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1.
PLoS Comput Biol ; 20(5): e1012136, 2024 May.
Article in English | MEDLINE | ID: mdl-38758956

ABSTRACT

In the last few years, Micro-C has shown itself as an improved alternative to Hi-C. It replaced the restriction enzymes in Hi-C assays with micrococcal nuclease (MNase), resulting in capturing nucleosome resolution chromatin interactions. The signal-to-noise improvement of Micro-C allows it to detect more chromatin loops than high-resolution Hi-C. However, compared with massive Hi-C datasets available in the literature, there are only a limited number of Micro-C datasets. To take full advantage of these Hi-C datasets, we present HiC2MicroC, a computational method learning and then predicting Micro-C from Hi-C based on the denoising diffusion probabilistic models (DDPM). We trained our DDPM and other regression models in human foreskin fibroblast (HFFc6) cell line and evaluated these methods in six different cell types at 5-kb and 1-kb resolution. Our evaluations demonstrate that both HiC2MicroC and regression methods can markedly improve Hi-C towards Micro-C, and our DDPM-based HiC2MicroC outperforms regression in various terms. First, HiC2MicroC successfully recovers most of the Micro-C loops even those not detected in Hi-C maps. Second, a majority of the HiC2MicroC-recovered loops anchor CTCF binding sites in a convergent orientation. Third, HiC2MicroC loops share genomic and epigenetic properties with Micro-C loops, including linking promoters and enhancers, and their anchors are enriched for structural proteins (CTCF and cohesin) and histone modifications. Lastly, we find our recovered loops are also consistent with the loops identified from promoter capture Micro-C (PCMicro-C) and Chromatin Interaction Analysis by Paired-End Tag Sequencing (ChIA-PET). Overall, HiC2MicroC is an effective tool for further studying Hi-C data with Micro-C as a template. HiC2MicroC is publicly available at https://github.com/zwang-bioinformatics/HiC2MicroC/.


Subject(s)
Chromatin , Computational Biology , Humans , Chromatin/metabolism , Chromatin/chemistry , Chromatin/genetics , Computational Biology/methods , Cell Line , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , Models, Statistical
2.
Immunity ; 57(5): 1005-1018.e7, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38697116

ABSTRACT

Cytokine expression during T cell differentiation is a highly regulated process that involves long-range promoter-enhancer and CTCF-CTCF contacts at cytokine loci. Here, we investigated the impact of dynamic chromatin loop formation within the topologically associating domain (TAD) in regulating the expression of interferon gamma (IFN-γ) and interleukin-22 (IL-22); these cytokine loci are closely located in the genome and are associated with complex enhancer landscapes, which are selectively active in type 1 and type 3 lymphocytes. In situ Hi-C analyses revealed inducible TADs that insulated Ifng and Il22 enhancers during Th1 cell differentiation. Targeted deletion of a 17 bp boundary motif of these TADs imbalanced Th1- and Th17-associated immunity, both in vitro and in vivo, upon Toxoplasma gondii infection. In contrast, this boundary element was dispensable for cytokine regulation in natural killer cells. Our findings suggest that precise cytokine regulation relies on lineage- and developmental stage-specific interactions of 3D chromatin architectures and enhancer landscapes.


Subject(s)
CCCTC-Binding Factor , Cell Differentiation , Interferon-gamma , Interleukin-22 , Interleukins , Th1 Cells , Animals , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , Th1 Cells/immunology , Mice , Cell Differentiation/immunology , Interferon-gamma/metabolism , Binding Sites , Interleukins/metabolism , Interleukins/genetics , Enhancer Elements, Genetic/genetics , Mice, Inbred C57BL , Chromatin/metabolism , Toxoplasmosis/immunology , Toxoplasmosis/parasitology , Toxoplasmosis/genetics , Gene Expression Regulation , Toxoplasma/immunology , Cytokines/metabolism , Cell Lineage , Th17 Cells/immunology
3.
Mol Cell ; 84(10): 1842-1854.e7, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38759624

ABSTRACT

Genomic context critically modulates regulatory function but is difficult to manipulate systematically. The murine insulin-like growth factor 2 (Igf2)/H19 locus is a paradigmatic model of enhancer selectivity, whereby CTCF occupancy at an imprinting control region directs downstream enhancers to activate either H19 or Igf2. We used synthetic regulatory genomics to repeatedly replace the native locus with 157-kb payloads, and we systematically dissected its architecture. Enhancer deletion and ectopic delivery revealed previously uncharacterized long-range regulatory dependencies at the native locus. Exchanging the H19 enhancer cluster with the Sox2 locus control region (LCR) showed that the H19 enhancers relied on their native surroundings while the Sox2 LCR functioned autonomously. Analysis of regulatory DNA actuation across cell types revealed that these enhancer clusters typify broader classes of context sensitivity genome wide. These results show that unexpected dependencies influence even well-studied loci, and our approach permits large-scale manipulation of complete loci to investigate the relationship between regulatory architecture and function.


