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1.
Annu Rev Immunol ; 35: 53-84, 2017 04 26.
Article in English | MEDLINE | ID: mdl-27912316

ABSTRACT

Helper T (Th) cell subsets direct immune responses by producing signature cytokines. Th2 cells produce IL-4, IL-5, and IL-13, which are important in humoral immunity and protection from helminth infection and are central to the pathogenesis of many allergic inflammatory diseases. Molecular analysis of Th2 cell differentiation and maintenance of function has led to recent discoveries that have refined our understanding of Th2 cell biology. Epigenetic regulation of Gata3 expression by chromatin remodeling complexes such as Polycomb and Trithorax is crucial for maintaining Th2 cell identity. In the context of allergic diseases, memory-type pathogenic Th2 cells have been identified in both mice and humans. To better understand these disease-driving cell populations, we have developed a model called the pathogenic Th population disease induction model. The concept of defined subsets of pathogenic Th cells may spur new, effective strategies for treating intractable chronic inflammatory disorders.


Subject(s)
Helminthiasis/immunology , Hypersensitivity/immunology , Th2 Cells/immunology , Animals , Cell Differentiation , Disease Models, Animal , Epigenesis, Genetic , GATA3 Transcription Factor/genetics , GATA3 Transcription Factor/metabolism , Histone-Lysine N-Methyltransferase/genetics , Histone-Lysine N-Methyltransferase/metabolism , Humans , Immunity, Humoral , Immunologic Memory , Interleukin-13/metabolism , Interleukin-4/metabolism , Interleukin-5/metabolism , Mice , Myeloid-Lymphoid Leukemia Protein/genetics , Myeloid-Lymphoid Leukemia Protein/metabolism , Polycomb-Group Proteins/genetics , Polycomb-Group Proteins/metabolism
2.
Cell ; 187(1): 110-129.e31, 2024 01 04.
Article in English | MEDLINE | ID: mdl-38181737

ABSTRACT

X chromosome inactivation (XCI) serves as a paradigm for RNA-mediated regulation of gene expression, wherein the long non-coding RNA XIST spreads across the X chromosome in cis to mediate gene silencing chromosome-wide. In female naive human pluripotent stem cells (hPSCs), XIST is in a dispersed configuration, and XCI does not occur, raising questions about XIST's function. We found that XIST spreads across the X chromosome and induces dampening of X-linked gene expression in naive hPSCs. Surprisingly, XIST also targets specific autosomal regions, where it induces repressive chromatin changes and gene expression dampening. Thereby, XIST equalizes X-linked gene dosage between male and female cells while inducing differences in autosomes. The dispersed Xist configuration and autosomal localization also occur transiently during XCI initiation in mouse PSCs. Together, our study identifies XIST as the regulator of X chromosome dampening, uncovers an evolutionarily conserved trans-acting role of XIST/Xist, and reveals a correlation between XIST/Xist dispersal and autosomal targeting.


Subject(s)
Genes, X-Linked , RNA, Long Noncoding , X Chromosome , Animals , Female , Humans , Male , Mice , Gene Silencing , RNA, Long Noncoding/genetics , X Chromosome/genetics , Pluripotent Stem Cells/metabolism
3.
Cell ; 186(5): 1050-1065.e19, 2023 03 02.
Article in English | MEDLINE | ID: mdl-36750094

ABSTRACT

Chromatin landscapes are disrupted during DNA replication and must be restored faithfully to maintain genome regulation and cell identity. The histone H3-H4 modification landscape is restored by parental histone recycling and modification of new histones. How DNA replication impacts on histone H2A-H2B is currently unknown. Here, we measure H2A-H2B modifications and H2A.Z during DNA replication and across the cell cycle using quantitative genomics. We show that H2AK119ub1, H2BK120ub1, and H2A.Z are recycled accurately during DNA replication. Modified H2A-H2B are segregated symmetrically to daughter strands via POLA1 on the lagging strand, but independent of H3-H4 recycling. Post-replication, H2A-H2B modification and variant landscapes are quickly restored, and H2AK119ub1 guides accurate restoration of H3K27me3. This work reveals epigenetic transmission of parental H2A-H2B during DNA replication and identifies cross talk between H3-H4 and H2A-H2B modifications in epigenome propagation. We propose that rapid short-term memory of recycled H2A-H2B modifications facilitates restoration of stable H3-H4 chromatin states.


