Ceramide releases exosomes with a specific miRNA signature for cell differentiation
暂无分享,去创建一个
E. Dalla | T. Beccari | R. Domenis | C. Arcuri | C. Conte | E. Albi | S. Cataldi | A. Cifù | A. Sidoni | Francesco Curcio | Alessandra Mirarchi | M. Mandarano | Federico Fiorani
[1] Yin-Feng Zhang,et al. Exosomal noncoding RNAs in central nervous system diseases: biological functions and potential clinical applications , 2022, Frontiers in Molecular Neuroscience.
[2] J. Frasor,et al. Emerging Roles of Ceramides in Breast Cancer Biology and Therapy , 2022, International journal of molecular sciences.
[3] Y. Igarashi,et al. Evaluation of Plant Ceramide Species-Induced Exosome Release from Neuronal Cells and Exosome Loading Using Deuterium Chemistry , 2022, International journal of molecular sciences.
[4] Xiaofeng Zheng,et al. Ceramide Acyl Chain Length and Its Relevance to Intracellular Lipid Regulation , 2022, International journal of molecular sciences.
[5] T. Beccari,et al. Sphingomyelin in Human Breast Milk might be Essential for the Hippocampus Maturation. , 2022, Frontiers in bioscience.
[6] Kyungho Park,et al. Exogenous Ceramide Serves as a Precursor to Endogenous Ceramide Synthesis and as a Modulator of Keratinocyte Differentiation , 2022, Cells.
[7] F. Hu,et al. Dihydroceramide- and ceramide-profiling provides insights into human cardiometabolic disease etiology , 2022, Nature communications.
[8] T. Beccari,et al. Vitamin D3 Enriches Ceramide Content in Exosomes Released by Embryonic Hippocampal Cells , 2021, International journal of molecular sciences.
[9] T. Okazaki,et al. Role of ceramide/sphingomyelin (SM) balance regulated through "SM cycle" in cancer. , 2021, Cellular signalling.
[10] T. Lan,et al. Microglia secrete miR-146a-5p-containing exosomes to regulate neurogenesis in depression , 2021, Molecular therapy : the journal of the American Society of Gene Therapy.
[11] F. Volpicelli,et al. Generation of High-Yield, Functional Oligodendrocytes from a c-myc Immortalized Neural Cell Line, Endowed with Staminal Properties , 2021, International journal of molecular sciences.
[12] L. Liang,et al. Associations among circulating sphingolipids, β-cell function, and risk of developing type 2 diabetes: A population-based cohort study in China , 2020, PLoS medicine.
[13] T. Beccari,et al. Effect of 1α,25(OH)2 Vitamin D3 in Mutant P53 Glioblastoma Cells: Involvement of Neutral Sphingomyelinase1 , 2020, Cancers.
[14] A. Członkowska,et al. The Relation of the Brain-Derived Neurotrophic Factor with MicroRNAs in Neurodegenerative Diseases and Ischemic Stroke , 2020, Molecular neurobiology.
[15] S. Kay,et al. Circulating Exosomal miRNAs Signal Circadian Misalignment to Peripheral Metabolic Tissues , 2020, International journal of molecular sciences.
[16] Ge Wang,et al. The role of exosome lipids in central nervous system diseases , 2020, Reviews in the neurosciences.
[17] W. Lukiw,et al. Vesicular Transport of Encapsulated microRNA between Glial and Neuronal Cells , 2020, International journal of molecular sciences.
[18] E. Albi,et al. Exploring Sphingolipid Implications in Neurodegeneration , 2020, Frontiers in Neurology.
[19] T. Beccari,et al. A Role for Neutral Sphingomyelinase in Wound Healing Induced by Keratinocyte Proliferation upon 1α, 25-Dihydroxyvitamin D3 Treatment , 2019, International journal of molecular sciences.
[20] Muhammad Qasim,et al. Review of the Isolation, Characterization, Biological Function, and Multifarious Therapeutic Approaches of Exosomes , 2019, Cells.
[21] W. Lukiw,et al. The Role of Ceramide and Sphingosine-1-Phosphate in Alzheimer’s Disease and Other Neurodegenerative Disorders , 2019, Molecular Neurobiology.
[22] Yuelan Wang,et al. Sevoflurane impairs learning and memory of the developing brain through post-transcriptional inhibition of CCNA2 via microRNA-19-3p , 2018, Aging.