Subject(s)
CCCTC-Binding Factor , Enhancer Elements, Genetic , Insulin-Like Growth Factor II , RNA, Long Noncoding , SOXB1 Transcription Factors , Animals , Mice , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , Insulin-Like Growth Factor II/genetics , Insulin-Like Growth Factor II/metabolism , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , SOXB1 Transcription Factors/genetics , SOXB1 Transcription Factors/metabolism , Locus Control Region/genetics , Genomic Imprinting , Genomics/methods
4.
Nature ; 630(8015): 189-197, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38811728

ABSTRACT

In developing B cells, V(D)J recombination assembles exons encoding IgH and Igκ variable regions from hundreds of gene segments clustered across Igh and Igk loci. V, D and J gene segments are flanked by conserved recombination signal sequences (RSSs) that target RAG endonuclease1. RAG orchestrates Igh V(D)J recombination upon capturing a JH-RSS within the JH-RSS-based recombination centre1-3 (RC). JH-RSS orientation programmes RAG to scan upstream D- and VH-containing chromatin that is presented in a linear manner by cohesin-mediated loop extrusion4-7. During Igh scanning, RAG robustly utilizes only D-RSSs or VH-RSSs in convergent (deletional) orientation with JH-RSSs4-7. However, for Vκ-to-Jκ joining, RAG utilizes Vκ-RSSs from deletional- and inversional-oriented clusters8, inconsistent with linear scanning2. Here we characterize the Vκ-to-Jκ joining mechanism. Igk undergoes robust primary and secondary rearrangements9,10, which confounds scanning assays. We therefore engineered cells to undergo only primary Vκ-to-Jκ rearrangements and found that RAG scanning from the primary Jκ-RC terminates just 8 kb upstream within the CTCF-site-based Sis element11. Whereas Sis and the Jκ-RC barely interacted with the Vκ locus, the CTCF-site-based Cer element12 4 kb upstream of Sis interacted with various loop extrusion impediments across the locus. Similar to VH locus inversion7, DJH inversion abrogated VH-to-DJH joining; yet Vκ locus or Jκ inversion allowed robust Vκ-to-Jκ joining. Together, these experiments implicated loop extrusion in bringing Vκ segments near Cer for short-range diffusion-mediated capture by RC-based RAG. To identify key mechanistic elements for diffusional V(D)J recombination in Igk versus Igh, we assayed Vκ-to-JH and D-to-Jκ rearrangements in hybrid Igh-Igk loci generated by targeted chromosomal translocations, and pinpointed remarkably strong Vκ and Jκ RSSs. Indeed, RSS replacements in hybrid or normal Igk and Igh loci confirmed the ability of Igk-RSSs to promote robust diffusional joining compared with Igh-RSSs. We propose that Igk evolved strong RSSs to mediate diffusional Vκ-to-Jκ joining, whereas Igh evolved weaker RSSs requisite for modulating VH joining by RAG-scanning impediments.


Subject(s)
CCCTC-Binding Factor , Immunoglobulin Heavy Chains , Immunoglobulin kappa-Chains , V(D)J Recombination , V(D)J Recombination/genetics , Animals , Mice , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , Immunoglobulin Heavy Chains/genetics , Immunoglobulin kappa-Chains/genetics , Chromatin/genetics , Chromatin/metabolism , Chromatin/chemistry , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , B-Lymphocytes/immunology , B-Lymphocytes/metabolism , Cell Cycle Proteins/metabolism , Cell Cycle Proteins/genetics , Homeodomain Proteins/genetics , Homeodomain Proteins/metabolism , Cohesins , Chromosomal Proteins, Non-Histone/metabolism , Chromosomal Proteins, Non-Histone/genetics , Immunoglobulin Variable Region/genetics , Repressor Proteins/metabolism , Repressor Proteins/genetics , Immunoglobulins/genetics , Immunoglobulins/metabolism , Humans
5.
Gen Physiol Biophys ; 43(3): 231-242, 2024 May.
Article in English | MEDLINE | ID: mdl-38774923