Subject(s)
Chromatin , Memory, Short-Term , Cell Cycle , DNA Replication , Histones/metabolism , Nucleosomes , Animals , Mice , Rabbits
4.
Cell ; 185(12): 2164-2183.e25, 2022 06 09.
Article in English | MEDLINE | ID: mdl-35597241

ABSTRACT

X inactivation (XCI) is triggered by upregulation of XIST, which coats the chromosome in cis, promoting formation of a heterochromatic domain (Xi). XIST role beyond initiation of XCI is only beginning to be elucidated. Here, we demonstrate that XIST loss impairs differentiation of human mammary stem cells (MaSCs) and promotes emergence of highly tumorigenic and metastatic carcinomas. On the Xi, XIST deficiency triggers epigenetic changes and reactivation of genes overlapping Polycomb domains, including Mediator subunit MED14. MED14 overdosage results in increased Mediator levels and hyperactivation of the MaSC enhancer landscape and transcriptional program, making differentiation less favorable. We further demonstrate that loss of XIST and Xi transcriptional instability is common among human breast tumors of poor prognosis. We conclude that XIST is a gatekeeper of human mammary epithelium homeostasis, thus unveiling a paradigm in the control of somatic cell identity with potential consequences for our understanding of gender-specific malignancies.


Subject(s)
Mediator Complex/metabolism , Neoplastic Stem Cells/metabolism , RNA, Long Noncoding/metabolism , Breast Neoplasms/metabolism , Cell Differentiation , Epigenesis, Genetic , Humans , RNA, Long Noncoding/genetics , X Chromosome Inactivation
5.
Annu Rev Biochem ; 89: 235-253, 2020 06 20.
Article in English | MEDLINE | ID: mdl-31928411

ABSTRACT

Predicting regulatory potential from primary DNA sequences or transcription factor binding patterns is not possible. However, the annotation of the genome by chromatin proteins, histone modifications, and differential compaction is largely sufficient to reveal the locations of genes and their differential activity states. The Polycomb Group (PcG) and Trithorax Group (TrxG) proteins are the central players in this cell type-specific chromatin organization. PcG function was originally viewed as being solely repressive and irreversible, as observed at the homeotic loci in flies and mammals. However, it is now clear that modular and reversible PcG function is essential at most developmental genes. Focusing mainly on recent advances, we review evidence for how PcG and TrxG patterns change dynamically during cell type transitions. The ability to implement cell type-specific transcriptional programming with exquisite fidelity is essential for normal development.


Subject(s)
Chromosomal Proteins, Non-Histone/genetics , Drosophila Proteins/genetics , Drosophila melanogaster/genetics , Gene Expression Regulation, Developmental , Histones/metabolism , Polycomb-Group Proteins/genetics , Transcription, Genetic , Animals , Chromatin/chemistry , Chromatin/metabolism , Chromosomal Proteins, Non-Histone/metabolism , DNA Methylation , Drosophila Proteins/metabolism , Drosophila melanogaster/cytology , Drosophila melanogaster/growth & development , Drosophila melanogaster/metabolism , Embryo, Mammalian , Embryo, Nonmammalian , Genetic Loci , Histones/genetics , Mice , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Polycomb-Group Proteins/classification , Polycomb-Group Proteins/metabolism , Response Elements , Species Specificity , Transcription Factors/genetics , Transcription Factors/metabolism
6.
Cell ; 176(1-2): 182-197.e23, 2019 01 10.
Article in English | MEDLINE | ID: mdl-30595450

