-secreted extracellular vesicles modify blood metabolome and endothelial function by an arginase-dependent mechanism , 2017, Scientific Reports.
[100] M. Vidal,et al. New insights into the function of Rab GTPases in the context of exosomal secretion , 2017, Small GTPases.
[101] C. Kahn,et al. Adipose-Derived Circulating miRNAs Regulate Gene Expression in Other Tissues , 2017, Nature.
[102] Yulin Li,et al. Macrophage-Derived mir-155-Containing Exosomes Suppress Fibroblast Proliferation and Promote Fibroblast Inflammation during Cardiac Injury. , 2017, Molecular therapy : the journal of the American Society of Gene Therapy.
[103] H. Tilg,et al. Circulating MicroRNA-122 Is Associated With the Risk of New-Onset Metabolic Syndrome and Type 2 Diabetes , 2016, Diabetes.
[104] A. Weisz,et al. The RNA-Binding Protein SYNCRIP Is a Component of the Hepatocyte Exosomal Machinery Controlling MicroRNA Sorting. , 2016, Cell reports.
[105] C. Cogoni,et al. MicroRNA in Control of Gene Expression: An Overview of Nuclear Functions , 2016, International journal of molecular sciences.
[106] M. Tarnopolsky,et al. The potential of endurance exercise-derived exosomes to treat metabolic diseases , 2016, Nature Reviews Endocrinology.
[107] Wael Nassar,et al. Umbilical cord mesenchymal stem cells derived extracellular vesicles can safely ameliorate the progression of chronic kidney diseases , 2016, Biomaterials Research.
[108] R. Klein,et al. Exosomes mediate cell contact–independent ephrin-Eph signaling during axon guidance , 2016, The Journal of cell biology.
[109] N. LeBrasseur,et al. CXCL10-Mediates Macrophage, but not Other Innate Immune Cells-Associated Inflammation in Murine Nonalcoholic Steatohepatitis , 2016, Scientific Reports.
[110] P. Scherer,et al. Targeting adipose tissue in the treatment of obesity-associated diabetes , 2016, Nature Reviews Drug Discovery.
[111] S. Rome,et al. miRNA-375 a Sensor of Glucotoxicity Is Altered in the Serum of Children with Newly Diagnosed Type 1 Diabetes , 2016, Journal of diabetes research.
[112] G. Gores,et al. Lipid-Induced Signaling Causes Release of Inflammatory Extracellular Vesicles From Hepatocytes. , 2016, Gastroenterology.
[113] Gene W. Yeo,et al. Robust transcriptome-wide discovery of RNA binding protein binding sites with enhanced CLIP (eCLIP) , 2016, Nature Methods.
[114] R. Stienstra,et al. Adipose tissue macrophages: going off track during obesity , 2016, Diabetologia.
[115] G. Gores,et al. Mixed lineage kinase 3 mediates release of C‐X‐C motif ligand 10–bearing chemotactic extracellular vesicles from lipotoxic hepatocytes , 2016, Hepatology.
[116] R. Schekman,et al. Y-box protein 1 is required to sort microRNAs into exosomes in cells and in a cell-free reaction , 2016, bioRxiv.
[117] P. Quesenberry,et al. Role of Alix in miRNA packaging during extracellular vesicle biogenesis , 2016, International journal of molecular medicine.
[118] M. Yin,et al. Hepatocytes release ceramide-enriched pro-inflammatory extracellular vesicles in an IRE1α-dependent manner[S] , 2016, Journal of Lipid Research.
[119] Pieter Vader,et al. Display of GPI-anchored anti-EGFR nanobodies on extracellular vesicles promotes tumour cell targeting , 2016, Journal of extracellular vesicles.
[120] Charles M. Rice,et al. miRNA–target chimeras reveal miRNA 3′-end pairing as a major determinant of Argonaute target specificity , 2015, Nature Communications.