ABSTRACT

Vascular endothelial cell functions affect lower extremity arteriosclerosis obliterans (LEASO), while alpha-2-macroglobulin (A2M) and CCCTC-binding factor (CTCF) are closely related to the function of such cells. This paper aims to identify the influences of CTCF on vascular endothelial cells in LEASO by regulating A2M. A rat model of LEASO was established to measure intima-media ratio, blood lipid, and inflammatory factor levels. By constructing LEASO cell models, cell viability and apoptosis were assayed, while autophagy-related proteins, CTCF and A2M levels in femoral artery tissues and HUVECs were determined. The transcriptional regulation of CTCF on A2M was verified. In LEASO rat models, femoral artery lumen was narrowed and endothelial cells were disordered; levels of total cholesterol, IL-1, and TNF-α enhanced, and HDL-C decreased, with strong expression of A2M and low expression of CTCF. The viability of ox-LDL-treated HUVECs was decreased, together with higher apoptosis, lower LC3II/I expression, and higher p62 expression, which were reversed by sh-A2M transfection. Overexpression of CTCF inhibited A2M transcription, promoted the viability and autophagy of HUVECs, and decreased apoptosis. Collectively, CTCF improves the function of vascular endothelial cells in LEASO by inhibiting A2M transcription.


Subject(s)
Arteriosclerosis Obliterans , CCCTC-Binding Factor , Human Umbilical Vein Endothelial Cells , Animals , Humans , Male , Rats , Apoptosis , Arteriosclerosis Obliterans/metabolism , Autophagy , CCCTC-Binding Factor/metabolism , Cell Survival , Endothelial Cells/metabolism , Human Umbilical Vein Endothelial Cells/metabolism , Lower Extremity/blood supply , Pregnancy-Associated alpha 2-Macroglobulins/metabolism , Rats, Sprague-Dawley , Transcription, Genetic
6.
Nucleic Acids Res ; 52(10): e48, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38726866

ABSTRACT

Many of the biological functions performed by RNA are mediated by RNA-binding proteins (RBPs), and understanding the molecular basis of these interactions is fundamental to biology. Here, we present massively parallel RNA assay combined with immunoprecipitation (MPRNA-IP) for in vivo high-throughput dissection of RNA-protein interactions and describe statistical models for identifying RNA domains and parsing the structural contributions of RNA. By using custom pools of tens of thousands of RNA sequences containing systematically designed truncations and mutations, MPRNA-IP is able to identify RNA domains, sequences, and secondary structures necessary and sufficient for protein binding in a single experiment. We show that this approach is successful for multiple RNAs of interest, including the long noncoding RNA NORAD, bacteriophage MS2 RNA, and human telomerase RNA, and we use it to interrogate the hitherto unknown sequence or structural RNA-binding preferences of the DNA-looping factor CTCF. By integrating systematic mutation analysis with crosslinking immunoprecipitation, MPRNA-IP provides a novel high-throughput way to elucidate RNA-based mechanisms behind RNA-protein interactions in vivo.


Subject(s)
RNA-Binding Proteins , RNA , Humans , Binding Sites , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , Immunoprecipitation , Levivirus/genetics , Levivirus/metabolism , Mutation , Nucleic Acid Conformation , Protein Binding , RNA/metabolism , RNA/chemistry , RNA/genetics , RNA, Long Noncoding/metabolism , RNA, Long Noncoding/genetics , RNA, Long Noncoding/chemistry , RNA, Viral/metabolism , RNA, Viral/chemistry , RNA, Viral/genetics , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics , RNA-Binding Proteins/chemistry , Telomerase/metabolism , Telomerase/genetics , Models, Statistical
7.
Epigenetics Chromatin ; 17(1): 9, 2024 Apr 01.
Article in English | MEDLINE | ID: mdl-38561749

ABSTRACT

BACKGROUND: CTCF is highly likely to be the ancestor of proteins that contain large clusters of C2H2 zinc finger domains, and its conservation is observed across most bilaterian organisms. In mammals, CTCF is the primary architectural protein involved in organizing chromosome topology and mediating enhancer-promoter interactions over long distances. In Drosophila, CTCF (dCTCF) cooperates with other architectural proteins to establish long-range interactions and chromatin boundaries. CTCFs of various organisms contain an unstructured N-terminal dimerization domain (DD) and clusters comprising eleven zinc-finger domains of the C2H2 type. The Drosophila (dCTCF) and human (hCTCF) CTCFs share sequence homology in only five C2H2 domains that specifically bind to a conserved 15 bp motif. RESULTS: Previously, we demonstrated that CTCFs from different organisms carry unstructured N-terminal dimerization domains (DDs) that lack sequence homology. Here we used the CTCFattP(mCh) platform to introduce desired changes in the Drosophila CTCF gene and generated a series of transgenic lines expressing dCTCF with different variants of the N-terminal domain. Our findings revealed that the functionality of dCTCF is significantly affected by the deletion of the N-terminal DD. Additionally, we observed a strong impact on the binding of the dCTCF mutant to chromatin upon deletion of the DD. However, chromatin binding was restored in transgenic flies expressing a chimeric CTCF protein with the DD of hCTCF. Although the chimeric protein exhibited lower expression levels than those of the dCTCF variants, it efficiently bound to chromatin similarly to the wild type (wt) protein. CONCLUSIONS: Our findings suggest that one of the evolutionarily conserved functions of the unstructured N-terminal dimerization domain is to recruit dCTCF to its genomic sites in vivo.


