Publikationen
Zeitschriftenartikel (40)
1.
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FACT depletion demonstrates a role for nucleosome organization in TAD formation. Molecular Systems Biology (2025)
2.
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Translocations can drive expression changes of multiple genes in regulons covering entire chromosome arms. Nucleic Acids Research 53 (15), gkaf677 (2025)
3.
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CTCF depletion decouples enhancer-mediated gene activation from chromatin hub formation. Nature Structural & Molecular Biology 32, S. 1268 - 1281 (2025)
4.
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Active regulatory elements recruit cohesin to establish cell specific chromatin domains. Scientific Reports 15, 11780 (2025)
5.
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Mechanisms of Enhancer-Mediated Gene Activation in the Context of the 3D Genome. Annual Review of Genomics and Human Genetics 26, S. 4.1 - 4.26 (2025)
6.
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The α-globin super-enhancer acts in an orientation-dependent manner. Nature Communications 16, 1033 (2025)
7.
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Bridging the gap: How enhancers cooperate to regulate gene expression over large genomic distances. Molecular Cell 85 (2), S. 199 - 201 (2025)
8.
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Genome-wide profiling of DNA repair proteins in single cells. Nature Communications 15, 9918 (2024)
9.
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The relationship between nucleosome positioning and higher-order genome folding. Current Opinion in Cell Biology 89, 102398 (2024)
10.
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Senescent cells cluster CTCF on nuclear speckles to sustain their splicing program. bioRxiv (2024)
11.
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FACT maintains chromatin architecture and thereby stimulates RNA polymerase II pausing during transcription in vivo. Molecular Cell 84 (11), S. 2053 - 2069.e9 (2024)
12.
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In vitro reconstitution of chromatin domains shows a role for nucleosome positioning in 3D genome organization. Nature Genetics 56, S. 483 - 492 (2024)
13.
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Genome organization across scales: mechanistic insights from in vitro reconstitution studies. Biochemical Society Transactions 52 (2), S. 793 - 802 (2024)
14.
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The Mediator complex regulates long-range communication in the genome. Nature Structural & Molecular Biology 30 (7), S. 876 - 877 (2023)
15.
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The Mediator complex regulates enhancer-promoter interactions. Nature Structural and Molecular Biology 30, S. 991 - 1000 (2023)
16.
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The role of loop extrusion in enhancer-mediated gene activation. Current Opinion in Genetics & Development 79, 102022 (2023)
17.
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Deciphering the regulatory logic of a chromatin domain boundary. Nature Genetics 54 (7), S. 914 - 915 (2022)
18.
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Analysis of sub-kilobase chromatin topology reveals nano-scale regulatory interactions with variable dependence on cohesin and CTCF. Nature Communications 13, 2139 (2022)
19.
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Capture-C: a modular and flexible approach for high-resolution chromosome conformation capture. Nature Protocols 17 (2), S. 445 - 475 (2022)
20.
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Dynamic Runx1 chromatin boundaries affect gene expression in hematopoietic development. Nature Communications 13, 773 (2022)
21.
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Reactivation of a developmentally silenced embryonic globin gene. Nature Communications 12, 4439 (2021)
22.
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Defining genome architecture at base-pair resolution. Nature 595 (7865), S. 125 - 129 (2021)
23.
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A gain-of-function single nucleotide variant creates a new promoter which acts as an orientation-dependent enhancer-blocker. Nature Communications 12, 3806 (2021)
24.
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The mouse alpha-globin cluster: A paradigm for studying genome regulation and organization. Current Opinion in Genetics & Development 67, S. 18 - 24 (2021)
25.
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Enhancers predominantly regulate gene expression during differentiation via transcription initiation. Molecular Cell 81 (5), S. 983 - 997.e7 (2021)
26.
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The relationship between genome structure and function. Nature Reviews Genetics 22, S. 154 - 168 (2021)
27.
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High-resolution targeted 3C interrogation of cis-regulatory element organization at genome-wide scale. Nature Communications 12, 531 (2021)
28.
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DeepC: predicting 3D genome folding using megabase-scale transfer learning. Nature Methods 17 (11), S. 1118 - 1124 (2020)
29.
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Dynamics of the 4D genome during in vivo lineage specification and differentiation. Nature Communications 11, 2722 (2020)
30.
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A dynamic folded hairpin conformation is associated with α-globin activation in erythroid cells. Cell Reports 30 (7), S. 2125 - 2135.e1-e5 (2020)
31.
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A revised model for promoter competition based on multi-way chromatin interactions at the α-globin locus. Nature Communications 10, 5412 (2019)
32.
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DOT1L inhibition reveals a distinct subset of enhancers dependent on H3K79 methylation. Nature Communications 10, 2803 (2019)
33.
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Single-allele chromatin interactions identify regulatory hubs in dynamic compartmentalized domains. Nature Genetics 50 (12), S. 1744 - 1751 (2018)
34.
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A tissue-specific self-interacting chromatin domain forms independently of enhancer-promoter interactions. Nature Communications 9, 3849 (2018)
35.
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Robust detection of chromosomal interactions from small numbers of cells using low-input Capture-C. Nucleic Acids Research 45 (22), e184 (2017)
36.
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Low-input Capture-C: A chromosome conformation capture assay to analyze chromatin architecture in small numbers of cells. Bio-protocol 7 (23), e2645 (2017)
37.
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Between form and function: the complexity of genome folding. Human Molecular Genetics 26 (R2), S. R208 - R215 (2017)
38.
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Tissue-specific CTCF–cohesin-mediated chromatin architecture delimits enhancer interactions and function in vivo. Nature Cell Biology 19 (8), S. 952 - 961 (2017)
39.
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How best to identify chromosomal interactions: A comparison of approaches. Nature Methods 14 (2), S. 125 - 134 (2017)
40.
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Genetic dissection of the α-globin super-enhancer in vivo. Nature Genetics 48 (8), S. 895 - 903 (2016)
Buchkapitel (1)
41.
Buchkapitel
Assessment of multiway interactions with Tri-C. In: Spatial Genome Organization, S. 95 - 112 (Hg. Sexton, T.). Humana Pr., Springer, New York, NY (2022)
Preprint (4)
42.
Preprint
Synthetic engineering demonstrates that synergy among enhancers involves an increase in transcriptionally productive enhancer-gene contacts. bioRxiv (2025)
43.
Preprint
CTCF depletion decouples enhancer-mediated gene activation from chromatin hub formation during cellular differentiation. bioRxiv (2025)
44.
Preprint
Translocations can drive expression changes of multiple genes in regulons covering entire chromosome arms. bioRxiv (2024)
45.
Preprint
Active regulatory elements recruit cohesin to establish cell-specific chromatin domains. bioRxiv (2023)