Publications
Lab Jenuwein
2024
15, 3880 (2024)
MeCP2 binds to methylated DNA independently of phase separation and heterochromatin organisation. Nature Communications 2023
30, pp. 489 - 501 (2023)
Loss of H3K9 trimethylation alters chromosome compaction and transcription factor retention during mitosis. Nature Structural and Molecular Biology 2022
610, pp. 555 - 561 (2022)
An LKB1-mitochondria axis controls TH17 effector function. Nature 2021
12, 4359 (2021)
Complete loss of H3K9 methylation dissolves mouse heterochromatin organization. Nature Communications 14, 166 (2021)
Repeat to gene expression ratios in leukemic blast cells can stratify risk prediction in acute myeloid leukemia. BMC Medical Genomics 49, pp. 5568 - 5587 (2021)
m6A RNA methylation of major satellite repeat transcripts facilitates chromatin association and RNA:DNA hybrid formation in mouse heterochromatin. Nucleic Acids Research (London) 2020
53, pp. 934 - 951 (2020)
Repetitive Elements Trigger RIG-I-like Receptor Signaling that Regulates the emergence of Hematopoietic Stem and Progenitor Cells. Immunity 22, pp. 767 - 778 (2020)
Heterochromatin establishment during early mammalian development is regulated by pericentromeric RNA and characterized by non-repressive H3K9me3. Nature Cell Biology 117, pp. 14251 - 14258 (2020)
H1 linker histones silence repetitive elements by promoting both histone H3K9 methylation and chromatin compaction. Proceedings of the National Academy of Sciences of the United States of America 129, pp. 83 - 98 (2020)
Heterochromatin formation in Drosophila requires genome-wide histone deacetylation in cleavage chromatin before mid-blastula transition in early embryogenesis. Chromosoma: Biology of the Nucleus 2019
27, pp. 2063 - 2074 (2019)
Acetate Promotes T Cell Effector Function during Glucose Restriction. Cell Reports 363, pp. 294 - 297 (2019)
H3K9me3-heterochromatin loss at protein-coding genes enables developmental lineage specification. Science 2018
9, 101 (2018) (2018)
SIRT6-dependent cysteine monoubiquitination in the PRE-SET domain of Suv39h1 regulates the NF-kappa B pathway. Nature Communications 2017
40, pp. 383 - 391 (2017)
Interplay among H3K9-editing enzymes SUV39H1, JMJD2C and SRC-1 drives p66Shc transcription and vascular oxidative stress in obesity. European Heart Journal
Major satellite repeat RNA stabilize heterochromatin retention of Suv39h enzymes by RNA-nucleosome assocation and RNA:DNA hybrid formation. eLife, p. e25293 (2017)
65, pp. 1904 - 1919 (2017)
The Histone Methyltransferase Suv39h2 Contributes to Nonalcoholic Steatohepatitis in Mice. Hepatology 18, pp. 914 - 928 (2017)
The chromatin remodelling factor ATRX suppresses R-loops in transcribed telomeric repeats. EMBO Reports 8, 14941 (2017) (2017)
The histone H3K9 methyltransferase SUV39H links SIRT1 repression to myocardial infarction. Nature Communications 2016
17, pp. 487 - 500 (2016)
The molecular hallmarks of epigenetic control. Nature Reviews Genetics 7, 11310 (2016) (2016)
Dynamic and flexible H3K9me3 bridging via HP1beta dimerization establishes a plastic state of condensed chromatin. Nature Communications 164, pp. 353 - 364 (2016)
Trim28 Haploinsufficiency Triggers Bi-stable Epigenetic Obesity. Cell 61, pp. 260 - 273 (2016)
Nuclear Architecture Organized by Rif1 Underpins the Replication-Timing Program. Molecular Cell 2015
11, pp. 405 - 418 (2015)
ATRX Plays a Key Role in Maintaining Silencing at Interstitial Heterochromatic Loci and Imprinted Genes. Cell Reports 2014
5, 5691 (2014), p. 5691 (2014)
Critical role of lysine 134 methylation on histone H2AX for γ-H2AX production and DNA repair. Nature Communications 55, pp. 277 - 290 (2014)
Suv39h-Dependent H3K9me3 Marks Intact Retrotransposons and Silences LINE Elements in Mouse Embryonic Stem Cells. Molecular Cell 2013
52, pp. 746 - 757 (2013)
Regulation of Heterochromatin Transcription by Snail1/LOXL2 during Epithelial-to-Mesenchymal Transition. Molecular Cell 2012
19, pp. 1023 - 1030 (2012)
A transcription factor-based mechanism for mouse heterochromatin formation. Nature Structural and Molecular Biology 150, pp. 948 - 960 (2012)
Prdm3 and Prdm16 are H3K9me1 Methyltransferases Required for Mammalian Heterochromatin Integrity. Cell 8, e1002750 (2012)
In vivo Control of CpG and Non-CpG DNA Methylation by DNA Methyltransferases. PLoS Genetics 2011
14, pp. 161 - 172 (2011)
Histone Demethylase UTX-1 Regulates C.elegans Life Span by Targeting the Insulin/IGF-1 Signaling Pathway. Cell Metabolism 43, pp. 715 - 719 (2011)
Arabidopsis REF6 is a histone H3 lysine 27 demethylase. Nature Genetics 2010
26, pp. 471 - 501 (2010)
Mammalian Su(var) Genes in Chromatin Control. Annual Review of Cell and Developmental Biology 17, pp. 445 - 450 (2010)
PHF8 activates transcription of rRNA genes through H3K4me3 binding and H3K9me1/2 demethylation. Nature Structural and Molecular Biology 285, pp. 9636 - 9641 (2010)
G9a and Glp Methylate lysine 373 in the Tumor Suppressor p53. The Journal of Biological Chemistry 17, pp. 262 - 272 (2010)
Tumor Stroma-Derived TGF-β Limits Myc-Driven Lymphoma-genesis via Suv39h1-Dependent Senescence. Cancer Cell 29, pp. 2538 - 2552 (2010)
MDM2 recruitment of lysine methyltransferases regulates p53 transcriptional output. The EMBO Journal 2009
284, pp. 8395 - 8405 (2009)
Dynamics Histone H1 Isotype 4 Methylation and Demthylation by Histone Lysine Methyltransferase G9a/KMT1C and the Jumonji domain-containing JMJD2/KDM4 Proteins. The Journal of Biological Chemistry 23, pp. 2625 - 2638 (2009)
Satb1 and Satb2 regulate embryonic stem cell differentiation and Nanog expression. Genes and Development 2008
19, pp. 221 - 233 (2008)
H3K27me3 forms BLOCs over silent genes and intergenic regions and specifies a histone banding pattern on a mouse autosomal chromosome. Genome Research 9, pp. 998 - 1005 (2008)
PR-SET7 and SUV4-20H regulate H4 lysine-20 methylation at imprinting control regions in the mouse. EMBO Reports 22, pp. 2048 - 2061 (2008)
A chromatin-wide transition to H4K20 monomethylation impairs genome integrity and programmed DNA rearrangements in the mouse. Genes & Development 2007
9, pp. 347 - 353 (2007)
Cooperative demethylation by JMJD2C and LSD1 promotes androgen receptor-dependent gene expression. Nature Cell Biology Find more publications of Thomas Jenuwein on Pubmed.