ABSTRACT

During development, the precise relationships between transcription and chromatin modifications often remain unclear. We use the X chromosome inactivation (XCI) paradigm to explore the implication of chromatin changes in gene silencing. Using female mouse embryonic stem cells, we initiate XCI by inducing Xist and then monitor the temporal changes in transcription and chromatin by allele-specific profiling. This reveals histone deacetylation and H2AK119 ubiquitination as the earliest chromatin alterations during XCI. We show that HDAC3 is pre-bound on the X chromosome and that, upon Xist coating, its activity is required for efficient gene silencing. We also reveal that first PRC1-associated H2AK119Ub and then PRC2-associated H3K27me3 accumulate initially at large intergenic domains that can then spread into genes only in the context of histone deacetylation and gene silencing. Our results reveal the hierarchy of chromatin events during the initiation of XCI and identify key roles for chromatin in the early steps of transcriptional silencing.


Subject(s)
Chromatin/metabolism , X Chromosome Inactivation/genetics , X Chromosome Inactivation/physiology , Acetylation , Animals , Chromatin/genetics , Embryonic Stem Cells , Epigenomics/methods , Female , Gene Silencing , Histone Deacetylases/metabolism , Histones/metabolism , Mice , Polycomb-Group Proteins/metabolism , Protein Processing, Post-Translational , RNA, Long Noncoding/metabolism , Transcription, Genetic , Ubiquitination , X Chromosome/metabolism
7.
Cell ; 179(4): 953-963.e11, 2019 10 31.
Article in English | MEDLINE | ID: mdl-31675501

ABSTRACT

Chromatin domains and their associated structures must be faithfully inherited through cellular division to maintain cellular identity. However, accessing the localized strategies preserving chromatin domain inheritance, specifically the transfer of parental, pre-existing nucleosomes with their associated post-translational modifications (PTMs) during DNA replication, is challenging in living cells. We devised an inducible, proximity-dependent labeling system to irreversibly mark replication-dependent H3.1 and H3.2 histone-containing nucleosomes at desired loci in mouse embryonic stem cells so that their fate after DNA replication could be followed. Strikingly, repressed chromatin domains are preserved through local re-deposition of parental nucleosomes. In contrast, nucleosomes decorating active chromatin domains do not exhibit such preservation. Notably, altering cell fate leads to an adjustment of the positional inheritance of parental nucleosomes that reflects the corresponding changes in chromatin structure. These findings point to important mechanisms that contribute to parental nucleosome segregation to preserve cellular identity.


Subject(s)
Chromatin Assembly and Disassembly/genetics , Chromatin/genetics , Epigenesis, Genetic , Nucleosomes/genetics , Animals , Cell Differentiation/genetics , Cell Division/genetics , Cell Lineage/genetics , DNA Replication/genetics , Histones/genetics , Mice , Mouse Embryonic Stem Cells/metabolism , Nucleosomes/metabolism , Protein Processing, Post-Translational/genetics
8.
Cell ; 174(2): 406-421.e25, 2018 07 12.
Article in English | MEDLINE | ID: mdl-29887375

ABSTRACT

Mammalian chromosomes are partitioned into A/B compartments and topologically associated domains (TADs). The inactive X (Xi) chromosome, however, adopts a distinct conformation without evident compartments or TADs. Here, through exploration of an architectural protein, structural-maintenance-of-chromosomes hinge domain containing 1 (SMCHD1), we probe how the Xi is reconfigured during X chromosome inactivation. A/B compartments are first fused into "S1" and "S2" compartments, coinciding with Xist spreading into gene-rich domains. SMCHD1 then binds S1/S2 compartments and merges them to create a compartment-less architecture. Contrary to current views, TADs remain on the Xi but in an attenuated state. Ablating SMCHD1 results in a persistent S1/S2 organization and strengthening of TADs. Furthermore, loss of SMCHD1 causes regional defects in Xist spreading and erosion of heterochromatic silencing. We present a stepwise model for Xi folding, where SMCHD1 attenuates a hidden layer of Xi architecture to facilitate Xist spreading.


