In Vivo miRNA Decoy Screen Reveals miR-124a as a Suppressor of Melanoma Metastasis
暂无分享,去创建一个
I. Osman | Gavriel Mullokandov | B. Brown | M. Berwick | E. Hernando | N. Thomas | R. Moubarak | A. Gaziel | Brian D. Brown | E. Sokolova | D. Argibay | Kevin Kleffman | Lisa Koetz-Ploch | Ana de Pablos-Aragoneses
[1] M. Atkins,et al. Long-term outcomes of patients with active melanoma brain metastases treated with combination nivolumab plus ipilimumab (CheckMate 204): final results of an open-label, multicentre, phase 2 study. , 2021, The Lancet. Oncology.
[2] B. Curti,et al. Recent Advances in the Treatment of Melanoma. , 2021, The New England journal of medicine.
[3] Jason D. Buenrostro,et al. A microRNA expression and regulatory element activity atlas of the mouse immune system , 2021, Nature Immunology.
[4] R. Spang,et al. Learning from Embryogenesis—A Comparative Expression Analysis in Melanoblast Differentiation and Tumorigenesis Reveals miRNAs Driving Melanoma Development , 2021, Journal of clinical medicine.
[5] M. Atkins,et al. Safety and efficacy of the combination of nivolumab plus ipilimumab in patients with melanoma and asymptomatic or symptomatic brain metastases (CheckMate 204) , 2021, Neuro-oncology.
[6] W. Jiskoot,et al. mRNA-lipid nanoparticle COVID-19 vaccines: Structure and stability , 2021, International Journal of Pharmaceutics.
[7] A. Carfi,et al. Novel approaches for vaccine development , 2021, Cell.
[8] Yan Liu,et al. MicroRNA-124 facilitates lens epithelial cell apoptosis by inhibiting SPRY2 and MMP-2 , 2021, Molecular medicine reports.
[9] K. Tsai,et al. A MAPK/miR-29 Axis Suppresses Melanoma by Targeting MAFG and MYBL2 , 2021, Cancers.
[10] Jeonghwan Kim,et al. Self-assembled mRNA vaccines , 2021, Advanced Drug Delivery Reviews.
[11] J. Mascola,et al. Efficacy and Safety of the mRNA-1273 SARS-CoV-2 Vaccine , 2020, The New England journal of medicine.
[12] P. Dormitzer,et al. Safety and Efficacy of the BNT162b2 mRNA Covid-19 Vaccine , 2020, The New England journal of medicine.
[13] R. Baric,et al. Safety and Immunogenicity of SARS-CoV-2 mRNA-1273 Vaccine in Older Adults , 2020, The New England journal of medicine.
[14] A. Bairoch,et al. Brain Metastasis Cell Lines Panel: A Public Resource of Organotropic Cell Lines , 2020, Cancer Research.
[15] L. Linbo,et al. Circ_0002770, acting as a competitive endogenous RNA, promotes proliferation and invasion by targeting miR-331-3p in melanoma , 2020, Cell Death & Disease.
[16] Yuanyu Huang,et al. The challenge and prospect of mRNA therapeutics landscape. , 2020, Biotechnology advances.
[17] A. Tsirigos,et al. Epigenetic Silencing of CDR1as Drives IGF2BP3-Mediated Melanoma Invasion and Metastasis. , 2020, Cancer cell.
[18] Charles H. Yoon,et al. KEYNOTE-716: Phase III study of adjuvant pembrolizumab versus placebo in resected high-risk stage II melanoma. , 2019, Future oncology.
[19] H. Hua,et al. miR-124 Functions As A Melanoma Tumor Suppressor By Targeting RACK1 , 2019, OncoTargets and therapy.
[20] Weiling Xu,et al. MicroRNA-124 alleviates the lung injury in mice with septic shock through inhibiting the activation of the MAPK signaling pathway by downregulating MAPK14. , 2019, International immunopharmacology.
[21] K. Ligon,et al. The functional synergism of microRNA clustering provides therapeutically relevant epigenetic interference in glioblastoma , 2019, Nature Communications.
