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1.
Mol Cell ; 83(17): 3049-3063.e6, 2023 09 07.
Artículo en Inglés | MEDLINE | ID: mdl-37591243

RESUMEN

Cohesin connects CTCF-binding sites and other genomic loci in cis to form chromatin loops and replicated DNA molecules in trans to mediate sister chromatid cohesion. Whether cohesin uses distinct or related mechanisms to perform these functions is unknown. Here, we describe a cohesin hinge mutant that can extrude DNA into loops but is unable to mediate cohesion in human cells. Our results suggest that the latter defect arises during cohesion establishment. The observation that cohesin's cohesion and loop extrusion activities can be partially separated indicates that cohesin uses distinct mechanisms to perform these two functions. Unexpectedly, the same hinge mutant can also not be stopped by CTCF boundaries as well as wild-type cohesin. This suggests that cohesion establishment and cohesin's interaction with CTCF boundaries depend on related mechanisms and raises the possibility that both require transient hinge opening to entrap DNA inside the cohesin ring.


Asunto(s)
Proteínas de Ciclo Celular , Cromátides , Humanos , Cromátides/genética , Sitios de Unión , Proteínas de Ciclo Celular/genética , Proteínas Cromosómicas no Histona/genética , Cohesinas
2.
Nature ; 616(7958): 822-827, 2023 04.
Artículo en Inglés | MEDLINE | ID: mdl-37076620

RESUMEN

In eukaryotes, genomic DNA is extruded into loops by cohesin1. By restraining this process, the DNA-binding protein CCCTC-binding factor (CTCF) generates topologically associating domains (TADs)2,3 that have important roles in gene regulation and recombination during development and disease1,4-7. How CTCF establishes TAD boundaries and to what extent these are permeable to cohesin is unclear8. Here, to address these questions, we visualize interactions of single CTCF and cohesin molecules on DNA in vitro. We show that CTCF is sufficient to block diffusing cohesin, possibly reflecting how cohesive cohesin accumulates at TAD boundaries, and is also sufficient to block loop-extruding cohesin, reflecting how CTCF establishes TAD boundaries. CTCF functions asymmetrically, as predicted; however, CTCF is dependent on DNA tension. Moreover, CTCF regulates cohesin's loop-extrusion activity by changing its direction and by inducing loop shrinkage. Our data indicate that CTCF is not, as previously assumed, simply a barrier to cohesin-mediated loop extrusion but is an active regulator of this process, whereby the permeability of TAD boundaries can be modulated by DNA tension. These results reveal mechanistic principles of how CTCF controls loop extrusion and genome architecture.


Asunto(s)
Factor de Unión a CCCTC , Proteínas de Ciclo Celular , Proteínas Cromosómicas no Histona , ADN , Factor de Unión a CCCTC/metabolismo , Proteínas de Ciclo Celular/metabolismo , Cromatina/química , Cromatina/genética , Cromatina/metabolismo , Proteínas Cromosómicas no Histona/metabolismo , ADN/química , ADN/metabolismo , Técnicas In Vitro , Cohesinas
3.
Nature ; 584(7819): 142-147, 2020 08.
Artículo en Inglés | MEDLINE | ID: mdl-32612238

RESUMEN

Nuclear processes, such as V(D)J recombination, are orchestrated by the three-dimensional organization of chromosomes at multiple levels, including compartments1 and topologically associated domains (TADs)2,3 consisting of chromatin loops4. TADs are formed by chromatin-loop extrusion5-7, which depends on the loop-extrusion function of the ring-shaped cohesin complex8-12. Conversely, the cohesin-release factor Wapl13,14 restricts loop extension10,15. The generation of a diverse antibody repertoire, providing humoral immunity to pathogens, requires the participation of all V genes in V(D)J recombination16, which depends on contraction of the 2.8-Mb-long immunoglobulin heavy chain (Igh) locus by Pax517,18. However, how Pax5 controls Igh contraction in pro-B cells remains unknown. Here we demonstrate that locus contraction is caused by loop extrusion across the entire Igh locus. Notably, the expression of Wapl is repressed by Pax5 specifically in pro-B and pre-B cells, facilitating extended loop extrusion by increasing the residence time of cohesin on chromatin. Pax5 mediates the transcriptional repression of Wapl through a single Pax5-binding site by recruiting the polycomb repressive complex 2 to induce bivalent chromatin at the Wapl promoter. Reduced Wapl expression causes global alterations in the chromosome architecture, indicating that the potential to recombine all V genes entails structural changes of the entire genome in pro-B cells.