[121] D. Mukhopadhyay,et al. Exosome Adherence and Internalization by Hepatic Stellate Cells Triggers Sphingosine 1-Phosphate-dependent Migration* , 2015, The Journal of Biological Chemistry.
[122] Gary K. Schwartz,et al. Tumour exosome integrins determine organotropic metastasis , 2015, Nature.
[123] S. Rome,et al. Diagnostic Value of Cell-free Circulating MicroRNAs for Obesity and Type 2 Diabetes: A Meta-analysis. , 2015, Journal of molecular biomarkers & diagnosis.
[124] J. Yang,et al. Weight-reduction through a low-fat diet causes differential expression of circulating microRNAs in obese C57BL/6 mice , 2015, BMC Genomics.
[125] D. Brigstock,et al. Suppression of fibrogenic signaling in hepatic stellate cells by Twist1-dependent microRNA-214 expression: Role of exosomes in horizontal transfer of Twist1. , 2015, American journal of physiology. Gastrointestinal and liver physiology.
[126] R. McLeod,et al. Fatty acids increase adiponectin secretion through both classical and exosome pathways. , 2015, Biochimica et biophysica acta.
[127] E. Pinatel,et al. Lipid-Induced Hepatocyte-Derived Extracellular Vesicles Regulate Hepatic Stellate Cells via MicroRNA Targeting Peroxisome Proliferator-Activated Receptor-γ , 2015, Cellular and molecular gastroenterology and hepatology.
[128] D. Srivastava,et al. microRNAs as Developmental Regulators. , 2015, Cold Spring Harbor perspectives in biology.
[129] Junfang Zhan,et al. Profiling peripheral microRNAs in obesity and type 2 diabetes mellitus , 2015, APMIS : acta pathologica, microbiologica, et immunologica Scandinavica.
[130] Li Shi,et al. Inflamed macrophage microvesicles induce insulin resistance in human adipocytes , 2015, Nutrition & Metabolism.
[131] A. Feldstein,et al. Microparticles Release by Adipocytes Act as “Find-Me” Signals to Promote Macrophage Migration , 2015, PloS one.
[132] S. Rome,et al. Horizontal transfer of exosomal microRNAs transduce apoptotic signals between pancreatic beta-cells , 2015, Cell Communication and Signaling.
[133] P. García-Rovés,et al. Circulating miR-192 and miR-193b are markers of prediabetes and are modulated by an exercise intervention. , 2015, The Journal of clinical endocrinology and metabolism.
[134] Weiqing Wang,et al. Elevated circulating microRNA-122 is associated with obesity and insulin resistance in young adults. , 2015, European journal of endocrinology.
[135] S. Niida,et al. Inflammation-induced endothelial cell-derived extracellular vesicles modulate the cellular status of pericytes , 2015, Scientific Reports.
[136] Sha Li,et al. Exosome and Exosomal MicroRNA: Trafficking, Sorting, and Function , 2015, Genom. Proteom. Bioinform..
[137] L. O’Driscoll,et al. Biological properties of extracellular vesicles and their physiological functions , 2015, Journal of extracellular vesicles.
[138] A. Ashton,et al. Exosomes: Mechanisms of Uptake , 2015, Journal of circulating biomarkers.
[139] A. Wree,et al. Circulating Extracellular Vesicles with Specific Proteome and Liver MicroRNAs Are Potential Biomarkers for Liver Injury in Experimental Fatty Liver Disease , 2014, PloS one.
[140] Robert J Freishtat,et al. Adipocyte-derived Exosomal miRNAs: A Novel Mechanism for Obesity-Related Disease , 2014, Pediatric Research.
[141] George A Calin,et al. Cancer exosomes perform cell-independent microRNA biogenesis and promote tumorigenesis. , 2014, Cancer cell.
[142] J. Redzic,et al. Examination of the specificity of tumor cell derived exosomes with tumor cells in vitro. , 2014, Biochimica et biophysica acta.
[143] A. Hasty,et al. A decade of progress in adipose tissue macrophage biology , 2014, Immunological reviews.