Subject(s)
Chromosomal Proteins, Non-Histone/metabolism , Chromosomes, Mammalian/chemistry , X Chromosome Inactivation , Alleles , Animals , Cell Line , Chromosomal Proteins, Non-Histone/genetics , Chromosomes, Mammalian/metabolism , DNA Methylation , Female , Heterochromatin/metabolism , Histones/genetics , Histones/metabolism , Male , Mice , Mouse Embryonic Stem Cells/cytology , Mouse Embryonic Stem Cells/metabolism , Principal Component Analysis , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism
9.
Cell ; 171(1): 34-57, 2017 Sep 21.
Article in English | MEDLINE | ID: mdl-28938122

ABSTRACT

Polycomb (PcG) and Trithorax (TrxG) group proteins are evolutionarily conserved chromatin-modifying factors originally identified as part of an epigenetic cellular memory system that maintains repressed or active gene expression states. Recently, they have been shown to globally control a plethora of cellular processes. This functional diversity is achieved by their ability to regulate chromatin at multiple levels, ranging from modifying local chromatin structure to orchestrating the three-dimensional organization of the genome. Understanding this system is a fascinating challenge of critical relevance for biology and medicine, since misexpression or mutation of multiple PcG components, as well as of TrxG members of the COMPASS family and of the SWI/SNF complex, is implicated in cancer and other diseases.


Subject(s)
Chromosomal Proteins, Non-Histone/metabolism , Gene Expression Regulation , Polycomb-Group Proteins/metabolism , Animals , Chromosomal Proteins, Non-Histone/history , Embryonic Stem Cells/metabolism , Genome , History, 20th Century , History, 21st Century , Humans , Neoplasms/metabolism , Polycomb-Group Proteins/history
10.
Cell ; 171(3): 557-572.e24, 2017 Oct 19.
Article in English | MEDLINE | ID: mdl-29053968

ABSTRACT

Chromosome conformation capture technologies have revealed important insights into genome folding. Yet, how spatial genome architecture is related to gene expression and cell fate remains unclear. We comprehensively mapped 3D chromatin organization during mouse neural differentiation in vitro and in vivo, generating the highest-resolution Hi-C maps available to date. We found that transcription is correlated with chromatin insulation and long-range interactions, but dCas9-mediated activation is insufficient for creating TAD boundaries de novo. Additionally, we discovered long-range contacts between gene bodies of exon-rich, active genes in all cell types. During neural differentiation, contacts between active TADs become less pronounced while inactive TADs interact more strongly. An extensive Polycomb network in stem cells is disrupted, while dynamic interactions between neural transcription factors appear in vivo. Finally, cell type-specific enhancer-promoter contacts are established concomitant to gene expression. This work shows that multiple factors influence the dynamics of chromatin interactions in development.


Subject(s)
Chromatin/metabolism , Genome , Neurogenesis , Animals , CCCTC-Binding Factor , Embryonic Stem Cells/metabolism , Enhancer Elements, Genetic , Exons , Gene Expression , Gene Regulatory Networks , Mice , Promoter Regions, Genetic , Repressor Proteins/metabolism , Transcription Factors/metabolism
11.
Mol Cell ; 84(9): 1651-1666.e12, 2024 May 02.
Article in English | MEDLINE | ID: mdl-38521066

ABSTRACT

Polycomb repressive complexes (PRCs) play a key role in gene repression and are indispensable for proper development. Canonical PRC1 forms condensates in vitro and in cells that are proposed to contribute to the maintenance of repression. However, how chromatin and the various subunits of PRC1 contribute to condensation is largely unexplored. Using a reconstitution approach and single-molecule imaging, we demonstrate that nucleosomal arrays and PRC1 act synergistically, reducing the critical concentration required for condensation by more than 20-fold. We find that the exact combination of PHC and CBX subunits determines condensate initiation, morphology, stability, and dynamics. Particularly, PHC2's polymerization activity influences condensate dynamics by promoting the formation of distinct domains that adhere to each other but do not coalesce. Live-cell imaging confirms CBX's role in condensate initiation and highlights PHC's importance for condensate stability. We propose that PRC1 composition can modulate condensate properties, providing crucial regulatory flexibility across developmental stages.