Subject(s)
Drosophila Proteins , Drosophila , Animals , Humans , Animals, Genetically Modified/metabolism , CCCTC-Binding Factor/metabolism , Chromatin/metabolism , Dimerization , Drosophila/genetics , Drosophila melanogaster/genetics , Drosophila Proteins/metabolism , Mammals/genetics
8.
Nat Commun ; 15(1): 2813, 2024 Apr 01.
Article in English | MEDLINE | ID: mdl-38561336

ABSTRACT

CCCTC-binding factor (CTCF), a ubiquitously expressed and highly conserved protein, is known to play a critical role in chromatin structure. Post-translational modifications (PTMs) diversify the functions of protein to regulate numerous cellular processes. However, the effects of PTMs on the genome-wide binding of CTCF and the organization of three-dimensional (3D) chromatin structure have not been fully understood. In this study, we uncovered the PTM profiling of CTCF and demonstrated that CTCF can be O-GlcNAcylated and arginine methylated. Functionally, we demonstrated that O-GlcNAcylation inhibits CTCF binding to chromatin. Meanwhile, deficiency of CTCF O-GlcNAcylation results in the disruption of loop domains and the alteration of chromatin loops associated with cellular development. Furthermore, the deficiency of CTCF O-GlcNAcylation increases the expression of developmental genes and negatively regulates maintenance and establishment of stem cell pluripotency. In conclusion, these results provide key insights into the role of PTMs for the 3D chromatin structure.


Subject(s)
Genome , Protein Processing, Post-Translational , CCCTC-Binding Factor/metabolism , Cell Differentiation , Chromatin
9.
Nat Commun ; 15(1): 3380, 2024 Apr 20.
Article in English | MEDLINE | ID: mdl-38643172

ABSTRACT

While 3D chromatin organization in topologically associating domains (TADs) and loops mediating regulatory element-promoter interactions is crucial for tissue-specific gene regulation, the extent of their involvement in human Mendelian disease is largely unknown. Here, we identify 7 families presenting a new cardiac entity associated with a heterozygous deletion of 2 CTCF binding sites on 4q25, inducing TAD fusion and chromatin conformation remodeling. The CTCF binding sites are located in a gene desert at 1 Mb from the Paired-like homeodomain transcription factor 2 gene (PITX2). By introducing the ortholog of the human deletion in the mouse genome, we recapitulate the patient phenotype and characterize an opposite dysregulation of PITX2 expression in the sinoatrial node (ectopic activation) and ventricle (reduction), respectively. Chromatin conformation assay performed in human induced pluripotent stem cell-derived cardiomyocytes harboring the minimal deletion identified in family#1 reveals a conformation remodeling and fusion of TADs. We conclude that TAD remodeling mediated by deletion of CTCF binding sites causes a new autosomal dominant Mendelian cardiac disorder.


Subject(s)
Induced Pluripotent Stem Cells , Humans , Animals , Mice , CCCTC-Binding Factor/genetics , CCCTC-Binding Factor/metabolism , Induced Pluripotent Stem Cells/metabolism , Chromatin/genetics , DNA-Binding Proteins/metabolism , Genome
10.
Epigenetics Chromatin ; 17(1): 10, 2024 Apr 20.
Article in English | MEDLINE | ID: mdl-38643244