[144] M. Graner,et al. Exosome proteomics reveals transcriptional regulator proteins with potential to mediate downstream pathways , 2014, Cancer science.
[145] E. N. Nolte-‘t Hoen,et al. Effect of extracellular vesicles of human adipose tissue on insulin signaling in liver and muscle cells , 2014, Obesity.
[146] M. Yáñez-Mó,et al. Tetraspanins in Extracellular Vesicle Formation and Function , 2014, Front. Immunol..
[147] M. Takigawa,et al. Exosomes mediate intercellular transfer of pro-fibrogenic connective tissue growth factor (CCN2) between hepatic stellate cells, the principal fibrotic cells in the liver. , 2014, Surgery.
[148] H. Vidal,et al. Exosomes participate in the alteration of muscle homeostasis during lipid-induced insulin resistance in mice , 2014, Diabetologia.
[149] Murray J. Cairns,et al. Activity-associated miRNA are packaged in Map1b-enriched exosomes released from depolarized neurons , 2014, Nucleic acids research.
[150] Tian Tian,et al. Exosome Uptake through Clathrin-mediated Endocytosis and Macropinocytosis and Mediating miR-21 Delivery* , 2014, The Journal of Biological Chemistry.
[151] S. Mornet,et al. Extracellular vesicles from blood plasma: determination of their morphology, size, phenotype and concentration , 2014, Journal of thrombosis and haemostasis : JTH.
[152] Takeshi Yasuda,et al. Radiation increases the cellular uptake of exosomes through CD29/CD81 complex formation. , 2014, Biochemical and biophysical research communications.
[153] M. Epple,et al. MSC-derived exosomes: a novel tool to treat therapy-refractory graft-versus-host disease , 2014, Leukemia.
[154] H. Wanibuchi,et al. Lipid synthesis is promoted by hypoxic adipocyte-derived exosomes in 3T3-L1 cells. , 2014, Biochemical and biophysical research communications.
[155] M. Record,et al. Proteomic Analysis of C2C12 Myoblast and Myotube Exosome-Like Vesicles: A New Paradigm for Myoblast-Myotube Cross Talk? , 2014, PloS one.
[156] D. Hutmacher,et al. Cavin-1/PTRF alters prostate cancer cell-derived extracellular vesicle content and internalization to attenuate extracellular vesicle-mediated osteoclastogenesis and osteoblast proliferation , 2014, Journal of extracellular vesicles.
[157] R. Pink,et al. Routes and mechanisms of extracellular vesicle uptake , 2014, Journal of extracellular vesicles.
[158] F. Sánchez‐Madrid,et al. Sumoylated hnRNPA2B1 controls the sorting of miRNAs into exosomes through binding to specific motifs , 2013, Nature Communications.
[159] Clotilde Théry,et al. Analysis of ESCRT functions in exosome biogenesis, composition and secretion highlights the heterogeneity of extracellular vesicles , 2013, Journal of Cell Science.
[160] M. Markiewicz,et al. Impact of Endothelial Microparticles on Coagulation, Inflammation, and Angiogenesis in Age-Related Vascular Diseases , 2013, Journal of aging research.
[161] M. Martínez-Larrad,et al. Serum Circulating microRNA Profiling for Identification of Potential Type 2 Diabetes and Obesity Biomarkers , 2013, PloS one.
[162] A. Feldstein,et al. Lipid-Induced Toxicity Stimulates Hepatocytes to Release Angiogenic Microparticles That Require Vanin-1 for Uptake by Endothelial Cells , 2013, Science Signaling.
[163] A. Ferrante,et al. The immune cells in adipose tissue , 2013, Diabetes, obesity & metabolism.
[164] Mattias Belting,et al. Exosome Uptake Depends on ERK1/2-Heat Shock Protein 27 Signaling and Lipid Raft-mediated Endocytosis Negatively Regulated by Caveolin-1 , 2013, The Journal of Biological Chemistry.
[165] J. Moreno-Navarrete,et al. Targeting the circulating microRNA signature of obesity. , 2013, Clinical chemistry.