[22] A. Bosserhoff,et al. MicroRNA‐622 is a novel mediator of tumorigenicity in melanoma by targeting Kirsten rat sarcoma , 2018, Pigment cell & melanoma research.
[23] R. Lin,et al. MicroRNA-focused CRISPR-Cas9 library screen reveals fitness-associated miRNAs , 2018, RNA.
[24] D. Schadendorf,et al. Adjuvant Pembrolizumab versus Placebo in Resected Stage III Melanoma , 2018, The New England journal of medicine.
[25] Shijie Tang,et al. Differentially expressed circRNAs in melanocytes and melanoma cells and their effect on cell proliferation and invasion. , 2018, Oncology reports.
[26] M. Perretti,et al. Exosomal cargo including microRNA regulates sensory neuron to macrophage communication after nerve trauma , 2017, Nature Communications.
[27] B. Felden,et al. A non-coding function of TYRP1 mRNA promotes melanoma growth , 2017, Nature Cell Biology.
[28] P. Ascierto,et al. Adjuvant Nivolumab versus Ipilimumab in Resected Stage III or IV Melanoma , 2017, The New England journal of medicine.
[29] Yongjie Chen,et al. miR-124 suppresses glioblastoma growth and potentiates chemosensitivity by inhibiting AURKA. , 2017, Biochemical and biophysical research communications.
[30] Ji-wen Bu,et al. Neurons secrete miR-132-containing exosomes to regulate brain vascular integrity , 2017, Cell Research.
[31] P. Pollock,et al. The ‘melanoma-enriched’ microRNA miR-4731-5p acts as a tumour suppressor , 2016, Oncotarget.
[32] J. Massagué,et al. Metastatic colonization by circulating tumour cells , 2016, Nature.
[33] J. Massagué,et al. Surviving at a Distance: Organ-Specific Metastasis. , 2015, Trends in cancer.
[34] I. Osman,et al. A miRNA-Based Signature Detected in Primary Melanoma Tissue Predicts Development of Brain Metastasis , 2015, Clinical Cancer Research.
[35] Vivek Jayaswal,et al. MicroRNA and mRNA expression profiling in metastatic melanoma reveal associations with BRAF mutation and patient prognosis , 2015, Pigment cell & melanoma research.
[36] I. Osman,et al. Identification of metastasis-suppressive microRNAs in primary melanoma. , 2015, Journal of the National Cancer Institute.
[37] R. Dummer,et al. The epigenetic modifier EZH2 controls melanoma growth and metastasis through silencing of distinct tumour suppressors , 2015, Nature Communications.
[38] A. Brożyna,et al. The role of melanogenesis in regulation of melanoma behavior: melanogenesis leads to stimulation of HIF-1α expression and HIF-dependent attendant pathways. , 2014, Archives of biochemistry and biophysics.
[39] D. Marchetti,et al. MicroRNA and Protein Profiling of Brain Metastasis Competent Cell-Derived Exosomes , 2013, PloS one.
[40] J. Golfinos,et al. Development and characterization of a clinically relevant mouse model of melanoma brain metastasis , 2013, Pigment cell & melanoma research.
[41] Lizhuang Yang,et al. MiR-124 inhibits the growth of glioblastoma through the downregulation of SOS1. , 2013, Molecular medicine reports.
[42] D. Hu,et al. MicroRNA-124a is epigenetically regulated and acts as a tumor suppressor by controlling multiple targets in uveal melanoma. , 2013, Investigative ophthalmology & visual science.
[43] S. Tavazoie,et al. Convergent Multi-miRNA Targeting of ApoE Drives LRP1/LRP8-Dependent Melanoma Metastasis and Angiogenesis , 2012, Cell.
[44] A. Hauschild,et al. Dabrafenib in patients with Val600Glu or Val600Lys BRAF-mutant melanoma metastatic to the brain (BREAK-MB): a multicentre, open-label, phase 2 trial. , 2012, The Lancet. Oncology.
[45] I. Osman,et al. MicroRNA and cutaneous melanoma: from discovery to prognosis and therapy. , 2012, Carcinogenesis.
[46] M. Gorospe,et al. MicroRNA-146a suppresses metastatic activity in brain metastasis , 2012, Molecules and cells.