ABSTRACT

BACKGROUND: Nuclear organization of interphase chromosomes involves individual chromosome territories, "open" and "closed" chromatin compartments, topologically associated domains (TADs) and chromatin loops. The DNA- and RNA-binding transcription factor CTCF together with the cohesin complex serve as major organizers of chromatin architecture. Cellular differentiation is driven by temporally and spatially coordinated gene expression that requires chromatin changes of individual loci of various complexities. Lens differentiation represents an advantageous system to probe transcriptional mechanisms underlying tissue-specific gene expression including high transcriptional outputs of individual crystallin genes until the mature lens fiber cells degrade their nuclei. RESULTS: Chromatin organization between mouse embryonic stem (ES) cells, newborn (P0.5) lens epithelium and fiber cells were analyzed using Hi-C. Localization of CTCF in both lens chromatins was determined by ChIP-seq and compared with ES cells. Quantitative analyses show major differences between number and size of TADs and chromatin loop size between these three cell types. In depth analyses show similarities between lens samples exemplified by overlaps between compartments A and B. Lens epithelium-specific CTCF peaks are found in mostly methylated genomic regions while lens fiber-specific and shared peaks occur mostly within unmethylated DNA regions. Major differences in TADs and loops are illustrated at the ~ 500 kb Pax6 locus, encoding the critical lens regulatory transcription factor and within a larger ~ 15 Mb WAGR locus, containing Pax6 and other loci linked to human congenital diseases. Lens and ES cell Hi-C data (TADs and loops) together with ATAC-seq, CTCF, H3K27ac, H3K27me3 and ENCODE cis-regulatory sites are shown in detail for the Pax6, Sox1 and Hif1a loci, multiple crystallin genes and other important loci required for lens morphogenesis. The majority of crystallin loci are marked by unexpectedly high CTCF-binding across their transcribed regions. CONCLUSIONS: Our study has generated the first data on 3-dimensional (3D) nuclear organization in lens epithelium and lens fibers and directly compared these data with ES cells. These findings generate novel insights into lens-specific transcriptional gene control, open new research avenues to study transcriptional condensates in lens fiber cells, and enable studies of non-coding genetic variants linked to cataract and other lens and ocular abnormalities.


Subject(s)
Chromatin , Crystallins , Animals , Mice , Humans , Mouse Embryonic Stem Cells/metabolism , Chromosomes/metabolism , Transcription Factors/metabolism , DNA/metabolism , Epithelium/metabolism , Crystallins/genetics , Crystallins/metabolism , CCCTC-Binding Factor/metabolism
11.
EMBO J ; 43(9): 1770-1798, 2024 May.
Article in English | MEDLINE | ID: mdl-38565950

ABSTRACT

The cancer epigenome has been studied in cells cultured in two-dimensional (2D) monolayers, but recent studies highlight the impact of the extracellular matrix and the three-dimensional (3D) environment on multiple cellular functions. Here, we report the physical, biochemical, and genomic differences between T47D breast cancer cells cultured in 2D and as 3D spheroids. Cells within 3D spheroids exhibit a rounder nucleus with less accessible, more compacted chromatin, as well as altered expression of ~2000 genes, the majority of which become repressed. Hi-C analysis reveals that cells in 3D are enriched for regions belonging to the B compartment, have decreased chromatin-bound CTCF and increased fusion of topologically associating domains (TADs). Upregulation of the Hippo pathway in 3D spheroids results in the activation of the LATS1 kinase, which promotes phosphorylation and displacement of CTCF from DNA, thereby likely causing the observed TAD fusions. 3D cells show higher chromatin binding of progesterone receptor (PR), leading to an increase in the number of hormone-regulated genes. This effect is in part mediated by LATS1 activation, which favors cytoplasmic retention of YAP and CTCF removal.


Subject(s)
Breast Neoplasms , CCCTC-Binding Factor , Chromatin , Protein Serine-Threonine Kinases , Humans , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , Breast Neoplasms/metabolism , Breast Neoplasms/genetics , Breast Neoplasms/pathology , Protein Serine-Threonine Kinases/metabolism , Protein Serine-Threonine Kinases/genetics , Chromatin/metabolism , Chromatin/genetics , Female , Cell Line, Tumor , Gene Expression Regulation, Neoplastic , Spheroids, Cellular/metabolism , Spheroids, Cellular/pathology , Receptors, Progesterone/metabolism , Receptors, Progesterone/genetics , Hippo Signaling Pathway
12.
Methods ; 226: 151-160, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38670416

ABSTRACT

Chromatin loop is of crucial importance for the regulation of gene transcription. Cohesin is a type of chromatin-associated protein that mediates the interaction of chromatin through the loop extrusion. Cohesin-mediated chromatin interactions have strong cell-type specificity, posing a challenge for predicting chromatin loops. Existing computational methods perform poorly in predicting cell-type-specific chromatin loops. To address this issue, we propose a random forest model to predict cell-type-specific cohesin-mediated chromatin loops based on chromatin states identified by ChromHMM and the occupancy of related factors. Our results show that chromatin state is responsible for cell-type-specificity of loops. Using only chromatin states as features, the model achieved high accuracy in predicting cell-type-specific loops between two cell types and can be applied to different cell types. Furthermore, when chromatin states are combined with the occurrence frequency of CTCF, RAD21, YY1, and H3K27ac ChIP-seq peaks, more accurate prediction can be achieved. Our feature extraction method provides novel insights into predicting cell-type-specific chromatin loops and reveals the relationship between chromatin state and chromatin loop formation.