Subject(s)
Cell Cycle Proteins , Chromatin , Nucleosomes , Polycomb Repressive Complex 1 , Polycomb Repressive Complex 1/metabolism , Polycomb Repressive Complex 1/genetics , Chromatin/metabolism , Chromatin/genetics , Humans , Nucleosomes/metabolism , Nucleosomes/genetics , Animals , Single Molecule Imaging
12.
Mol Cell ; 84(10): 1870-1885.e9, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38759625

ABSTRACT

How Polycomb repressive complex 2 (PRC2) is regulated by RNA remains an unsolved problem. Although PRC2 binds G-tracts with the potential to form RNA G-quadruplexes (rG4s), whether rG4s fold extensively in vivo and whether PRC2 binds folded or unfolded rG4 are unknown. Using the X-inactivation model in mouse embryonic stem cells, here we identify multiple folded rG4s in Xist RNA and demonstrate that PRC2 preferentially binds folded rG4s. High-affinity rG4 binding inhibits PRC2's histone methyltransferase activity, and stabilizing rG4 in vivo antagonizes H3 at lysine 27 (H3K27me3) enrichment on the inactive X chromosome. Surprisingly, mutagenizing the rG4 does not affect PRC2 recruitment but promotes its release and catalytic activation on chromatin. H3K27me3 marks are misplaced, however, and gene silencing is compromised. Xist-PRC2 complexes become entrapped in the S1 chromosome compartment, precluding the required translocation into the S2 compartment. Thus, Xist rG4 folding controls PRC2 activity, H3K27me3 enrichment, and the stepwise regulation of chromosome-wide gene silencing.


Subject(s)
G-Quadruplexes , Histones , Polycomb Repressive Complex 2 , RNA, Long Noncoding , X Chromosome Inactivation , Animals , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , Mice , Polycomb Repressive Complex 2/metabolism , Polycomb Repressive Complex 2/genetics , Histones/metabolism , Histones/genetics , Mouse Embryonic Stem Cells/metabolism , Chromatin/metabolism , Chromatin/genetics , X Chromosome/genetics , X Chromosome/metabolism , Gene Silencing , RNA Folding , Protein Binding
13.
Mol Cell ; 84(6): 1049-1061.e8, 2024 Mar 21.
Article in English | MEDLINE | ID: mdl-38452766

ABSTRACT

The Polycomb repressive complex 2 (PRC2) mediates epigenetic maintenance of gene silencing in eukaryotes via methylation of histone H3 at lysine 27 (H3K27). Accessory factors define two distinct subtypes, PRC2.1 and PRC2.2, with different actions and chromatin-targeting mechanisms. The mechanisms orchestrating PRC2 assembly are not fully understood. Here, we report that alternative splicing (AS) of PRC2 core component SUZ12 generates an uncharacterized isoform SUZ12-S, which co-exists with the canonical SUZ12-L isoform in virtually all tissues and developmental stages. SUZ12-S drives PRC2.1 formation and favors PRC2 dimerization. While SUZ12-S is necessary and sufficient for the repression of target genes via promoter-proximal H3K27me3 deposition, SUZ12-L maintains global H3K27 methylation levels. Mouse embryonic stem cells (ESCs) lacking either isoform exit pluripotency more slowly and fail to acquire neuronal cell identity. Our findings reveal a physiological mechanism regulating PRC2 assembly and higher-order interactions in eutherians, with impacts on H3K27 methylation and gene repression.


