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1.
Cell ; 181(3): 702-715.e20, 2020 04 30.
Artículo en Inglés | MEDLINE | ID: mdl-32315619

RESUMEN

Protein phosphatase 2A (PP2A) enzymes can suppress tumors, but they are often inactivated in human cancers overexpressing inhibitory proteins. Here, we identify a class of small-molecule iHAPs (improved heterocyclic activators of PP2A) that kill leukemia cells by allosterically assembling a specific heterotrimeric PP2A holoenzyme consisting of PPP2R1A (scaffold), PPP2R5E (B56ε, regulatory), and PPP2CA (catalytic) subunits. One compound, iHAP1, activates this complex but does not inhibit dopamine receptor D2, a mediator of neurologic toxicity induced by perphenazine and related neuroleptics. The PP2A complex activated by iHAP1 dephosphorylates the MYBL2 transcription factor on Ser241, causing irreversible arrest of leukemia and other cancer cells in prometaphase. In contrast, SMAPs, a separate class of compounds, activate PP2A holoenzymes containing a different regulatory subunit, do not dephosphorylate MYBL2, and arrest tumor cells in G1 phase. Our findings demonstrate that small molecules can serve as allosteric switches to activate distinct PP2A complexes with unique substrates.


Asunto(s)
Proteína Fosfatasa 2/metabolismo , Apoptosis , Proteínas de Ciclo Celular/efectos de los fármacos , Proteínas de Ciclo Celular/metabolismo , Línea Celular Tumoral , Activadores de Enzimas/metabolismo , Fase G1 , Humanos , Complejos Multiproteicos/metabolismo , Complejos Multiproteicos/fisiología , Fenotiazinas/farmacología , Fosforilación , Proteína Fosfatasa 2/fisiología , Subunidades de Proteína/metabolismo , Transactivadores/efectos de los fármacos , Transactivadores/metabolismo , Factores de Transcripción/metabolismo
2.
Cell ; 173(6): 1481-1494.e13, 2018 05 31.
Artículo en Inglés | MEDLINE | ID: mdl-29706543

RESUMEN

Global profiling of protein expression through the cell cycle has revealed subsets of periodically expressed proteins. However, expression levels alone only give a partial view of the biochemical processes determining cellular events. Using a proteome-wide implementation of the cellular thermal shift assay (CETSA) to study specific cell-cycle phases, we uncover changes of interaction states for more than 750 proteins during the cell cycle. Notably, many protein complexes are modulated in specific cell-cycle phases, reflecting their roles in processes such as DNA replication, chromatin remodeling, transcription, translation, and disintegration of the nuclear envelope. Surprisingly, only small differences in the interaction states were seen between the G1 and the G2 phase, suggesting similar hardwiring of biochemical processes in these two phases. The present work reveals novel molecular details of the cell cycle and establishes proteome-wide CETSA as a new strategy to study modulation of protein-interaction states in intact cells.


Asunto(s)
Ciclo Celular , Mapeo de Interacción de Proteínas , División Celular , Cromatina/química , Análisis por Conglomerados , Replicación del ADN , Fase G1 , Fase G2 , Humanos , Células K562 , Membrana Nuclear , Proteoma , Proteómica/métodos
3.
Mol Cell ; 83(22): 3946-3947, 2023 Nov 16.
Artículo en Inglés | MEDLINE | ID: mdl-37977113

RESUMEN

In this issue of Molecular Cell, Crozier et al.,1 Foy et al.,2 Manohar et al.,3 and Wilson et al.4 show how excessive cell growth caused by a temporary G1 arrest leads to permanent cell cycle exit at different stages of the cell cycle.


Asunto(s)
Senescencia Celular , Ciclo Celular , División Celular , Fase G1 , Proliferación Celular
4.
Nature ; 619(7969): 363-370, 2023 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-37407814

RESUMEN

In mammalian cells, the decision to proliferate is thought to be irreversibly made at the restriction point of the cell cycle1,2, when mitogen signalling engages a positive feedback loop between cyclin A2/cyclin-dependent kinase 2 (CDK2) and the retinoblastoma protein3-5. Contrary to this textbook model, here we show that the decision to proliferate is actually fully reversible. Instead, we find that all cycling cells will exit the cell cycle in the absence of mitogens unless they make it to mitosis and divide first. This temporal competition between two fates, mitosis and cell cycle exit, arises because cyclin A2/CDK2 activity depends upon CDK4/6 activity throughout the cell cycle, not just in G1 phase. Without mitogens, mitosis is only observed when the half-life of cyclin A2 protein is long enough to sustain CDK2 activity throughout G2/M. Thus, cells are dependent on mitogens and CDK4/6 activity to maintain CDK2 activity and retinoblastoma protein phosphorylation throughout interphase. Consequently, even a 2-h delay in a cell's progression towards mitosis can induce cell cycle exit if mitogen signalling is lost. Our results uncover the molecular mechanism underlying the restriction point phenomenon, reveal an unexpected role for CDK4/6 activity in S and G2 phases and explain the behaviour of all cells following loss of mitogen signalling.