[47] C. Ng,et al. NRAS mutation status is an independent prognostic factor in metastatic melanoma , 2012, Cancer.
[48] R. Sachidanandam,et al. High-throughput assessment of microRNA activity and function using microRNA sensor and decoy libraries , 2012, Nature Methods.
[49] M. Brown,et al. Dabrafenib in patients with melanoma, untreated brain metastases, and other solid tumours: a phase 1 dose-escalation trial , 2012, The Lancet.
[50] N. Hayward,et al. MicroRNA regulation of melanoma progression , 2012, Melanoma research.
[51] P. Wen,et al. Epidemiology of Brain Metastases , 2012, Current Oncology Reports.
[52] J. Zavadil,et al. miR-30b/30d regulation of GalNAc transferases enhances invasion and immunosuppression during metastasis. , 2011, Cancer cell.
[53] X. Bian,et al. The putative tumour suppressor microRNA-124 modulates hepatocellular carcinoma cell aggressiveness by repressing ROCK2 and EZH2 , 2011, Gut.
[54] R. Jain,et al. The biology of brain metastases—translation to new therapies , 2011, Nature Reviews Clinical Oncology.
[55] J. Zavadil,et al. Efficient in vivo microRNA targeting of liver metastasis , 2011, Oncogene.
[56] Ravi Sachidanandam,et al. Kinetic Analysis Reveals the Fate of a MicroRNA following Target Regulation in Mammalian Cells , 2011, Current Biology.
[57] Jan Zakrzewski,et al. Melanoma MicroRNA Signature Predicts Post-Recurrence Survival , 2010, Clinical Cancer Research.
[58] C. Croce,et al. MicroRNAs in Cancer. , 2009, Annual review of medicine.
[59] Michael Rehli,et al. miRNA expression profiling in melanocytes and melanoma cell lines reveals miRNAs associated with formation and progression of malignant melanoma. , 2009, The Journal of investigative dermatology.
[60] A. Mele,et al. Ago HITS-CLIP decodes miRNA-mRNA interaction maps , 2009, Nature.
[61] C. Croce,et al. SnapShot: MicroRNAs in Cancer , 2009, Cell.
[62] D. Polsky,et al. Aberrant miR-182 expression promotes melanoma metastasis by repressing FOXO3 and microphthalmia-associated transcription factor , 2009, Proceedings of the National Academy of Sciences.
[63] George Poste,et al. The "seed and soil" hypothesis revisited. , 2008, The Lancet. Oncology.
[64] R. Kerbel,et al. Development of a preclinical model of spontaneous human melanoma central nervous system metastasis. , 2008, Cancer research.
[65] T. Maniatis,et al. The MicroRNA miR-124 promotes neuronal differentiation by triggering brain-specific alternative pre-mRNA splicing. , 2007, Molecular cell.
[66] C. Sander,et al. A Mammalian microRNA Expression Atlas Based on Small RNA Library Sequencing , 2007, Cell.
[67] C. Croce,et al. miRNAs, Cancer, and Stem Cell Division , 2005, Cell.
[68] Y. Kawazoe,et al. Structure and Stability , 2005, Islamic and Christian Spain in the Early Middle Ages.
[69] D. Tobin,et al. Melanin pigmentation in mammalian skin and its hormonal regulation. , 2004, Physiological reviews.
[70] Christopher W. Wong,et al. Rapid apoptosis in the pulmonary vasculature distinguishes non-metastatic from metastatic melanoma cells. , 2004, Cancer letters.
[71] I. Fidler,et al. The pathogenesis of cancer metastasis: the 'seed and soil' hypothesis revisited , 2003, Nature Reviews Cancer.
[72] K. Luzzi,et al. Multistep nature of metastatic inefficiency: dormancy of solitary cells after successful extravasation and limited survival of early micrometastases. , 1998, The American journal of pathology.
[73] S Paget,et al. THE DISTRIBUTION OF SECONDARY GROWTHS IN CANCER OF THE BREAST. , 1889 .
[74] M. Schober,et al. Challenges and Strategies , 2016 .
[75] Leaf Huang,et al. In vivo delivery of miRNAs for cancer therapy: challenges and strategies. , 2015, Advanced drug delivery reviews.