Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 36
Filter
1.
Cell ; 161(5): 955-957, 2015 May 21.
Article in English | MEDLINE | ID: mdl-26000472

ABSTRACT

Structural variations are common in the human genome, but their contributions to human diseases have been hard to define. Lupiáñez et al. demonstrate that some structural variants can interrupt chromatin topology, resulting in ectopic enhancer-promoter interactions, altered spatiotemporal gene expression patterns, and developmental disorders.


Subject(s)
Disease Models, Animal , Enhancer Elements, Genetic , Gene Expression Regulation , Animals , Humans
2.
Nature ; 624(7991): 366-377, 2023 Dec.
Article in English | MEDLINE | ID: mdl-38092913

ABSTRACT

Cytosine DNA methylation is essential in brain development and is implicated in various neurological disorders. Understanding DNA methylation diversity across the entire brain in a spatial context is fundamental for a complete molecular atlas of brain cell types and their gene regulatory landscapes. Here we used single-nucleus methylome sequencing (snmC-seq3) and multi-omic sequencing (snm3C-seq)1 technologies to generate 301,626 methylomes and 176,003 chromatin conformation-methylome joint profiles from 117 dissected regions throughout the adult mouse brain. Using iterative clustering and integrating with companion whole-brain transcriptome and chromatin accessibility datasets, we constructed a methylation-based cell taxonomy with 4,673 cell groups and 274 cross-modality-annotated subclasses. We identified 2.6 million differentially methylated regions across the genome that represent potential gene regulation elements. Notably, we observed spatial cytosine methylation patterns on both genes and regulatory elements in cell types within and across brain regions. Brain-wide spatial transcriptomics data validated the association of spatial epigenetic diversity with transcription and improved the anatomical mapping of our epigenetic datasets. Furthermore, chromatin conformation diversities occurred in important neuronal genes and were highly associated with DNA methylation and transcription changes. Brain-wide cell-type comparisons enabled the construction of regulatory networks that incorporate transcription factors, regulatory elements and their potential downstream gene targets. Finally, intragenic DNA methylation and chromatin conformation patterns predicted alternative gene isoform expression observed in a whole-brain SMART-seq2 dataset. Our study establishes a brain-wide, single-cell DNA methylome and 3D multi-omic atlas and provides a valuable resource for comprehending the cellular-spatial and regulatory genome diversity of the mouse brain.


Subject(s)
Brain , DNA Methylation , Epigenome , Multiomics , Single-Cell Analysis , Animals , Mice , Brain/cytology , Brain/metabolism , Chromatin/chemistry , Chromatin/genetics , Chromatin/metabolism , Cytosine/metabolism , Datasets as Topic , Transcription Factors/metabolism , Transcription, Genetic
3.
Nature ; 612(7940): 564-572, 2022 12.
Article in English | MEDLINE | ID: mdl-36477537

ABSTRACT

Higher-order chromatin structure is important for the regulation of genes by distal regulatory sequences1,2. Structural variants (SVs) that alter three-dimensional (3D) genome organization can lead to enhancer-promoter rewiring and human disease, particularly in the context of cancer3. However, only a small minority of SVs are associated with altered gene expression4,5, and it remains unclear why certain SVs lead to changes in distal gene expression and others do not. To address these questions, we used a combination of genomic profiling and genome engineering to identify sites of recurrent changes in 3D genome structure in cancer and determine the effects of specific rearrangements on oncogene activation. By analysing Hi-C data from 92 cancer cell lines and patient samples, we identified loci affected by recurrent alterations to 3D genome structure, including oncogenes such as MYC, TERT and CCND1. By using CRISPR-Cas9 genome engineering to generate de novo SVs, we show that oncogene activity can be predicted by using 'activity-by-contact' models that consider partner region chromatin contacts and enhancer activity. However, activity-by-contact models are only predictive of specific subsets of genes in the genome, suggesting that different classes of genes engage in distinct modes of regulation by distal regulatory elements. These results indicate that SVs that alter 3D genome organization are widespread in cancer genomes and begin to illustrate predictive rules for the consequences of SVs on oncogene activation.