Subject(s)
CCCTC-Binding Factor , Cell Cycle Proteins , Chromatin , Chromosomal Proteins, Non-Histone , Cohesins , Chromosomal Proteins, Non-Histone/metabolism , Chromosomal Proteins, Non-Histone/genetics , Cell Cycle Proteins/metabolism , Cell Cycle Proteins/genetics , Chromatin/metabolism , Chromatin/genetics , Humans , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , YY1 Transcription Factor/metabolism , YY1 Transcription Factor/genetics , Nuclear Proteins/metabolism , Nuclear Proteins/genetics , Computational Biology/methods , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , Histones/metabolism , Histones/genetics , Phosphoproteins/metabolism , Phosphoproteins/genetics , Chromatin Immunoprecipitation Sequencing/methods
13.
Mol Cell ; 84(10): 1826-1841.e5, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38657614

ABSTRACT

In meiotic cells, chromosomes are organized as chromatin loop arrays anchored to a protein axis. This organization is essential to regulate meiotic recombination, from DNA double-strand break (DSB) formation to their repair. In mammals, it is unknown how chromatin loops are organized along the genome and how proteins participating in DSB formation are tethered to the chromosome axes. Here, we identify three categories of axis-associated genomic sites: PRDM9 binding sites, where DSBs form; binding sites of the insulator protein CTCF; and H3K4me3-enriched sites. We demonstrate that PRDM9 promotes the recruitment of MEI4 and IHO1, two proteins essential for DSB formation. In turn, IHO1 anchors DSB sites to the axis components HORMAD1 and SYCP3. We discovered that IHO1, HORMAD1, and SYCP3 are associated at the DSB ends during DSB repair. Our results highlight how interactions of proteins with specific genomic elements shape the meiotic chromosome organization for recombination.


Subject(s)
DNA Breaks, Double-Stranded , Histone-Lysine N-Methyltransferase , Meiosis , Meiosis/genetics , Histone-Lysine N-Methyltransferase/genetics , Histone-Lysine N-Methyltransferase/metabolism , Animals , Mice , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , Histones/metabolism , Histones/genetics , Cell Cycle Proteins/metabolism , Cell Cycle Proteins/genetics , Binding Sites , Chromosomes/genetics , Chromosomes/metabolism , Chromatin/metabolism , Chromatin/genetics , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , Humans , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Recombination, Genetic , Male
14.
Curr Opin Genet Dev ; 86: 102193, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38626581

ABSTRACT

The human genome is not just a simple string of DNA, it is a complex and dynamic entity intricately folded within the cell's nucleus. This three-dimensional organization of chromatin, the combination of DNA and proteins in the nucleus, is crucial for many biological processes and has been prominently studied for its intricate relationship to gene expression. Indeed, the transcriptional machinery does not operate in isolation but interacts intimately with the folded chromatin structure. Techniques for chromatin conformation capture, including genome-wide sequencing approaches, have revealed key organizational features of chromatin, such as the formation of loops by CCCTC-binding factor (CTCF) and the division of loci into chromatin compartments. While much of the recent research and reviews have focused on CTCF loops, we discuss several new revelations that have emerged concerning chromatin compartments, with a particular focus on what is known about mechanistic drivers of compartmentalization. These insights challenge the traditional views of chromatin organization and reveal the complexity behind the formation and maintenance of chromatin compartments.


Subject(s)
CCCTC-Binding Factor , Chromatin , Humans , Chromatin/genetics , Chromatin/metabolism , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , Genome, Human/genetics , Cell Nucleus/genetics , Cell Nucleus/metabolism , DNA/genetics , DNA/metabolism , Chromatin Assembly and Disassembly/genetics , Animals
15.
Nucleic Acids Res ; 52(7): 3837-3855, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38452213

ABSTRACT

CCCTC-binding factor (CTCF) binding sites are hotspots of genome instability. Although many factors have been associated with CTCF binding site fragility, no study has integrated all fragility-related factors to understand the mechanism(s) of how they work together. Using an unbiased, genome-wide approach, we found that DNA double-strand breaks (DSBs) are enriched at strong, but not weak, CTCF binding sites in five human cell types. Energetically favorable alternative DNA secondary structures underlie strong CTCF binding sites. These structures coincided with the location of topoisomerase II (TOP2) cleavage complex, suggesting that DNA secondary structure acts as a recognition sequence for TOP2 binding and cleavage at CTCF binding sites. Furthermore, CTCF knockdown significantly increased DSBs at strong CTCF binding sites and at CTCF sites that are located at topologically associated domain (TAD) boundaries. TAD boundary-associated CTCF sites that lost CTCF upon knockdown displayed increased DSBs when compared to the gained sites, and those lost sites are overrepresented with G-quadruplexes, suggesting that the structures act as boundary insulators in the absence of CTCF, and contribute to increased DSBs. These results model how alternative DNA secondary structures facilitate recruitment of TOP2 to CTCF binding sites, providing mechanistic insight into DNA fragility at CTCF binding sites.