Asunto(s)
Genes de las Cadenas Pesadas de las Inmunoglobulinas/genética , Cadenas Pesadas de Inmunoglobulina/genética , Región Variable de Inmunoglobulina/genética , Factor de Transcripción PAX5/metabolismo , Proteínas/genética , Proteínas Represoras/metabolismo , Recombinación V(D)J/genética , Animales , Linfocitos B/citología , Linfocitos B/metabolismo , Sitios de Unión , Proteínas de Ciclo Celular/metabolismo , Ensamble y Desensamble de Cromatina , Proteínas Cromosómicas no Histona/metabolismo , Cadenas Pesadas de Inmunoglobulina/química , Región Variable de Inmunoglobulina/química , Ratones , Complejo Represivo Polycomb 2/metabolismo , Células Precursoras de Linfocitos B/citología , Células Precursoras de Linfocitos B/metabolismo , Regiones Promotoras Genéticas/genética , Cohesinas
4.
EMBO J ; 36(24): 3573-3599, 2017 12 15.
Artículo en Inglés | MEDLINE | ID: mdl-29217591

RESUMEN

Mammalian genomes are spatially organized into compartments, topologically associating domains (TADs), and loops to facilitate gene regulation and other chromosomal functions. How compartments, TADs, and loops are generated is unknown. It has been proposed that cohesin forms TADs and loops by extruding chromatin loops until it encounters CTCF, but direct evidence for this hypothesis is missing. Here, we show that cohesin suppresses compartments but is required for TADs and loops, that CTCF defines their boundaries, and that the cohesin unloading factor WAPL and its PDS5 binding partners control the length of loops. In the absence of WAPL and PDS5 proteins, cohesin forms extended loops, presumably by passing CTCF sites, accumulates in axial chromosomal positions (vermicelli), and condenses chromosomes. Unexpectedly, PDS5 proteins are also required for boundary function. These results show that cohesin has an essential genome-wide function in mediating long-range chromatin interactions and support the hypothesis that cohesin creates these by loop extrusion, until it is delayed by CTCF in a manner dependent on PDS5 proteins, or until it is released from DNA by WAPL.


Asunto(s)
Factor de Unión a CCCTC/metabolismo , Proteínas Portadoras/metabolismo , Proteínas de Ciclo Celular/metabolismo , Cromatina/genética , Proteínas Cromosómicas no Histona/metabolismo , Proteínas de Unión al ADN/metabolismo , Proteínas Nucleares/metabolismo , Proteínas Proto-Oncogénicas/metabolismo , Factores de Transcripción/metabolismo , Factor de Unión a CCCTC/genética , Proteínas Portadoras/genética , Proteínas de Ciclo Celular/genética , Proteínas Cromosómicas no Histona/genética , Cromosomas/genética , Proteínas de Unión al ADN/genética , Genoma Humano/genética , Células HeLa , Humanos , Proteínas Nucleares/genética , Proteínas Proto-Oncogénicas/genética , Factores de Transcripción/genética , Cohesinas
5.
Genes Dev ; 25(8): 863-74, 2011 Apr 15.
Artículo en Inglés | MEDLINE | ID: mdl-21498573