Subject(s)
Genomic Structural Variation , Neoplasms , Oncogene Proteins , Oncogenes , Humans , Chromatin/genetics , Gene Rearrangement/genetics , Genomic Structural Variation/genetics , Neoplasms/genetics , Neoplasms/pathology , Oncogenes/genetics , Oncogene Proteins/chemistry , Oncogene Proteins/genetics , Oncogene Proteins/metabolism , Chromosomes, Human/genetics , Cell Line, Tumor , Enhancer Elements, Genetic/genetics , Models, Genetic
4.
Genes Dev ; 34(13-14): 913-930, 2020 07 01.
Article in English | MEDLINE | ID: mdl-32499403

ABSTRACT

During mitosis, transcription of genomic DNA is dramatically reduced, before it is reactivated during nuclear reformation in anaphase/telophase. Many aspects of the underlying principles that mediate transcriptional memory and reactivation in the daughter cells remain unclear. Here, we used ChIP-seq on synchronized cells at different stages after mitosis to generate genome-wide maps of histone modifications. Combined with EU-RNA-seq and Hi-C analyses, we found that during prometaphase, promoters, enhancers, and insulators retain H3K4me3 and H3K4me1, while losing H3K27ac. Enhancers globally retaining mitotic H3K4me1 or locally retaining mitotic H3K27ac are associated with cell type-specific genes and their transcription factors for rapid transcriptional activation. As cells exit mitosis, promoters regain H3K27ac, which correlates with transcriptional reactivation. Insulators also gain H3K27ac and CCCTC-binding factor (CTCF) in anaphase/telophase. This increase of H3K27ac in anaphase/telophase is required for posttranscriptional activation and may play a role in the establishment of topologically associating domains (TADs). Together, our results suggest that the genome is reorganized in a sequential order, in which histone methylations occur first in prometaphase, histone acetylation, and CTCF in anaphase/telophase, transcription in cytokinesis, and long-range chromatin interactions in early G1. We thus provide insights into the histone modification landscape that allows faithful reestablishment of the transcriptional program and TADs during cell division.


Subject(s)
Chromatin/metabolism , Histone Code/genetics , Histones/metabolism , Mitosis/genetics , Protein Processing, Post-Translational/genetics , Transcriptional Activation/genetics , Animals , Cell Cycle Checkpoints/genetics , Chromosomes/genetics , Chromosomes/metabolism , Enhancer Elements, Genetic , Genome/genetics , Humans , Promoter Regions, Genetic , Protein Binding , Time Factors
5.
Nature ; 598(7879): 120-128, 2021 10.
Article in English | MEDLINE | ID: mdl-34616061

ABSTRACT

Mammalian brain cells show remarkable diversity in gene expression, anatomy and function, yet the regulatory DNA landscape underlying this extensive heterogeneity is poorly understood. Here we carry out a comprehensive assessment of the epigenomes of mouse brain cell types by applying single-nucleus DNA methylation sequencing1,2 to profile 103,982 nuclei (including 95,815 neurons and 8,167 non-neuronal cells) from 45 regions of the mouse cortex, hippocampus, striatum, pallidum and olfactory areas. We identified 161 cell clusters with distinct spatial locations and projection targets. We constructed taxonomies of these epigenetic types, annotated with signature genes, regulatory elements and transcription factors. These features indicate the potential regulatory landscape supporting the assignment of putative cell types and reveal repetitive usage of regulators in excitatory and inhibitory cells for determining subtypes. The DNA methylation landscape of excitatory neurons in the cortex and hippocampus varied continuously along spatial gradients. Using this deep dataset, we constructed an artificial neural network model that precisely predicts single neuron cell-type identity and brain area spatial location. Integration of high-resolution DNA methylomes with single-nucleus chromatin accessibility data3 enabled prediction of high-confidence enhancer-gene interactions for all identified cell types, which were subsequently validated by cell-type-specific chromatin conformation capture experiments4. By combining multi-omic datasets (DNA methylation, chromatin contacts, and open chromatin) from single nuclei and annotating the regulatory genome of hundreds of cell types in the mouse brain, our DNA methylation atlas establishes the epigenetic basis for neuronal diversity and spatial organization throughout the mouse cerebrum.