[166] D. Tollervey,et al. Mapping the Human miRNA Interactome by CLASH Reveals Frequent Noncanonical Binding , 2013, Cell.
[167] S. Ciafrè,et al. microRNAs and RNA-binding proteins , 2013, RNA biology.
[168] A. Bigot,et al. In-depth analysis of the secretome identifies three major independent secretory pathways in differentiating human myoblasts. , 2012, Journal of proteomics.
[169] X. Chen,et al. Argonaute 2 Complexes Selectively Protect the Circulating MicroRNAs in Cell-Secreted Microvesicles , 2012, PloS one.
[170] Jasenka Guduric-Fuchs,et al. Selective extracellular vesicle-mediated export of an overlapping set of microRNAs from multiple cell types , 2012, BMC Genomics.
[171] G. Müller,et al. Microvesicles released from rat adipocytes and harboring glycosylphosphatidylinositol-anchored proteins transfer RNA stimulating lipid synthesis. , 2011, Cellular signalling.
[172] C. Bracken,et al. Experimental strategies for microRNA target identification , 2011, Nucleic acids research.
[173] M. Wood,et al. Delivery of siRNA to the mouse brain by systemic injection of targeted exosomes , 2011, Nature Biotechnology.
[174] K. Pritchard,et al. Endothelial microparticles induce inflammation in acute lung injury. , 2011, The Journal of surgical research.
[175] G. Krishnamoorthy,et al. Selective transfer of exosomes from oligodendrocytes to microglia by macropinocytosis , 2011, Journal of Cell Science.
[176] Françoise Dignat-George,et al. The Many Faces of Endothelial Microparticles , 2011, Arteriosclerosis, thrombosis, and vascular biology.
[177] D. Guidolin,et al. C2C12 myoblasts release micro-vesicles containing mtDNA and proteins involved in signal transduction. , 2010, Experimental cell research.
[178] Michael B. Stadler,et al. Characterizing Light-Regulated Retinal MicroRNAs Reveals Rapid Turnover as a Common Property of Neuronal MicroRNAs , 2010, Cell.
[179] Qiang Zhou,et al. Cellular Internalization of Exosomes Occurs Through Phagocytosis , 2010, Traffic.
[180] Y. Matsuki,et al. Secretory Mechanisms and Intercellular Transfer of MicroRNAs in Living Cells*♦ , 2010, The Journal of Biological Chemistry.
[181] Erkki Ruoslahti,et al. Tissue-penetrating delivery of compounds and nanoparticles into tumors. , 2009, Cancer cell.
[182] O. Voinnet,et al. Multivesicular bodies associate with components of miRNA effector complexes and modulate miRNA activity , 2009, Nature Cell Biology.
[183] A. Poliakov,et al. Adipose Tissue Exosome-Like Vesicles Mediate Activation of Macrophage-Induced Insulin Resistance , 2009, Diabetes.
[184] E. Izaurralde,et al. The GW182 protein family in animal cells: new insights into domains required for miRNA-mediated gene silencing. , 2009, RNA.
[185] A. Feldstein,et al. Lipotoxicity in nonalcoholic fatty liver disease: not all lipids are created equal , 2009, Expert review of gastroenterology & hepatology.
[186] T. Suda,et al. Bidirectional Signaling through EphrinA2-EphA2 Enhances Osteoclastogenesis and Suppresses Osteoblastogenesis* , 2009, Journal of Biological Chemistry.
[187] Lan Jin,et al. Biological basis for restriction of microRNA targets to the 3' untranslated region in mammalian mRNAs. , 2009, Nature structural & molecular biology.
[188] D. Bartel. MicroRNAs: Target Recognition and Regulatory Functions , 2009, Cell.
[189] G. Hotamisligil,et al. Nutrient sensing and inflammation in metabolic diseases , 2008, Nature Reviews Immunology.
[190] Oliver Hobert,et al. Molecular architecture of a miRNA-regulated 3' UTR. , 2008, RNA.