[23] K. Saliminejad,et al. An overview of microRNAs: Biology, functions, therapeutics, and analysis methods , 2018, Journal of cellular physiology.
[24] T. Beccari,et al. Effect of Vitamin D in HN9.10e Embryonic Hippocampal Cells and in Hippocampus from MPTP-Induced Parkinson’s Disease Mouse Model , 2018, Front. Cell. Neurosci..
[25] S. Grösch,et al. The Many Facets of Sphingolipids in the Specific Phases of Acute Inflammatory Response , 2018, Mediators of inflammation.
[26] H. Jeong,et al. The involvement of serum exosomal miR-500-3p and miR-770-3p in aging: modulation by calorie restriction , 2017, Oncotarget.
[27] T. Beccari,et al. Neutral Sphingomyelinase Behaviour in Hippocampus Neuroinflammation of MPTP-Induced Mouse Model of Parkinson's Disease and in Embryonic Hippocampal Cells , 2017, Mediators of inflammation.
[28] L. Pereira de Almeida,et al. Extracellular vesicles: Novel promising delivery systems for therapy of brain diseases. , 2017, Journal of controlled release : official journal of the Controlled Release Society.
[29] Jing Liu,et al. The ceramide pathway is involved in the survival, apoptosis and exosome functions of human multiple myeloma cells in vitro , 2017, Acta Pharmacologica Sinica.
[30] Alicia Llorente,et al. Lipids in exosomes: Current knowledge and the way forward. , 2017, Progress in lipid research.
[31] Måns Magnusson,et al. MultiQC: summarize analysis results for multiple tools and samples in a single report , 2016, Bioinform..
[32] F. Wendler,et al. Extracellular vesicles round off communication in the nervous system , 2016, Nature Reviews Neuroscience.
[33] Minoru Kanehisa,et al. KEGG as a reference resource for gene and protein annotation , 2015, Nucleic Acids Res..
[34] Artemis G. Hatzigeorgiou,et al. DIANA-miRPath v3.0: deciphering microRNA function with experimental support , 2015, Nucleic Acids Res..
[35] W. Huber,et al. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2 , 2014, Genome Biology.
[36] S. Selek,et al. Evaluation of several micro RNA (miRNA) levels in children and adolescents with attention deficit hyperactivity disorder , 2014, Neuroscience Letters.
[37] Clotilde Théry,et al. Biogenesis and secretion of exosomes. , 2014, Current opinion in cell biology.
[38] Kim Ekroos,et al. Molecular lipidomics of exosomes released by PC-3 prostate cancer cells. , 2013, Biochimica et biophysica acta.
[39] F. Marini,et al. Nuclear lipid microdomains regulate nuclear vitamin D3 uptake and influence embryonic hippocampal cell differentiation , 2011, Molecular biology of the cell.
[40] Marcel Martin. Cutadapt removes adapter sequences from high-throughput sequencing reads , 2011 .
[41] Pornpimol Charoentong,et al. ClueGO: a Cytoscape plug-in to decipher functionally grouped gene ontology and pathway annotation networks , 2009, Bioinform..
[42] Petra Schwille,et al. Ceramide Triggers Budding of Exosome Vesicles into Multivesicular Endosomes , 2008, Science.
[43] Satoshi Yasuda,et al. Molecular machinery for non-vesicular trafficking of ceramide , 2003, Nature.
[44] P. Shannon,et al. Cytoscape: A Software Environment for Integrated Models of Biomolecular Interaction Networks , 2003 .
[45] S. Milstien,et al. Ceramide‐induced cell death in primary neuronal cultures: Upregulation of ceramide levels during neuronal apoptosis , 2002, Journal of neuroscience research.
[46] C. Simon,et al. Exchange of C(16)-ceramide between phospholipid vesicles. , 1999, Biochemistry.
[47] C. Fages,et al. PKA and PKC activation induces opposite glial fibrillary acidic protein (GFAP) expression and morphology changes in a glioblastoma multiform cell line of clonal origin , 1995, Journal of neuroscience research.
[48] Thomas R. Gingeras,et al. STAR: ultrafast universal RNA-seq aligner , 2013, Bioinform..
[49] Hiroyuki Ogata,et al. KEGG: Kyoto Encyclopedia of Genes and Genomes , 1999, Nucleic Acids Res..