Subject(s)
Brain/cytology , DNA Methylation , Epigenome , Epigenomics , Neurons/classification , Neurons/metabolism , Single-Cell Analysis , Animals , Atlases as Topic , Brain/metabolism , Chromatin/chemistry , Chromatin/genetics , Chromatin/metabolism , Cytosine/chemistry , Cytosine/metabolism , Datasets as Topic , Dentate Gyrus/cytology , Enhancer Elements, Genetic/genetics , Gene Expression Profiling , Hippocampus/cytology , Hippocampus/metabolism , Male , Mice , Mice, Inbred C57BL , Models, Biological , Neural Pathways , Neurons/cytology
6.
Mol Cell ; 62(5): 668-80, 2016 06 02.
Article in English | MEDLINE | ID: mdl-27259200

ABSTRACT

How eukaryotic chromosomes fold inside the nucleus is an age-old question that remains unanswered today. Early biochemical and microscopic studies revealed the existence of chromatin domains and loops as a pervasive feature of interphase chromosomes, but the biological implications of such organizational features were obscure. Genome-wide analysis of pair-wise chromatin interactions using chromatin conformation capture (3C)-based techniques has shed new light on the organization of chromosomes in interphase nuclei. Particularly, the finding of cell-type invariant, evolutionarily conserved topologically associating domains (TADs) in a broad spectrum of cell types has provided a new molecular framework for the study of animal development and human diseases. Here, we review recent progress in characterization of such chromatin domains and delineation of mechanisms of their formation in animal cells.


Subject(s)
Cell Nucleus/metabolism , Chromatin Assembly and Disassembly , Chromatin/metabolism , Chromosomes/metabolism , Genome , Interphase , Animals , Chromatin/chemistry , Chromatin/genetics , Chromosomes/chemistry , Chromosomes/genetics , Gene Expression Regulation , Genomics/methods , Humans , Nucleic Acid Conformation , Protein Conformation , Structure-Activity Relationship
7.
J Biol Chem ; 298(8): 102117, 2022 08.
Article in English | MEDLINE | ID: mdl-35691341

ABSTRACT

In mammalian organisms, enhancers can regulate transcription from great genomic distances. How enhancers affect distal gene expression has been a major question in the field of gene regulation. One model to explain how enhancers communicate with their target promoters, the chromatin looping model, posits that enhancers and promoters come in close spatial proximity to mediate communication. Chromatin looping has been broadly accepted as a means for enhancer-promoter communication, driven by accumulating in vitro and in vivo evidence. The genome is now known to be folded into a complex 3D arrangement, created and maintained in part by the interplay of the Cohesin complex and the DNA-binding protein CTCF. In the last few years, however, doubt over the relationship between looping and transcriptional activation has emerged, driven by studies finding that only a modest number of genes are perturbed with acute degradation of looping machinery components. In parallel, newer models describing distal enhancer action have also come to prominence. In this article, we explore the emergence and development of the looping model as a means for enhancer-promoter communication and review the contrasting evidence between historical gene-specific and current global data for the role of chromatin looping in transcriptional regulation. We also discuss evidence for alternative models to chromatin looping and their support in the literature. We suggest that, while there is abundant evidence for chromatin looping as a major mechanism for enhancer function, enhancer-promoter communication is likely mediated by more than one mechanism in an enhancer- and context-dependent manner.


Subject(s)
Chromatin , Enhancer Elements, Genetic , Promoter Regions, Genetic , Animals , CCCTC-Binding Factor/genetics , CCCTC-Binding Factor/metabolism , Chromatin/genetics , Chromatin Assembly and Disassembly , Mammals
8.
Nature ; 547(7662): 232-235, 2017 07 12.
Article in English | MEDLINE | ID: mdl-28703188

