A vlincRNA participates in senescence maintenance by relieving H2AZ-mediated repression at the INK4 locus
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P. Kapranov | C. Vallot | E. Nicolas | D. Trouche | G. Laurent | C. Rougeulle | J. Thuret | C. Mann | M. Aguirrebengoa | Sandra Lazorthes | S. Briois
[1] C. Méndez-Vidal,et al. Wrap53, a Natural p53 Antisense Transcript Required for p53 Induction upon DNA Damage. , 2016, Molecular cell.
[2] Louis Bodmer. ACKNOWLEDGEMENTS , 2013, Journal of Biosciences.
[3] M. Gorospe,et al. Senescence‐associated lncRNAs: senescence‐associated long noncoding RNAs , 2013, Aging cell.
[4] Alissa M. Resch,et al. XACT, a long noncoding transcript coating the active X chromosome in human pluripotent cells , 2013, Nature Genetics.
[5] Philipp Kapranov,et al. VlincRNAs controlled by retroviral elements are a hallmark of pluripotency and cancer , 2013, Genome Biology.
[6] P. Kapranov,et al. Intronic RNAs constitute the major fraction of the non-coding RNA in mammalian cells , 2012, BMC Genomics.
[7] Data production leads,et al. An integrated encyclopedia of DNA elements in the human genome , 2012 .
[8] Raymond K. Auerbach,et al. An Integrated Encyclopedia of DNA Elements in the Human Genome , 2012, Nature.
[9] Nadav S. Bar,et al. Landscape of transcription in human cells , 2012, Nature.
[10] J. Thuret,et al. Deacetylation of H4-K16Ac and heterochromatin assembly in senescence , 2012, Epigenetics & Chromatin.
[11] C. Wahlestedt,et al. Regulation of chromatin structure by long noncoding RNAs: focus on natural antisense transcripts. , 2012, Trends in genetics : TIG.
[12] Hiroshi Kimura,et al. Independence of repressive histone marks and chromatin compaction during senescent heterochromatic layer formation. , 2012, Molecular cell.
[13] ENCODEConsortium,et al. An Integrated Encyclopedia of DNA Elements in the Human Genome , 2012, Nature.
[14] C Mann,et al. Parallel pathways in RAF-induced senescence and conditions for its reversion , 2012, Oncogene.
[15] A. Dejean,et al. Senescence is an endogenous trigger for microRNA-directed transcriptional gene silencing in human cells , 2012, Nature Cell Biology.
[16] Nicholas T. Ingolia,et al. Ribosome Profiling of Mouse Embryonic Stem Cells Reveals the Complexity and Dynamics of Mammalian Proteomes , 2011, Cell.
[17] S. Lehmann,et al. Rejuvenating senescent and centenarian human cells by reprogramming through the pluripotent state. , 2011, Genes & development.
[18] Aline V. Probst,et al. SUMOylation promotes de novo targeting of HP1α to pericentric heterochromatin , 2011, Nature Genetics.
[19] Eytan Domany,et al. Coupled pre-mRNA and mRNA dynamics unveil operational strategies underlying transcriptional responses to stimuli , 2013 .
[20] P. Sorensen,et al. The majority of total nuclear-encoded non-ribosomal RNA in a human cell is 'dark matter' un-annotated RNA , 2010, BMC Biology.
[21] Howard Y. Chang,et al. Long Noncoding RNA as Modular Scaffold of Histone Modification Complexes , 2010, Science.
[22] Imen Lassadi,et al. High‐resolution profiling of γH2AX around DNA double strand breaks in the mammalian genome , 2010, The EMBO journal.
[23] Zoltán Konthur,et al. Application of housekeeping npcRNAs for quantitative expression analysis of human transcriptome by real-time PCR. , 2010, RNA.
[24] I. Ial,et al. Nature Communications , 2010, Nature Cell Biology.
[25] C. Wahlestedt,et al. Regulatory roles of natural antisense transcripts , 2009, Nature Reviews Molecular Cell Biology.
[26] Ru Huang,et al. The function of non-coding RNAs in genomic imprinting , 2009, Development.