Subject(s)
Alternative Splicing , Polycomb Repressive Complex 2 , Animals , Mice , Polycomb Repressive Complex 2/genetics , Polycomb Repressive Complex 2/metabolism , Histones/genetics , Histones/metabolism , Chromatin/genetics , Protein Isoforms/genetics
14.
Mol Cell ; 84(7): 1191-1205.e7, 2024 Apr 04.
Article in English | MEDLINE | ID: mdl-38458202

ABSTRACT

Polycomb repressive complex 1 (PRC1) is a key transcriptional regulator in development via modulating chromatin structure and catalyzing histone H2A ubiquitination at Lys119 (H2AK119ub1). H2AK119ub1 is one of the most abundant histone modifications in mammalian cells. However, the function of H2AK119ub1 in polycomb-mediated gene silencing remains debated. In this study, we reveal that H2AK119ub1 has two distinct roles in gene expression, through differentially modulating chromatin compaction mediated by canonical PRC1 and the linker histone H1. Interestingly, we find that H2AK119ub1 plays a positive role in transcription through interfering with the binding of canonical PRC1 to nucleosomes and therefore counteracting chromatin condensation. Conversely, we demonstrate that H2AK119ub1 facilitates H1-dependent chromatin condensation and enhances the silencing of developmental genes in mouse embryonic stem cells, suggesting that H1 may be one of several possible pathways for H2AK119ub1 in repressing transcription. These results provide insights and molecular mechanisms by which H2AK119ub1 differentially fine-tunes developmental gene expression.


Subject(s)
Chromatin , Polycomb Repressive Complex 1 , Animals , Mice , Chromatin/genetics , Polycomb Repressive Complex 1/genetics , Polycomb Repressive Complex 1/metabolism , Nucleosomes/genetics , Ubiquitination , Gene Expression , Mammals/metabolism
15.
Mol Cell ; 2024 Aug 14.
Article in English | MEDLINE | ID: mdl-39178860

ABSTRACT

Polycomb proteins are a fundamental repressive system that plays crucial developmental roles by orchestrating cell-type-specific transcription programs that govern cell identity. Direct alterations of Polycomb activity are indeed implicated in human pathologies, including developmental disorders and cancer. General Polycomb repression is coordinated by three distinct activities that regulate the deposition of two histone post-translational modifications: tri-methylation of histone H3 lysine 27 (H3K27me3) and histone H2A at lysine 119 (H2AK119ub1). These activities exist in large and heterogeneous multiprotein ensembles consisting of common enzymatic cores regulated by heterogeneous non-catalytic modules composed of a large number of accessory proteins with diverse biochemical properties. Here, we have analyzed the current molecular knowledge, focusing on the functional interaction between the core enzymatic activities and their regulation mediated by distinct accessory modules. This provides a comprehensive analysis of the molecular details that control the establishment and maintenance of Polycomb repression, examining their underlying coordination and highlighting missing information and emerging new features of Polycomb-mediated transcriptional control.

16.
Mol Cell ; 84(3): 476-489.e10, 2024 Feb 01.
Article in English | MEDLINE | ID: mdl-38211589

ABSTRACT

Pioneer transcription factors (TFs) regulate cell fate by establishing transcriptionally primed and active states. However, cell fate control requires the coordination of both lineage-specific gene activation and repression of alternative-lineage programs, a process that is poorly understood. Here, we demonstrate that the pioneer TF FOXA coordinates with PRDM1 TF to recruit nucleosome remodeling and deacetylation (NuRD) complexes and Polycomb repressive complexes (PRCs), which establish highly occupied, accessible nucleosome conformation with bivalent epigenetic states, thereby preventing precocious and alternative-lineage gene expression during human endoderm differentiation. Similarly, the pioneer TF OCT4 coordinates with PRDM14 to form bivalent enhancers and repress cell differentiation programs in human pluripotent stem cells, suggesting that this may be a common and critical function of pioneer TFs. We propose that pioneer and PRDM TFs coordinate to safeguard cell fate through epigenetic repression mechanisms.