ABSTRACT

In mammals, chromatin organization undergoes drastic reprogramming after fertilization. However, the three-dimensional structure of chromatin and its reprogramming in preimplantation development remain poorly understood. Here, by developing a low-input Hi-C (genome-wide chromosome conformation capture) approach, we examined the reprogramming of chromatin organization during early development in mice. We found that oocytes in metaphase II show homogeneous chromatin folding that lacks detectable topologically associating domains (TADs) and chromatin compartments. Strikingly, chromatin shows greatly diminished higher-order structure after fertilization. Unexpectedly, the subsequent establishment of chromatin organization is a prolonged process that extends through preimplantation development, as characterized by slow consolidation of TADs and segregation of chromatin compartments. The two sets of parental chromosomes are spatially separated from each other and display distinct compartmentalization in zygotes. Such allele separation and allelic compartmentalization can be found as late as the 8-cell stage. Finally, we show that chromatin compaction in preimplantation embryos can partially proceed in the absence of zygotic transcription and is a multi-level hierarchical process. Taken together, our data suggest that chromatin may exist in a markedly relaxed state after fertilization, followed by progressive maturation of higher-order chromatin architecture during early development.


Subject(s)
Alleles , Chromatin Assembly and Disassembly/genetics , Chromatin/chemistry , Chromatin/genetics , Chromosomes, Mammalian/chemistry , Chromosomes, Mammalian/genetics , Embryonic Development/genetics , Animals , Blastocyst/metabolism , Chromatin/metabolism , Chromosomes, Mammalian/metabolism , Female , Fertilization , Gene Expression Regulation, Developmental , Male , Mice , Transcription, Genetic , Zygote/metabolism
9.
Nat Methods ; 16(10): 999-1006, 2019 10.
Article in English | MEDLINE | ID: mdl-31501549

ABSTRACT

Dynamic three-dimensional chromatin conformation is a critical mechanism for gene regulation during development and disease. Despite this, profiling of three-dimensional genome structure from complex tissues with cell-type specific resolution remains challenging. Recent efforts have demonstrated that cell-type specific epigenomic features can be resolved in complex tissues using single-cell assays. However, it remains unclear whether single-cell chromatin conformation capture (3C) or Hi-C profiles can effectively identify cell types and reconstruct cell-type specific chromatin conformation maps. To address these challenges, we have developed single-nucleus methyl-3C sequencing to capture chromatin organization and DNA methylation information and robustly separate heterogeneous cell types. Applying this method to >4,200 single human brain prefrontal cortex cells, we reconstruct cell-type specific chromatin conformation maps from 14 cortical cell types. These datasets reveal the genome-wide association between cell-type specific chromatin conformation and differential DNA methylation, suggesting pervasive interactions between epigenetic processes regulating gene expression.


Subject(s)
DNA Methylation , Genome, Human , Single-Cell Analysis , Algorithms , Chromatin/metabolism , Datasets as Topic , Epigenesis, Genetic , Gene Expression Regulation , Genome-Wide Association Study , Humans
10.
Proc Natl Acad Sci U S A ; 116(28): 14011-14018, 2019 07 09.
Article in English | MEDLINE | ID: mdl-31235599

ABSTRACT

Three-dimensional genome structure plays a pivotal role in gene regulation and cellular function. Single-cell analysis of genome architecture has been achieved using imaging and chromatin conformation capture methods such as Hi-C. To study variation in chromosome structure between different cell types, computational approaches are needed that can utilize sparse and heterogeneous single-cell Hi-C data. However, few methods exist that are able to accurately and efficiently cluster such data into constituent cell types. Here, we describe scHiCluster, a single-cell clustering algorithm for Hi-C contact matrices that is based on imputations using linear convolution and random walk. Using both simulated and real single-cell Hi-C data as benchmarks, scHiCluster significantly improves clustering accuracy when applied to low coverage datasets compared with existing methods. After imputation by scHiCluster, topologically associating domain (TAD)-like structures (TLSs) can be identified within single cells, and their consensus boundaries were enriched at the TAD boundaries observed in bulk cell Hi-C samples. In summary, scHiCluster facilitates visualization and comparison of single-cell 3D genomes.