[27] D. Barlow,et al. Regulation of imprinted expression by macro non-coding RNAs , 2009, RNA biology.
[28] C. Méndez-Vidal,et al. Wrap53, a natural p53 antisense transcript required for p53 induction upon DNA damage. , 2009, Molecular cell.
[29] H. Yokoo,et al. Nitric oxide and endothelial cellular senescence. , 2008, Pharmacology & therapeutics.
[30] R. Young,et al. H2AZ Is Enriched at Polycomb Complex Target Genes in ES Cells and Is Necessary for Lineage Commitment , 2008, Cell.
[31] A. L. Fridman,et al. Critical pathways in cellular senescence and immortalization revealed by gene expression profiling , 2008, Oncogene.
[32] Toshiyuki Shimizu,et al. Epigenetic Control of rDNA Loci in Response to Intracellular Energy Status , 2008, Cell.
[33] S. Signoretti,et al. VHL loss actuates a HIF-independent senescence programme mediated by Rb and p400 , 2008, Nature Cell Biology.
[34] W. Rubinstein,et al. Genome-wide analysis of antisense transcription with Affymetrix exon array , 2008, BMC Genomics.
[35] Mark Gerstein,et al. Systematic analysis of transcribed loci in ENCODE regions using RACE sequencing reveals extensive transcription in the human genome , 2008, Genome Biology.
[36] A. Fusco,et al. Roles of HMGA proteins in cancer , 2007, Nature Reviews Cancer.
[37] J. Campisi,et al. Cellular senescence: when bad things happen to good cells , 2007, Nature Reviews Molecular Cell Biology.
[38] D. Livingston,et al. p21 transcription is regulated by differential localization of histone H2A.Z. , 2007, Genes & development.
[39] Kristian Helin,et al. The Polycomb group proteins bind throughout the INK4A-ARF locus and are disassociated in senescent cells. , 2007, Genes & development.
[40] Carlos Cordon-Cardo,et al. Senescence and tumour clearance is triggered by p53 restoration in murine liver carcinomas , 2007, Nature.
[41] P. Vallance,et al. Disruption of methylarginine metabolism impairs vascular homeostasis , 2007, Nature Medicine.
[42] Aaron Bensimon,et al. Oncogene-induced senescence is a DNA damage response triggered by DNA hyper-replication , 2006, Nature.
[43] Dimitris Kletsas,et al. Oncogene-induced senescence is part of the tumorigenesis barrier imposed by DNA damage checkpoints , 2006, Nature.
[44] S. Lowe,et al. A Novel Role for High-Mobility Group A Proteins in Cellular Senescence and Heterochromatin Formation , 2006, Cell.
[45] M. Barbacid,et al. Tumour biology: Senescence in premalignant tumours , 2005, Nature.
[46] S. Lowe,et al. The p400 E1A-associated protein is a novel component of the p53 --> p21 senescence pathway. , 2005, Genes & development.
[47] Adrian A Canutescu,et al. Formation of MacroH2A-containing senescence-associated heterochromatin foci and senescence driven by ASF1a and HIRA. , 2005, Developmental cell.
[48] T. Du,et al. Asymmetry in the Assembly of the RNAi Enzyme Complex , 2003, Cell.
[49] Masashi Narita,et al. Reversal of human cellular senescence: roles of the p53 and p16 pathways , 2003, The EMBO journal.
[50] S. Lowe,et al. Rb-Mediated Heterochromatin Formation and Silencing of E2F Target Genes during Cellular Senescence , 2003, Cell.
[51] Ira M. Hall,et al. Establishment and Maintenance of a Heterochromatin Domain , 2002, Science.
[52] Ira M. Hall,et al. Regulation of Heterochromatic Silencing and Histone H3 Lysine-9 Methylation by RNAi , 2002, Science.
[53] D. Barlow,et al. Quantitative genetics: Turning up the heat on QTL mapping , 2002, Nature Reviews Genetics.
[54] M. Malumbres,et al. Cellular Response to Oncogenic Ras Involves Induction of the Cdk4 and Cdk6 Inhibitor p15INK4b , 2000, Molecular and Cellular Biology.
[55] Alexandra Eitel. Senescence , 2014, British medical journal.