RESUMEN

The cell cycle transition from interphase into mitosis is best characterized by the appearance of condensed chromosomes that become microscopically visible as thread-like structures in nuclei. Biochemically, launching the mitotic program requires the activation of the mitotic cyclin-dependent kinase Cdk1 (cyclin-dependent kinase 1), but whether and how Cdk1 triggers chromosome assembly at mitotic entry are not well understood. Here we report that mitotic chromosome assembly in prophase depends on Cdk1-mediated phosphorylation of the condensin II complex. We identified Thr 1415 of the CAP-D3 subunit as a Cdk1 phosphorylation site, which proved crucial as it was required for the Polo kinase Plk1 (Polo-like kinase 1) to localize to chromosome axes through binding to CAP-D3 and thereby hyperphosphorylate the condensin II complex. Live-cell imaging analysis of cells carrying nonphosphorylatable CAP-D3 mutants in place of endogenous protein suggested that phosphorylation of Thr 1415 is required for timely chromosome condensation during prophase, and that the Plk1-mediated phosphorylation of condensin II facilitates its ability to assemble chromosomes properly. These observations provide an explanation for how Cdk1 induces chromosome assembly in cells entering mitosis, and underscore the significance of the cooperative action of Plk1 with Cdk1.


Asunto(s)
Adenosina Trifosfatasas/metabolismo , Proteína Quinasa CDC2/metabolismo , Proteínas de Ciclo Celular/metabolismo , Cromosomas Humanos/metabolismo , Proteínas de Unión al ADN/metabolismo , Complejos Multiproteicos/metabolismo , Proteínas Nucleares/metabolismo , Adenosina Trifosfatasas/genética , Western Blotting , Proteína Quinasa CDC2/genética , Proteínas de Ciclo Celular/genética , Proteínas Cromosómicas no Histona , Proteínas de Unión al ADN/genética , Células HeLa , Humanos , Inmunoprecipitación , Microscopía Fluorescente , Complejos Multiproteicos/genética , Proteínas Nucleares/genética , Fosforilación , Proteínas de Unión a Poli-ADP-Ribosa , Interferencia de ARN
6.
Curr Biol ; 31(8): 1581-1591.e3, 2021 04 26.
Artículo en Inglés | MEDLINE | ID: mdl-33651990

RESUMEN

The spindle-assembly checkpoint facilitates mitotic fidelity by delaying anaphase onset in response to microtubule vacancy at kinetochores. Following microtubule attachment, kinetochores receive microtubule-derived force, which causes kinetochores to undergo repetitive cycles of deformation; this phenomenon is referred to as kinetochore stretching. The nature of the forces and the relevance relating this deformation are not well understood. Here, we show that kinetochore stretching occurs within a framework of single end-on attached kinetochores, irrespective of microtubule poleward pulling force. An experimental method to conditionally interfere with the stretching allowed us to determine that kinetochore stretching comprises an essential process of checkpoint silencing by promoting PP1 phosphatase recruitment after the establishment of end-on attachments and removal of the majority of checkpoint-activating kinase Mps1 from kinetochores. Remarkably, we found that a lower frequency of kinetochore stretching largely correlates with a prolonged metaphase in cancer cell lines with chromosomal instability. Perturbation of kinetochore stretching and checkpoint silencing in chromosomally stable cells produced anaphase bridges, which can be alleviated by reducing chromosome-loaded cohesin. These observations indicate that kinetochore stretching-mediated checkpoint silencing provides an unanticipated etiology underlying chromosomal instability and underscores the importance of a rapid metaphase-to-anaphase transition in sustaining mitotic fidelity.


Asunto(s)
Segregación Cromosómica , Cinetocoros , Puntos de Control de la Fase M del Ciclo Celular , Huso Acromático , Anafase , Línea Celular Tumoral , Inestabilidad Cromosómica , Humanos , Microtúbulos
7.
Elife ; 92020 02 17.
Artículo en Inglés | MEDLINE | ID: mdl-32065581

RESUMEN

Eukaryotic genomes are folded into loops. It is thought that these are formed by cohesin complexes via extrusion, either until loop expansion is arrested by CTCF or until cohesin is removed from DNA by WAPL. Although WAPL limits cohesin's chromatin residence time to minutes, it has been reported that some loops exist for hours. How these loops can persist is unknown. We show that during G1-phase, mammalian cells contain acetylated cohesinSTAG1 which binds chromatin for hours, whereas cohesinSTAG2 binds chromatin for minutes. Our results indicate that CTCF and the acetyltransferase ESCO1 protect a subset of cohesinSTAG1 complexes from WAPL, thereby enable formation of long and presumably long-lived loops, and that ESCO1, like CTCF, contributes to boundary formation in chromatin looping. Our data are consistent with a model of nested loop extrusion, in which acetylated cohesinSTAG1 forms stable loops between CTCF sites, demarcating the boundaries of more transient cohesinSTAG2 extrusion activity.