Subject(s)
Chromatin/ultrastructure , Chromosome Structures/ultrastructure , Computational Biology , Single-Cell Analysis , Algorithms , Cluster Analysis , Genome/genetics , Humans , Molecular Conformation
11.
Nature ; 518(7539): 331-6, 2015 Feb 19.
Article in English | MEDLINE | ID: mdl-25693564

ABSTRACT

Higher-order chromatin structure is emerging as an important regulator of gene expression. Although dynamic chromatin structures have been identified in the genome, the full scope of chromatin dynamics during mammalian development and lineage specification remains to be determined. By mapping genome-wide chromatin interactions in human embryonic stem (ES) cells and four human ES-cell-derived lineages, we uncover extensive chromatin reorganization during lineage specification. We observe that although self-associating chromatin domains are stable during differentiation, chromatin interactions both within and between domains change in a striking manner, altering 36% of active and inactive chromosomal compartments throughout the genome. By integrating chromatin interaction maps with haplotype-resolved epigenome and transcriptome data sets, we find widespread allelic bias in gene expression correlated with allele-biased chromatin states of linked promoters and distal enhancers. Our results therefore provide a global view of chromatin dynamics and a resource for studying long-range control of gene expression in distinct human cell lineages.


Subject(s)
Cell Differentiation , Chromatin Assembly and Disassembly , Chromatin/chemistry , Chromatin/metabolism , Embryonic Stem Cells/cytology , Embryonic Stem Cells/metabolism , Epigenesis, Genetic/genetics , Alleles , Allelic Imbalance/genetics , Cell Differentiation/genetics , Cell Lineage/genetics , Chromatin/genetics , Chromatin Assembly and Disassembly/genetics , Enhancer Elements, Genetic/genetics , Epigenomics , Gene Regulatory Networks , Humans , Promoter Regions, Genetic/genetics , Reproducibility of Results
12.
Nature ; 518(7539): 317-30, 2015 Feb 19.
Article in English | MEDLINE | ID: mdl-25693563

ABSTRACT

The reference human genome sequence set the stage for studies of genetic variation and its association with human disease, but epigenomic studies lack a similar reference. To address this need, the NIH Roadmap Epigenomics Consortium generated the largest collection so far of human epigenomes for primary cells and tissues. Here we describe the integrative analysis of 111 reference human epigenomes generated as part of the programme, profiled for histone modification patterns, DNA accessibility, DNA methylation and RNA expression. We establish global maps of regulatory elements, define regulatory modules of coordinated activity, and their likely activators and repressors. We show that disease- and trait-associated genetic variants are enriched in tissue-specific epigenomic marks, revealing biologically relevant cell types for diverse human traits, and providing a resource for interpreting the molecular basis of human disease. Our results demonstrate the central role of epigenomic information for understanding gene regulation, cellular differentiation and human disease.


Subject(s)
Epigenesis, Genetic/genetics , Epigenomics , Genome, Human/genetics , Base Sequence , Cell Lineage/genetics , Cells, Cultured , Chromatin/chemistry , Chromatin/genetics , Chromatin/metabolism , Chromosomes, Human/chemistry , Chromosomes, Human/genetics , Chromosomes, Human/metabolism , DNA/chemistry , DNA/genetics , DNA/metabolism , DNA Methylation , Datasets as Topic , Enhancer Elements, Genetic/genetics , Genetic Variation/genetics , Genome-Wide Association Study , Histones/metabolism , Humans , Organ Specificity/genetics , RNA/genetics , Reference Values
13.
Nature ; 503(7475): 290-4, 2013 Nov 14.
Article in English | MEDLINE | ID: mdl-24141950

ABSTRACT

A large number of cis-regulatory sequences have been annotated in the human genome, but defining their target genes remains a challenge. One strategy is to identify the long-range looping interactions at these elements with the use of chromosome conformation capture (3C)-based techniques. However, previous studies lack either the resolution or coverage to permit a whole-genome, unbiased view of chromatin interactions. Here we report a comprehensive chromatin interaction map generated in human fibroblasts using a genome-wide 3C analysis method (Hi-C). We determined over one million long-range chromatin interactions at 5-10-kb resolution, and uncovered general principles of chromatin organization at different types of genomic features. We also characterized the dynamics of promoter-enhancer contacts after TNF-α signalling in these cells. Unexpectedly, we found that TNF-α-responsive enhancers are already in contact with their target promoters before signalling. Such pre-existing chromatin looping, which also exists in other cell types with different extracellular signalling, is a strong predictor of gene induction. Our observations suggest that the three-dimensional chromatin landscape, once established in a particular cell type, is relatively stable and could influence the selection or activation of target genes by a ubiquitous transcription activator in a cell-specific manner.