Subject(s)
CCCTC-Binding Factor , DNA Breaks, Double-Stranded , DNA Topoisomerases, Type II , DNA , Nucleic Acid Conformation , DNA Topoisomerases, Type II/metabolism , DNA Topoisomerases, Type II/genetics , DNA Topoisomerases, Type II/chemistry , Humans , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , Binding Sites , DNA/metabolism , DNA/chemistry , DNA/genetics , Protein Binding , Poly-ADP-Ribose Binding Proteins/metabolism , Poly-ADP-Ribose Binding Proteins/genetics , Poly-ADP-Ribose Binding Proteins/chemistry , Cell Line
16.
Mol Cell ; 84(7): 1365-1376.e7, 2024 Apr 04.
Article in English | MEDLINE | ID: mdl-38452764

ABSTRACT

Enhancer-gene communication is dependent on topologically associating domains (TADs) and boundaries enforced by the CCCTC-binding factor (CTCF) insulator, but the underlying structures and mechanisms remain controversial. Here, we investigate a boundary that typically insulates fibroblast growth factor (FGF) oncogenes but is disrupted by DNA hypermethylation in gastrointestinal stromal tumors (GISTs). The boundary contains an array of CTCF sites that enforce adjacent TADs, one containing FGF genes and the other containing ANO1 and its putative enhancers, which are specifically active in GIST and its likely cell of origin. We show that coordinate disruption of four CTCF motifs in the boundary fuses the adjacent TADs, allows the ANO1 enhancer to contact FGF3, and causes its robust induction. High-resolution micro-C maps reveal specific contact between transcription initiation sites in the ANO1 enhancer and FGF3 promoter that quantitatively scales with FGF3 induction such that modest changes in contact frequency result in strong changes in expression, consistent with a causal relationship.


Subject(s)
Chromatin , Enhancer Elements, Genetic , CCCTC-Binding Factor/genetics , CCCTC-Binding Factor/metabolism , Chromatin/genetics , Oncogenes , DNA/chemistry
17.
Nat Struct Mol Biol ; 31(3): 404-412, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38499830

ABSTRACT

Cytosine DNA methylation is a highly conserved epigenetic mark in eukaryotes. Although the role of DNA methylation at gene promoters and repetitive elements has been extensively studied, the function of DNA methylation in other genomic contexts remains less clear. In the nucleus of mammalian cells, the genome is spatially organized at different levels, and strongly influences myriad genomic processes. There are a number of factors that regulate the three-dimensional (3D) organization of the genome, with the CTCF insulator protein being among the most well-characterized. Pertinently, CTCF binding has been reported as being DNA methylation-sensitive in certain contexts, perhaps most notably in the process of genomic imprinting. Therefore, it stands to reason that DNA methylation may play a broader role in the regulation of chromatin architecture. Here we summarize the current understanding that is relevant to both the mammalian DNA methylation and chromatin architecture fields and attempt to assess the extent to which DNA methylation impacts the folding of the genome. The focus is in early embryonic development and cellular transitions when the epigenome is in flux, but we also describe insights from pathological contexts, such as cancer, in which the epigenome and 3D genome organization are misregulated.


Subject(s)
DNA Methylation , Repressor Proteins , Animals , Repressor Proteins/metabolism , CCCTC-Binding Factor/metabolism , Genomic Imprinting , Chromatin , Mammals/genetics
18.
Nucleic Acids Res ; 52(7): 3654-3666, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38300758

ABSTRACT

DNA Methylation is a significant epigenetic modification that can modulate chromosome states, but its role in orchestrating chromosome organization has not been well elucidated. Here we systematically assessed the effects of DNA Methylation on chromosome organization with a multi-omics strategy to capture DNA Methylation and high-order chromosome interaction simultaneously on mouse embryonic stem cells with DNA methylation dioxygenase Tet triple knock-out (Tet-TKO). Globally, upon Tet-TKO, we observed weakened compartmentalization, corresponding to decreased methylation differences between CpG island (CGI) rich and poor domains. Tet-TKO could also induce hypermethylation for the CTCF binding peaks in TAD boundaries and chromatin loop anchors. Accordingly, CTCF peak generally weakened upon Tet-TKO, which results in weakened TAD structure and depletion of long-range chromatin loops. Genes that lost enhancer-promoter looping upon Tet-TKO showed DNA hypermethylation in their gene bodies, which may compensate for the disruption of gene expression. We also observed distinct effects of Tet1 and Tet2 on chromatin organization and increased DNA methylation correlation on spatially interacted fragments upon Tet inactivation. Our work showed the broad effects of Tet inactivation and DNA methylation dynamics on chromosome organization.