Asunto(s)
Acetiltransferasas/fisiología , Factor de Unión a CCCTC/fisiología , Proteínas Portadoras/metabolismo , Proteínas de Ciclo Celular/metabolismo , Cromatina/metabolismo , Proteínas Cromosómicas no Histona/metabolismo , Proteínas Nucleares/metabolismo , Proteínas Proto-Oncogénicas/metabolismo , Acetilación , Proteínas Portadoras/genética , Simulación por Computador , Fase G1 , Genoma Humano , Humanos , Proteínas Nucleares/genética , Unión Proteica , Proteínas Proto-Oncogénicas/genética , Cohesinas
8.
Elife ; 82019 06 17.
Artículo en Inglés | MEDLINE | ID: mdl-31204999

RESUMEN

The organisation of mammalian genomes into loops and topologically associating domains (TADs) contributes to chromatin structure, gene expression and recombination. TADs and many loops are formed by cohesin and positioned by CTCF. In proliferating cells, cohesin also mediates sister chromatid cohesion, which is essential for chromosome segregation. Current models of chromatin folding and cohesion are based on assumptions of how many cohesin and CTCF molecules organise the genome. Here we have measured absolute copy numbers and dynamics of cohesin, CTCF, NIPBL, WAPL and sororin by mass spectrometry, fluorescence-correlation spectroscopy and fluorescence recovery after photobleaching in HeLa cells. In G1-phase, there are ~250,000 nuclear cohesin complexes, of which ~ 160,000 are chromatin-bound. Comparison with chromatin immunoprecipitation-sequencing data implies that some genomic cohesin and CTCF enrichment sites are unoccupied in single cells at any one time. We discuss the implications of these findings for how cohesin can contribute to genome organisation and cohesion.


Asunto(s)
Factor de Unión a CCCTC/genética , Proteínas Portadoras/genética , Proteínas de Ciclo Celular/genética , Proteínas Cromosómicas no Histona/genética , Dosificación de Gen , Expresión Génica , Proteínas Nucleares/genética , Proteínas Proto-Oncogénicas/genética , Factor de Unión a CCCTC/metabolismo , Proteínas Portadoras/metabolismo , Proteínas de Ciclo Celular/metabolismo , Línea Celular , Cromátides/genética , Cromatina/genética , Cromatina/metabolismo , Proteínas Cromosómicas no Histona/metabolismo , Segregación Cromosómica/genética , Recuperación de Fluorescencia tras Fotoblanqueo/métodos , Fase G1/genética , Genoma Humano/genética , Células HeLa , Humanos , Espectrometría de Masas/métodos , Proteínas Nucleares/metabolismo , Proteínas Proto-Oncogénicas/metabolismo , Cohesinas
9.
Elife ; 82019 03 25.
Artículo en Inglés | MEDLINE | ID: mdl-30910006

RESUMEN

Targeted cancer therapy is based on exploiting selective dependencies of tumor cells. By leveraging recent functional screening data of cancer cell lines we identify Werner syndrome helicase (WRN) as a novel specific vulnerability of microsatellite instability-high (MSI-H) cancer cells. MSI, caused by defective mismatch repair (MMR), occurs frequently in colorectal, endometrial and gastric cancers. We demonstrate that WRN inactivation selectively impairs the viability of MSI-H but not microsatellite stable (MSS) colorectal and endometrial cancer cell lines. In MSI-H cells, WRN loss results in severe genome integrity defects. ATP-binding deficient variants of WRN fail to rescue the viability phenotype of WRN-depleted MSI-H cancer cells. Reconstitution and depletion studies indicate that WRN dependence is not attributable to acute loss of MMR gene function but might arise during sustained MMR-deficiency. Our study suggests that pharmacological inhibition of WRN helicase function represents an opportunity to develop a novel targeted therapy for MSI-H cancers.