Subject(s)
Chromatin/metabolism , Chromosome Mapping , Genome, Human , Cell Line , Chromatin/chemistry , Chromatin/genetics , Enhancer Elements, Genetic/physiology , Gene Expression Regulation , Humans , Imaging, Three-Dimensional , Promoter Regions, Genetic/physiology , Protein Binding , Signal Transduction , Tumor Necrosis Factor-alpha/metabolism
14.
Nature ; 485(7398): 376-80, 2012 Apr 11.
Article in English | MEDLINE | ID: mdl-22495300

ABSTRACT

The spatial organization of the genome is intimately linked to its biological function, yet our understanding of higher order genomic structure is coarse, fragmented and incomplete. In the nucleus of eukaryotic cells, interphase chromosomes occupy distinct chromosome territories, and numerous models have been proposed for how chromosomes fold within chromosome territories. These models, however, provide only few mechanistic details about the relationship between higher order chromatin structure and genome function. Recent advances in genomic technologies have led to rapid advances in the study of three-dimensional genome organization. In particular, Hi-C has been introduced as a method for identifying higher order chromatin interactions genome wide. Here we investigate the three-dimensional organization of the human and mouse genomes in embryonic stem cells and terminally differentiated cell types at unprecedented resolution. We identify large, megabase-sized local chromatin interaction domains, which we term 'topological domains', as a pervasive structural feature of the genome organization. These domains correlate with regions of the genome that constrain the spread of heterochromatin. The domains are stable across different cell types and highly conserved across species, indicating that topological domains are an inherent property of mammalian genomes. Finally, we find that the boundaries of topological domains are enriched for the insulator binding protein CTCF, housekeeping genes, transfer RNAs and short interspersed element (SINE) retrotransposons, indicating that these factors may have a role in establishing the topological domain structure of the genome.


Subject(s)
Chromatin/genetics , Chromatin/metabolism , Genome , Animals , Binding Sites , CCCTC-Binding Factor , Cell Differentiation , Chromatin/chemistry , Chromosomes/chemistry , Chromosomes/genetics , Chromosomes/metabolism , Embryonic Stem Cells/metabolism , Evolution, Molecular , Female , Genes, Essential/genetics , Heterochromatin/chemistry , Heterochromatin/genetics , Heterochromatin/metabolism , Humans , Male , Mammals/genetics , Mice , RNA, Transfer/genetics , Repressor Proteins/metabolism , Short Interspersed Nucleotide Elements/genetics
15.
Proc Natl Acad Sci U S A ; 111(3): 996-1001, 2014 Jan 21.
Article in English | MEDLINE | ID: mdl-24335803

ABSTRACT

Recent studies of genome-wide chromatin interactions have revealed that the human genome is partitioned into many self-associating topological domains. The boundary sequences between domains are enriched for binding sites of CTCC-binding factor (CTCF) and the cohesin complex, implicating these two factors in the establishment or maintenance of topological domains. To determine the role of cohesin and CTCF in higher-order chromatin architecture in human cells, we depleted the cohesin complex or CTCF and examined the consequences of loss of these factors on higher-order chromatin organization, as well as the transcriptome. We observed a general loss of local chromatin interactions upon disruption of cohesin, but the topological domains remain intact. However, we found that depletion of CTCF not only reduced intradomain interactions but also increased interdomain interactions. Furthermore, distinct groups of genes become misregulated upon depletion of cohesin and CTCF. Taken together, these observations suggest that CTCF and cohesin contribute differentially to chromatin organization and gene regulation.


