1. Preissl S et al. Characterizing cis-regulatory elements using single-cell epigenomics. Nat Rev Genet (2022). PubMed PMID: 35840754.
2. Mehrmohamadi M et al. A Comparative Overview of Epigenomic Profiling Methods. Front Cell Dev Biol 9, 714687 (2021). PubMed PMID: 34368164.
3. Carter B et al. The epigenetic basis of cellular heterogeneity. Nat Rev Genet 22, 235-50 (2021 PubMed PMID: 33244170.
4. Agbleke AA et al. Advances in Chromatin and Chromosome Research: Perspectives from Multiple Fields. Mol Cell 79, 881-901 (2020). PubMed PMID: 32768408.
5. Kaya-Okur HS et al. Efficient low-cost chromatin profiling with CUT&Tag. Nat Protoc 15, 3264-83 (2020). PubMed PMID: 32913232.
6. Kaya-Okur HS et al. CUT&Tag for efficient epigenomic profiling of small samples and single cells. Nat Commun 10, 1930 (2019). PubMed PMID: 31036827.
7. Skene PJ et al. Targeted in situ genome-wide profiling with high efficiency for low cell numbers. Nat Protoc 13, 1006-19 (2018). PubMed PMID: 29651053?.
8. Skene PJ et al. An efficient targeted nuclease strategy for high-resolution mapping of DNA binding sites. Elife 6, (2017). PubMed PMID: 28079019?.
9. Shah RN et al. Examining the Roles of H3K4 Methylation States with Systematically Characterized Antibodies. Mol Cell 72, 162-77 e7 (2018). PubMed PMID: 30244833.
10. Liu T. Use model-based Analysis of ChIP-Seq (MACS) to analyze short reads generated by sequencing protein-DNA interactions in embryonic stem cells. Methods Mol Biol 1150, 81-95 (2014). PubMed PMID: 24743991.
11. Zang C et al. A clustering approach for identification of enriched domains from histone modification ChIP-Seq data. Bioinformatics 25, 1952-8 (2009). PubMed PMID: 19505939.
12. Evans MK et al. Ybx1 fine-tunes PRC2 activities to control embryonic brain development. Nat Commun 11, 4060 (2020). PubMed PMID: 32792512.
13. Laczik M et al. Iterative Fragmentation Improves the Detection of ChIP-seq Peaks for Inactive Histone Marks. Bioinform Biol Insights 10, 209-24 (2016). PubMed PMID: 27812282.
14. Meers MP et al. Peak calling by Sparse Enrichment Analysis for CUT&RUN chromatin profiling. Epigenetics Chromatin 12, 42 (2019). PubMed PMID: 31300027.
15. Yu F et al. CUT&RUNTools 2.0: A pipeline for single-cell and bulk-level CUT&RUN and CUT&Tag data analysis. Bioinformatics (2021). PubMed PMID: 34244724.
16. Liu N et al. Direct Promoter Repression by BCL11A Controls the Fetal to Adult Hemoglobin Switch. Cell 173, 430-42 e17 (2018). PubMed PMID: 29606353.
17. de Bock CE et al. HOXA9 Cooperates with Activated JAK/STAT Signaling to Drive Leukemia Development. Cancer Discov 8, 616-31 (2018). PubMed PMID: 29496663.
18. Janssens DH et al. Automated in situ chromatin profiling efficiently resolves cell types and gene regulatory programs. Epigenetics Chromatin 11, 74 (2018). PubMed PMID: 30577869.
19. Uyehara CM et al. Direct and widespread role for the nuclear receptor EcR in mediating the response to ecdysone in Drosophila. Proc Natl Acad Sci U S A 116, 9893-902 (2019). PubMed PMID: 31019084.
20. Zhang XL et al. Reorganization of postmitotic neuronal chromatin accessibility for maturation of serotonergic identity. Elife 11, (2022). PubMed PMID: 35471146.
21. Wang J et al. EZH2 noncanonically binds cMyc and p300 through a cryptic transactivation domain to mediate gene activation and promote oncogenesis. Nat Cell Biol 24, 384-99 (2022). PubMed PMID: 35210568.
22. Hainer SJ et al. Profiling of Pluripotency Factors in Single Cells and Early Embryos. Cell 177, 1319-29 e11 (2019). PubMed PMID: 30955888.
23. Mathsyaraja H et al. Max deletion destabilizes MYC protein and abrogates Emicro-Myc lymphomagenesis. Genes Dev 33, 1252-64 (2019). PubMed PMID: 31395740.
24. Roth TL et al. Reprogramming human T cell function and specificity with non-viral genome targeting. Nature 559, 405-9 (2018). PubMed PMID: 29995861.
25. Collins PL et al. DNA double-strand breaks induce H2Ax phosphorylation domains in a contact-dependent manner. Nat Commun 11, 3158 (2020). PubMed PMID: 32572033.
26. Yusufova N et al. Histone H1 loss drives lymphoma by disrupting 3D chromatin architecture. Nature 589, 299-305 (2021). PubMed PMID: 33299181.
27. Janssens DH et al. Automated CUT&Tag profiling of chromatin heterogeneity in mixed-lineage leukemia. Nat Genet 53, 1586-96 (2021). PubMed PMID: 34663924.
28. Henikoff S et al. Efficient chromatin accessibility mapping in situ by nucleosome-tethered tagmentation. Elife 9, (2020). PubMed PMID: 33191916.
29. Deng Y et al. Spatial-CUT&Tag: Spatially resolved chromatin modification profiling at the cellular level. Science 375, 681-6 (2022). PubMed PMID: 35143307.
30. Gopalan S et al. Simultaneous profiling of multiple chromatin proteins in the same cells. Mol Cell 81, 4736-46 e5 (2021). PubMed PMID: 34637755.
31. Xiong H et al. Single-cell joint detection of chromatin occupancy and transcriptome enables higher-dimensional epigenomic reconstructions. Nat Methods 18, 652-60 (2021). PubMed PMID: 33958790?.
32. Zhu C et al. Joint profiling of histone modifications and transcriptome in single cells from mouse brain. Nat Methods 18, 283-92 (2021). PubMed PMID: 33589836.
33. Janssens DH et al. CUT&Tag2for1: a modified method for simultaneous profiling of the accessible and silenced regulome in single cells. Genome Biol 23, 81 (2022). PubMed PMID: 35300717.
34. Wu SJ et al. Single-cell CUT&Tag analysis of chromatin modifications in differentiation and tumor progression. Nat Biotechnol (2021). PubMed PMID: 33846646.
35. Bartosovic M et al. Single-cell CUT&Tag profiles histone modifications and transcription factors in complex tissues. Nat Biotechnol (2021). PubMed PMID: 33846645.