Subject(s)
Nucleosomes , Transcription Factors , Humans , Transcription Factors/genetics , Transcription Factors/metabolism , Nucleosomes/genetics , Cell Differentiation/genetics , Polycomb-Group Proteins/metabolism , Epigenesis, Genetic
17.
Mol Cell ; 84(8): 1442-1459.e7, 2024 Apr 18.
Article in English | MEDLINE | ID: mdl-38458200

ABSTRACT

In mammals, dosage compensation involves two parallel processes: (1) X inactivation, which equalizes X chromosome dosage between males and females, and (2) X hyperactivation, which upregulates the active X for X-autosome balance. The field currently favors models whereby dosage compensation initiates "de novo" during mouse development. Here, we develop "So-Smart-seq" to revisit the question and interrogate a comprehensive transcriptome including noncoding genes and repeats in mice. Intriguingly, de novo silencing pertains only to a subset of Xp genes. Evolutionarily older genes and repetitive elements demonstrate constitutive Xp silencing, adopt distinct signatures, and do not require Xist to initiate silencing. We trace Xp silencing backward in developmental time to meiotic sex chromosome inactivation in the male germ line and observe that Xm hyperactivation is timed to Xp silencing on a gene-by-gene basis. Thus, during the gamete-to-embryo transition, older Xp genes are transmitted in a "pre-inactivated" state. These findings have implications for the evolution of imprinting.


Subject(s)
RNA, Long Noncoding , X Chromosome Inactivation , Female , Mice , Male , Animals , X Chromosome Inactivation/genetics , Genomic Imprinting , Germ Cells , Epigenesis, Genetic , Embryo, Mammalian , RNA, Long Noncoding/genetics , X Chromosome/genetics , Mammals/genetics
18.
Mol Cell ; 84(12): 2255-2271.e9, 2024 Jun 20.
Article in English | MEDLINE | ID: mdl-38851186

ABSTRACT

The mechanisms and timescales controlling de novo establishment of chromatin-mediated transcriptional silencing by Polycomb repressive complex 2 (PRC2) are unclear. Here, we investigate PRC2 silencing at Arabidopsis FLOWERING LOCUS C (FLC), known to involve co-transcriptional RNA processing, histone demethylation activity, and PRC2 function, but so far not mechanistically connected. We develop and test a computational model describing proximal polyadenylation/termination mediated by the RNA-binding protein FCA that induces H3K4me1 removal by the histone demethylase FLD. H3K4me1 removal feeds back to reduce RNA polymerase II (RNA Pol II) processivity and thus enhance early termination, thereby repressing productive transcription. The model predicts that this transcription-coupled repression controls the level of transcriptional antagonism to PRC2 action. Thus, the effectiveness of this repression dictates the timescale for establishment of PRC2/H3K27me3 silencing. We experimentally validate these mechanistic model predictions, revealing that co-transcriptional processing sets the level of productive transcription at the locus, which then determines the rate of the ON-to-OFF switch to PRC2 silencing.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Gene Expression Regulation, Plant , Gene Silencing , Histones , MADS Domain Proteins , Polycomb Repressive Complex 2 , RNA Polymerase II , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Histones/metabolism , Histones/genetics , RNA Polymerase II/metabolism , RNA Polymerase II/genetics , Polycomb Repressive Complex 2/metabolism , Polycomb Repressive Complex 2/genetics , MADS Domain Proteins/genetics , MADS Domain Proteins/metabolism , Transcription, Genetic , Polyadenylation , Histone Demethylases/metabolism , Histone Demethylases/genetics , Transcription Termination, Genetic , Chromatin/metabolism , Chromatin/genetics , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics
19.
Genes Dev ; 38(1-2): 46-69, 2024 02 13.
Article in English | MEDLINE | ID: mdl-38286657