Subject(s)
Cell Cycle Proteins/metabolism , Chromatin/chemistry , Chromosomal Proteins, Non-Histone/metabolism , Gene Expression Regulation , Repressor Proteins/metabolism , Binding Sites , CCCTC-Binding Factor , Cell Line , Cell Nucleus/metabolism , Chromatin/metabolism , DNA-Binding Proteins , Gene Expression Profiling , HEK293 Cells , Homeodomain Proteins/metabolism , Humans , Mitosis , Multigene Family , Nuclear Proteins/metabolism , Phosphoproteins/metabolism , Protein Binding , Protein Structure, Tertiary , Transcriptome , Cohesins
16.
BMC Genomics ; 16: 900, 2015 Nov 05.
Article in English | MEDLINE | ID: mdl-26541200

ABSTRACT

BACKGROUND: The MHC and KIR loci are clinically relevant regions of the genome. Typing the sequence of these loci has a wide range of applications including organ transplantation, drug discovery, pharmacogenomics and furthering fundamental research in immune genetics. Rapid advances in biochemical and next-generation sequencing (NGS) technologies have enabled several strategies for precise genotyping and phasing of candidate HLA alleles. Nonetheless, as typing of candidate HLA alleles alone reveals limited aspects of the genetics of MHC region, it is insufficient for the comprehensive utility of the aforementioned applications. For this reason, we believe phasing the entire MHC and KIR locus onto a single locus-spanning haplotype can be a critical improvement for better understanding transplantation biology. RESULTS: Generating long-range (>1 Mb) phase information is traditionally very challenging. As proximity-ligation based methods of DNA sequencing preserves chromosome-span phase information, we have utilized this principle to demonstrate its utility towards generating full-length phasing of MHC and KIR loci in human samples. We accurately (~99%) reconstruct the complete haplotypes for over 90% of sequence variants (coding and non-coding) within these two loci that collectively span 4-megabases. CONCLUSIONS: By haplotyping a majority of coding and non-coding alleles at the MHC and KIR loci in a single assay, this method has the potential to assist transplantation matching and facilitate investigation of the genetic basis of human immunity and disease.


Subject(s)
Haplotypes/genetics , High-Throughput Nucleotide Sequencing/methods , Major Histocompatibility Complex/genetics , Receptors, KIR/genetics , Genotype , Humans
17.
bioRxiv ; 2023 Mar 21.
Article in English | MEDLINE | ID: mdl-36865315

ABSTRACT

Chromatin conformation reorganization is emerging as an important layer of regulation for gene expression and lineage specification. Yet, how lineage-specific transcription factors contribute to the establishment of cell type-specific 3D chromatin architecture in the immune cells remains unclear, especially for the late stages of T cell subset differentiation and maturation. Regulatory T cells (Treg) are mainly generated in the thymus as a subpopulation of T cells specializing in suppressing excessive immune responses. Here, by comprehensively mapping 3D chromatin organization during Treg cell differentiation, we show that Treg-specific chromatin structures were progressively established during its lineage specification, and highly associated with Treg signature gene expression. Additionally, the binding sites of Foxp3, a Treg lineage specifying transcription factor, were highly enriched at Treg-specific chromatin loop anchors. Further comparison of the chromatin interactions between wide-type Tregs versus Treg cells from Foxp3 knock-in/knockout or newly-generated Foxp3 domain-swap mutant mouse revealed that Foxp3 was essential for the establishment of Treg-specific 3D chromatin architecture, although it was not dependent on the formation of the Foxp3 domain-swapped dimer. These results highlighted an underappreciated role of Foxp3 in modulating Treg-specific 3D chromatin structure formation.

18.
Nat Commun ; 14(1): 6943, 2023 11 06.
Article in English | MEDLINE | ID: mdl-37932264

ABSTRACT

Chromatin conformation reorganization is emerging as an important layer of regulation for gene expression and lineage specification. Yet, how lineage-specific transcription factors contribute to the establishment of cell type-specific 3D chromatin architecture in the immune cells remains unclear, especially for the late stages of T cell subset differentiation and maturation. Regulatory T cells (Treg) are mainly generated in the thymus as a subpopulation of T cells specializing in suppressing excessive immune responses. Here, by comprehensively mapping 3D chromatin organization during Treg cell differentiation, we show that Treg-specific chromatin structures were progressively established during its lineage specification, and highly associated with Treg signature gene expression. Additionally, the binding sites of Foxp3, a Treg lineage specifying transcription factor, were highly enriched at Treg-specific chromatin loop anchors. Further comparison of the chromatin interactions between wide-type Tregs versus Treg cells from Foxp3 knock-in/knockout or newly-generated Foxp3 domain-swap mutant mouse revealed that Foxp3 was essential for the establishment of Treg-specific 3D chromatin architecture, although it was not dependent on the formation of the Foxp3 domain-swapped dimer. These results highlighted an underappreciated role of Foxp3 in modulating Treg-specific 3D chromatin structure formation.