Asunto(s)
Inestabilidad de Microsatélites , Neoplasias/terapia , Helicasa del Síndrome de Werner/antagonistas & inhibidores , Línea Celular Tumoral , Supervivencia Celular , Reparación de la Incompatibilidad de ADN , Humanos , Modelos Teóricos , Helicasa del Síndrome de Werner/genética
10.
Nat Cell Biol ; 20(4): 503, 2018 04.
Artículo en Inglés | MEDLINE | ID: mdl-29434373

RESUMEN

In the version of this Letter originally published, the authors omitted a citation of an early study demonstrating topoisomerase-II-dependent sister chromatid resolution. This reference has now been added to the reference list as reference number 28, and the relevant text has been amended as follows to include its citation: 'Resolution must reflect the removal of sister-sister contacts, and we show here that Topo-IIα-mediated release of DNA catenation plays a major role (Fig. 4), in agreement with previous findings28, whereas, surprisingly, cohesin dissociation is not strictly required (Fig. 3).' Subsequent references have been renumbered. All online versions of the Letter have been updated to reflect this change.

11.
Nat Cell Biol ; 18(6): 692-9, 2016 06.
Artículo en Inglés | MEDLINE | ID: mdl-27136266

RESUMEN

The formation of mitotic chromosomes requires both compaction of chromatin and the resolution of replicated sister chromatids. Compaction occurs during mitotic prophase and prometaphase, and in prophase relies on the activity of condensin II complexes. Exactly when and how sister chromatid resolution occurs has been largely unknown, as has its molecular requirements. Here, we established a method to visualize sister resolution by sequential replication labelling with two distinct nucleotide derivatives. Quantitative three-dimensional imaging then allowed us to measure the resolution of sister chromatids throughout mitosis by calculating their non-overlapping volume within the whole chromosome. Unexpectedly, we found that sister chromatid resolution starts already at the beginning of prophase, proceeds concomitantly with chromatin compaction and is largely completed by the end of prophase. Sister chromatid resolution was abolished by inhibition of topoisomerase IIα and by depleting or preventing mitotic activation of condensin II, whereas blocking cohesin dissociation from chromosomes had little effect. Mitotic sister chromatid resolution is thus an intrinsic part of mitotic chromosome formation in prophase that relies largely on DNA decatenation and shares the molecular requirement for condensin II with prophase compaction.


Asunto(s)
Cromátides/metabolismo , Mitosis/fisiología , Prometafase/fisiología , Profase/fisiología , Adenosina Trifosfatasas/metabolismo , Antígenos de Neoplasias/metabolismo , Línea Celular , Replicación del ADN/fisiología , ADN-Topoisomerasas de Tipo II/metabolismo , Proteínas de Unión al ADN/metabolismo , Humanos , Imagenología Tridimensional/métodos , Complejos Multiproteicos/metabolismo , Proteínas Nucleares/metabolismo
12.
Nat Cell Biol ; 17(6): 711-3, 2015 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-26022918

RESUMEN

A major controversy in the field of chromosome research has been whether condensin is required for achieving the highly compacted state of chromatin fibres in mitosis and meiosis. Through genetic experiments in mouse oocytes, condensin is now found to be indispensable for meiotic chromosome assembly by mediating chromosome compaction and disentanglement of sister chromatids and by conferring rigidity to chromosomes.


Asunto(s)
Adenosina Trifosfatasas/metabolismo , Proteínas de Ciclo Celular/genética , Proteínas Cromosómicas no Histona/genética , Segregación Cromosómica/fisiología , Proteínas de Unión al ADN/metabolismo , Meiosis/fisiología , Complejos Multiproteicos/metabolismo , Proteínas Nucleares/genética , Animales
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