Asunto(s)
Ciclo Celular , Quinasa 4 Dependiente de la Ciclina , Quinasa 6 Dependiente de la Ciclina , Fase G2 , Fase S , Animales , Ciclina A2/metabolismo , Quinasa 2 Dependiente de la Ciclina/metabolismo , Quinasa 4 Dependiente de la Ciclina/deficiencia , Quinasa 4 Dependiente de la Ciclina/metabolismo , Mitógenos/deficiencia , Mitógenos/metabolismo , Mitosis , Fosforilación , Proteína de Retinoblastoma/química , Proteína de Retinoblastoma/metabolismo , Quinasa 6 Dependiente de la Ciclina/deficiencia , Quinasa 6 Dependiente de la Ciclina/metabolismo , Fase G1
5.
Nature ; 623(7985): 183-192, 2023 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-37853125

RESUMEN

The DNA damage response is essential to safeguard genome integrity. Although the contribution of chromatin in DNA repair has been investigated1,2, the contribution of chromosome folding to these processes remains unclear3. Here we report that, after the production of double-stranded breaks (DSBs) in mammalian cells, ATM drives the formation of a new chromatin compartment (D compartment) through the clustering of damaged topologically associating domains, decorated with γH2AX and 53BP1. This compartment forms by a mechanism that is consistent with polymer-polymer phase separation rather than liquid-liquid phase separation. The D compartment arises mostly in G1 phase, is independent of cohesin and is enhanced after pharmacological inhibition of DNA-dependent protein kinase (DNA-PK) or R-loop accumulation. Importantly, R-loop-enriched DNA-damage-responsive genes physically localize to the D compartment, and this contributes to their optimal activation, providing a function for DSB clustering in the DNA damage response. However, DSB-induced chromosome reorganization comes at the expense of an increased rate of translocations, also observed in cancer genomes. Overall, we characterize how DSB-induced compartmentalization orchestrates the DNA damage response and highlight the critical impact of chromosome architecture in genomic instability.


Asunto(s)
Compartimento Celular , Cromatina , Daño del ADN , Animales , Proteínas de la Ataxia Telangiectasia Mutada/metabolismo , Línea Celular , Cromatina/genética , Cromatina/metabolismo , Roturas del ADN de Doble Cadena , Reparación del ADN , Proteína Quinasa Activada por ADN/metabolismo , Fase G1 , Histonas/metabolismo , Neoplasias/genética , Estructuras R-Loop , Proteína 1 de Unión al Supresor Tumoral P53/metabolismo
6.
Mol Cell ; 81(24): 5007-5024.e9, 2021 12 16.
Artículo en Inglés | MEDLINE | ID: mdl-34767771

RESUMEN

As cells enter mitosis, chromatin compacts to facilitate chromosome segregation yet remains transcribed. Transcription supercoils DNA to levels that can impede further progression of RNA polymerase II (RNAPII) unless it is removed by DNA topoisomerase 1 (TOP1). Using ChIP-seq on mitotic cells, we found that TOP1 is required for RNAPII translocation along genes. The stimulation of TOP1 activity by RNAPII during elongation allowed RNAPII clearance from genes in prometaphase and enabled chromosomal segregation. Disruption of the TOP1-RNAPII interaction impaired RNAPII spiking at promoters and triggered defects in the post-mitotic transcription program. This program includes factors necessary for cell growth, and cells with impaired TOP1-RNAPII interaction are more sensitive to inhibitors of mTOR signaling. We conclude that TOP1 is necessary for assisting transcription during mitosis with consequences for growth and gene expression long after mitosis is completed. In this sense, TOP1 ensures that cellular memory is preserved in subsequent generations.