Subject(s)
Chromatin , T-Lymphocytes, Regulatory , Mice , Animals , Chromatin/metabolism , Forkhead Transcription Factors/metabolism , Gene Expression Regulation , Cell Differentiation/genetics
19.
bioRxiv ; 2023 Apr 18.
Article in English | MEDLINE | ID: mdl-37131654

ABSTRACT

Cytosine DNA methylation is essential in brain development and has been implicated in various neurological disorders. A comprehensive understanding of DNA methylation diversity across the entire brain in the context of the brain's 3D spatial organization is essential for building a complete molecular atlas of brain cell types and understanding their gene regulatory landscapes. To this end, we employed optimized single-nucleus methylome (snmC-seq3) and multi-omic (snm3C-seq1) sequencing technologies to generate 301,626 methylomes and 176,003 chromatin conformation/methylome joint profiles from 117 dissected regions throughout the adult mouse brain. Using iterative clustering and integrating with companion whole-brain transcriptome and chromatin accessibility datasets, we constructed a methylation-based cell type taxonomy that contains 4,673 cell groups and 261 cross-modality-annotated subclasses. We identified millions of differentially methylated regions (DMRs) across the genome, representing potential gene regulation elements. Notably, we observed spatial cytosine methylation patterns on both genes and regulatory elements in cell types within and across brain regions. Brain-wide multiplexed error-robust fluorescence in situ hybridization (MERFISH2) data validated the association of this spatial epigenetic diversity with transcription and allowed the mapping of the DNA methylation and topology information into anatomical structures more precisely than our dissections. Furthermore, multi-scale chromatin conformation diversities occur in important neuronal genes, highly associated with DNA methylation and transcription changes. Brain-wide cell type comparison allowed us to build a regulatory model for each gene, linking transcription factors, DMRs, chromatin contacts, and downstream genes to establish regulatory networks. Finally, intragenic DNA methylation and chromatin conformation patterns predicted alternative gene isoform expression observed in a companion whole-brain SMART-seq3 dataset. Our study establishes the first brain-wide, single-cell resolution DNA methylome and 3D multi-omic atlas, providing an unparalleled resource for comprehending the mouse brain's cellular-spatial and regulatory genome diversity.

20.
Nat Genet ; 55(12): 2189-2199, 2023 Dec.
Article in English | MEDLINE | ID: mdl-37945900

ABSTRACT

Circular extrachromosomal DNA (ecDNA) in patient tumors is an important driver of oncogenic gene expression, evolution of drug resistance and poor patient outcomes. Applying computational methods for the detection and reconstruction of ecDNA across a retrospective cohort of 481 medulloblastoma tumors from 465 patients, we identify circular ecDNA in 82 patients (18%). Patients with ecDNA-positive medulloblastoma were more than twice as likely to relapse and three times as likely to die within 5 years of diagnosis. A subset of tumors harbored multiple ecDNA lineages, each containing distinct amplified oncogenes. Multimodal sequencing, imaging and CRISPR inhibition experiments in medulloblastoma models reveal intratumoral heterogeneity of ecDNA copy number per cell and frequent putative 'enhancer rewiring' events on ecDNA. This study reveals the frequency and diversity of ecDNA in medulloblastoma, stratified into molecular subgroups, and suggests copy number heterogeneity and enhancer rewiring as oncogenic features of ecDNA.


Subject(s)
Cerebellar Neoplasms , Medulloblastoma , Neoplasms , Humans , DNA, Circular , Medulloblastoma/genetics , Retrospective Studies , Neoplasms/genetics , Oncogenes , Cerebellar Neoplasms/genetics
SELECTION OF CITATIONS
SEARCH DETAIL