ABSTRACT

Approximately 20% of head and neck squamous cell carcinomas (HNSCCs) exhibit reduced methylation on lysine 36 of histone H3 (H3K36me) due to mutations in histone methylase NSD1 or a lysine-to-methionine mutation in histone H3 (H3K36M). Whether such alterations of H3K36me can be exploited for therapeutic interventions is still unknown. Here, we show that HNSCC models expressing H3K36M can be divided into two groups: those that display aberrant accumulation of H3K27me3 and those that maintain steady levels of H3K27me3. The former group exhibits reduced proliferation, genome instability, and heightened sensitivity to genotoxic agents like PARP1/2 inhibitors. Conversely, H3K36M HNSCC models with constant H3K27me3 levels lack these characteristics unless H3K27me3 is elevated by DNA hypomethylating agents or inhibiting H3K27me3 demethylases KDM6A/B. Mechanistically, H3K36M reduces H3K36me by directly impeding the activities of the histone methyltransferase NSD3 and the histone demethylase LSD2. Notably, aberrant H3K27me3 levels induced by H3K36M expression are not a bona fide epigenetic mark because they require continuous expression of H3K36M to be inherited. Moreover, increased sensitivity to PARP1/2 inhibitors in H3K36M HNSCC models depends solely on elevated H3K27me3 levels and diminishing BRCA1- and FANCD2-dependent DNA repair. Finally, a PARP1/2 inhibitor alone reduces tumor burden in a H3K36M HNSCC xenograft model with elevated H3K27me3, whereas in a model with consistent H3K27me3, a combination of PARP1/2 inhibitors and agents that up-regulate H3K27me3 proves to be successful. These findings underscore the crucial balance between H3K36 and H3K27 methylation in maintaining genome instability, offering new therapeutic options for patients with H3K36me-deficient tumors.


Subject(s)
Head and Neck Neoplasms , Histones , Humans , Histones/metabolism , Lysine/metabolism , Squamous Cell Carcinoma of Head and Neck/genetics , Methylation , Head and Neck Neoplasms/drug therapy , Head and Neck Neoplasms/genetics , Genomic Instability/genetics
20.
Genes Dev ; 38(13-14): 675-691, 2024 Aug 20.
Article in English | MEDLINE | ID: mdl-39137945

ABSTRACT

Tumor suppressor genes play critical roles in normal tissue homeostasis, and their dysregulation underlies human diseases including cancer. Besides human genetics, model organisms such as Drosophila have been instrumental in discovering tumor suppressor pathways that were subsequently shown to be highly relevant in human cancer. Here we show that hyperplastic disc (Hyd), one of the first tumor suppressors isolated genetically in Drosophila and encoding an E3 ubiquitin ligase with hitherto unknown substrates, and Lines (Lin), best known for its role in embryonic segmentation, define an obligatory tumor suppressor protein complex (Hyd-Lin) that targets the zinc finger-containing oncoprotein Bowl for ubiquitin-mediated degradation, with Lin functioning as a substrate adaptor to recruit Bowl to Hyd for ubiquitination. Interestingly, the activity of the Hyd-Lin complex is directly inhibited by a micropeptide encoded by another zinc finger gene, drumstick (drm), which functions as a pseudosubstrate by displacing Bowl from the Hyd-Lin complex, thus stabilizing Bowl. We further identify the epigenetic regulator Polycomb repressive complex1 (PRC1) as a critical upstream regulator of the Hyd-Lin-Bowl pathway by directly repressing the transcription of the micropeptide drm Consistent with these molecular studies, we show that genetic inactivation of Hyd, Lin, or PRC1 resulted in Bowl-dependent hyperplastic tissue overgrowth in vivo. We also provide evidence that the mammalian homologs of Hyd (UBR5, known to be recurrently dysregulated in various human cancers), Lin (LINS1), and Bowl (OSR1/2) constitute an analogous protein degradation pathway in human cells, and that OSR2 promotes prostate cancer tumorigenesis. Altogether, these findings define a previously unrecognized tumor suppressor pathway that links epigenetic program to regulated protein degradation in tissue growth control and tumorigenesis.


Subject(s)
Carcinogenesis , Drosophila Proteins , Proteolysis , Ubiquitin-Protein Ligases , Animals , Ubiquitin-Protein Ligases/metabolism , Ubiquitin-Protein Ligases/genetics , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Carcinogenesis/genetics , Humans , Tumor Suppressor Proteins/metabolism , Tumor Suppressor Proteins/genetics , Drosophila melanogaster/genetics , Drosophila melanogaster/metabolism , Drosophila melanogaster/embryology , Genes, Tumor Suppressor , Ubiquitination , Polycomb-Group Proteins/metabolism , Polycomb-Group Proteins/genetics , Polycomb Repressive Complex 1/metabolism , Polycomb Repressive Complex 1/genetics
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