Subject(s)
Chromatin , CpG Islands , DNA Methylation , DNA-Binding Proteins , Dioxygenases , Proto-Oncogene Proteins , Animals , Mice , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , Dioxygenases/metabolism , Dioxygenases/genetics , Proto-Oncogene Proteins/genetics , Proto-Oncogene Proteins/metabolism , Chromatin/metabolism , Chromatin/genetics , CpG Islands/genetics , Mouse Embryonic Stem Cells/metabolism , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , Epigenesis, Genetic , Promoter Regions, Genetic , Chromosomes/genetics
19.
Genes (Basel) ; 15(2)2024 Jan 23.
Article in English | MEDLINE | ID: mdl-38397134

ABSTRACT

Characterization of gene regulatory mechanisms in cancer is a key task in cancer genomics. CCCTC-binding factor (CTCF), a DNA binding protein, exhibits specific binding patterns in the genome of cancer cells and has a non-canonical function to facilitate oncogenic transcription programs by cooperating with transcription factors bound at flanking distal regions. Identification of DNA sequence features from a broad genomic region that distinguish cancer-specific CTCF binding sites from regular CTCF binding sites can help find oncogenic transcription factors in a cancer type. However, the presence of long DNA sequences without localization information makes it difficult to perform conventional motif analysis. Here, we present DNAResDualNet (DARDN), a computational method that utilizes convolutional neural networks (CNNs) for predicting cancer-specific CTCF binding sites from long DNA sequences and employs DeepLIFT, a method for interpretability of deep learning models that explains the model's output in terms of the contributions of its input features. The method is used for identifying DNA sequence features associated with cancer-specific CTCF binding. Evaluation on DNA sequences associated with CTCF binding sites in T-cell acute lymphoblastic leukemia (T-ALL) and other cancer types demonstrates DARDN's ability in classifying DNA sequences surrounding cancer-specific CTCF binding from control constitutive CTCF binding and identifying sequence motifs for transcription factors potentially active in each specific cancer type. We identify potential oncogenic transcription factors in T-ALL, acute myeloid leukemia (AML), breast cancer (BRCA), colorectal cancer (CRC), lung adenocarcinoma (LUAD), and prostate cancer (PRAD). Our work demonstrates the power of advanced machine learning and feature discovery approach in finding biologically meaningful information from complex high-throughput sequencing data.


Subject(s)
Deep Learning , Precursor T-Cell Lymphoblastic Leukemia-Lymphoma , Humans , CCCTC-Binding Factor/genetics , CCCTC-Binding Factor/metabolism , DNA/genetics , Transcription Factors/metabolism
20.
Cell Rep ; 43(1): 113663, 2024 01 23.
Article in English | MEDLINE | ID: mdl-38206813

ABSTRACT

The transcription factor ZNF143 contains a central domain of seven zinc fingers in a tandem array and is involved in 3D genome construction. However, the mechanism by which ZNF143 functions in chromatin looping remains unclear. Here, we show that ZNF143 directionally recognizes a diverse range of genomic sites directly within enhancers and promoters and is required for chromatin looping between these sites. In addition, ZNF143 is located between CTCF and cohesin at numerous CTCF sites, and ZNF143 removal narrows the space between CTCF and cohesin. Moreover, genetic deletion of ZNF143, in conjunction with acute CTCF degradation, reveals that ZNF143 and CTCF collaborate to regulate higher-order topological chromatin organization. Finally, CTCF depletion enlarges direct ZNF143 chromatin looping. Thus, ZNF143 is recruited by CTCF to the CTCF sites to regulate CTCF/cohesin configuration and TAD (topologically associating domain) formation, whereas directional recognition of genomic DNA motifs directly by ZNF143 itself regulates promoter activity via chromatin looping.


Subject(s)
Chromosomal Proteins, Non-Histone , Cohesins , Chromosomal Proteins, Non-Histone/metabolism , CCCTC-Binding Factor/metabolism , Chromatin , Cell Cycle Proteins/genetics , Cell Cycle Proteins/metabolism , Binding Sites
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