[191] Petra Schwille,et al. Ceramide Triggers Budding of Exosome Vesicles into Multivesicular Endosomes , 2008, Science.
[192] W. Filipowicz,et al. Mechanisms of post-transcriptional regulation by microRNAs: are the answers in sight? , 2008, Nature Reviews Genetics.
[193] K. Sandvig,et al. Clathrin-independent endocytosis: from nonexisting to an extreme degree of complexity , 2008, Histochemistry and Cell Biology.
[194] J. Gómez-Reino,et al. Adipokines as emerging mediators of immune response and inflammation , 2007, Nature Clinical Practice Rheumatology.
[195] H. Kazazian,et al. LINE-1 ORF1 Protein Localizes in Stress Granules with Other RNA-Binding Proteins, Including Components of RNA Interference RNA-Induced Silencing Complex , 2007, Molecular and Cellular Biology.
[196] J. Lötvall,et al. Exosome-mediated transfer of mRNAs and microRNAs is a novel mechanism of genetic exchange between cells , 2007, Nature Cell Biology.
[197] David Baltimore,et al. MicroRNA-155 is induced during the macrophage inflammatory response , 2007, Proceedings of the National Academy of Sciences.
[198] M. Malim,et al. Antiviral Protein APOBEC3G Localizes to Ribonucleoprotein Complexes Found in P Bodies and Stress Granules , 2006, Journal of Virology.
[199] K. Pritchard,et al. ENDOTHELIUM-DERIVED MICROPARTICLES INDUCE ENDOTHELIAL DYSFUNCTION AND ACUTE LUNG INJURY , 2006, Shock.
[200] R. Plasterk,et al. The diverse functions of microRNAs in animal development and disease. , 2006, Developmental cell.
[201] M. Mason,et al. Induction of heat shock proteins in B-cell exosomes , 2005, Journal of Cell Science.
[202] M. Febbraio,et al. Exosome-dependent Trafficking of HSP70 , 2005, Journal of Biological Chemistry.
[203] V. Kim,et al. The Drosha-DGCR8 complex in primary microRNA processing. , 2004, Genes & development.
[204] M. Goligorsky,et al. Endothelium-derived microparticles impair endothelial function in vitro. , 2004, American journal of physiology. Heart and circulatory physiology.
[205] G. Grau,et al. In vitro generation of endothelial microparticles and possible prothrombotic activity in patients with lupus anticoagulant. , 1999, The Journal of clinical investigation.
[206] Yan Ling,et al. Hepatocyte-Derived Extracellular Vesicles Promote Endothelial Inflammation and Atherogenesis via microRNA-1. , 2020, Journal of hepatology.
[207] Chang-Xian Wu,et al. Proteomic Profiling of Sweat Exosome Suggests its Involvement in Skin Immunity. , 2018, The Journal of investigative dermatology.
[208] Junjie Xiao,et al. Circulating Exosomes in Cardiovascular Diseases. , 2017, Advances in experimental medicine and biology.
[209] Jerrold M. Olefsky,et al. Regulation of metabolism by the innate immune system , 2016, Nature Reviews Endocrinology.
[210] R. Schuster,et al. Hepatocyte exosomes mediate liver repair and regeneration via sphingosine-1-phosphate. , 2016, Journal of hepatology.
[211] A. Seyhan,et al. Altered levels of circulating cytokines and microRNAs in lean and obese individuals with prediabetes and type 2 diabetes. , 2016, Molecular bioSystems.
[212] Ru-yuan Zhang,et al. Proteomic analysis of TNF-α-activated endothelial cells and endothelial microparticles. , 2013, Molecular medicine reports.
[213] A. Ciliberto,et al. Endocytosis and signaling: cell logistics shape the eukaryotic cell plan. , 2012, Physiological reviews.
[214] S. Friedman. Hepatic stellate cells: protean, multifunctional, and enigmatic cells of the liver. , 2008, Physiological reviews.