Asunto(s)
Proliferación Celular , Ensamble y Desensamble de Cromatina , Neoplasias Colorrectales/enzimología , ADN-Topoisomerasas de Tipo I/metabolismo , Fase G1 , Mitosis , ARN Polimerasa II/metabolismo , Transcripción Genética , Proliferación Celular/efectos de los fármacos , Secuenciación de Inmunoprecipitación de Cromatina , Neoplasias Colorrectales/tratamiento farmacológico , Neoplasias Colorrectales/genética , Neoplasias Colorrectales/patología , ADN-Topoisomerasas de Tipo I/genética , Fase G1/efectos de los fármacos , Regulación Neoplásica de la Expresión Génica , Células HCT116 , Humanos , Inhibidores mTOR/farmacología , Mitosis/efectos de los fármacos , ARN Polimerasa II/genética
7.
Mol Cell ; 81(12): 2596-2610.e7, 2021 06 17.
Artículo en Inglés | MEDLINE | ID: mdl-33961796

RESUMEN

p53-binding protein 1 (53BP1) regulates both the DNA damage response and p53 signaling. Although 53BP1's function is well established in DNA double-strand break repair, how its role in p53 signaling is modulated remains poorly understood. Here, we identify the scaffolding protein AHNAK as a G1 phase-enriched interactor of 53BP1. We demonstrate that AHNAK binds to the 53BP1 oligomerization domain and controls its multimerization potential. Loss of AHNAK results in hyper-accumulation of 53BP1 on chromatin and enhanced phase separation, culminating in an elevated p53 response, compromising cell survival in cancer cells but leading to senescence in non-transformed cells. Cancer transcriptome analyses indicate that AHNAK-53BP1 cooperation contributes to the suppression of p53 target gene networks in tumors and that loss of AHNAK sensitizes cells to combinatorial cancer treatments. These findings highlight AHNAK as a rheostat of 53BP1 function, which surveys cell proliferation by preventing an excessive p53 response.


Asunto(s)
Proteínas de la Membrana/metabolismo , Proteínas de Neoplasias/metabolismo , Proteína 1 de Unión al Supresor Tumoral P53/metabolismo , Línea Celular Tumoral , Cromatina/metabolismo , ADN/genética , Roturas del ADN de Doble Cadena , Reparación del ADN , Fase G1/fisiología , Histonas/metabolismo , Humanos , Células MCF-7 , Proteínas de la Membrana/genética , Proteínas de la Membrana/fisiología , Proteínas de Neoplasias/genética , Proteínas de Neoplasias/fisiología , Transducción de Señal/fisiología , Proteína p53 Supresora de Tumor/genética , Proteína p53 Supresora de Tumor/metabolismo , Proteína 1 de Unión al Supresor Tumoral P53/genética , Proteína 1 de Unión al Supresor Tumoral P53/fisiología
8.
Mol Cell ; 81(9): 1951-1969.e6, 2021 05 06.
Artículo en Inglés | MEDLINE | ID: mdl-33761311

RESUMEN

The initiation of DNA replication involves cell cycle-dependent assembly and disassembly of protein complexes, including the origin recognition complex (ORC) and CDC6 AAA+ ATPases. We report that multiple short linear protein motifs (SLiMs) within intrinsically disordered regions (IDRs) in ORC1 and CDC6 mediate cyclin-CDK-dependent and independent protein-protein interactions, conditional on the cell cycle phase. A domain within the ORC1 IDR is required for interaction between the ORC1 and CDC6 AAA+ domains in G1, whereas the same domain prevents CDC6-ORC1 interaction during mitosis. Then, during late G1, this domain facilitates ORC1 destruction by a SKP2-cyclin A-CDK2-dependent mechanism. During G1, the CDC6 Cy motif cooperates with cyclin E-CDK2 to promote ORC1-CDC6 interactions. The CDC6 IDR regulates self-interaction by ORC1, thereby controlling ORC1 protein levels. Protein phosphatase 1 binds directly to a SLiM in the ORC1 IDR, causing ORC1 de-phosphorylation upon mitotic exit, increasing ORC1 protein, and promoting pre-RC assembly.


Asunto(s)
ATPasas Asociadas con Actividades Celulares Diversas/metabolismo , Proteínas de Ciclo Celular/metabolismo , Núcleo Celular/metabolismo , Replicación del ADN , Proteínas Intrínsecamente Desordenadas/metabolismo , Mitosis , Proteínas Nucleares/metabolismo , Complejo de Reconocimiento del Origen/metabolismo , Dominio AAA , ATPasas Asociadas con Actividades Celulares Diversas/genética , Proteínas de Ciclo Celular/genética , Núcleo Celular/genética , Ciclina A/genética , Ciclina A/metabolismo , Ciclina E/genética , Ciclina E/metabolismo , Fase G1 , Células HeLa , Humanos , Proteínas Intrínsecamente Desordenadas/genética , Proteínas Nucleares/genética , Complejo de Reconocimiento del Origen/genética , Fosforilación , Unión Proteica , Dominios y Motivos de Interacción de Proteínas , Proteína Fosfatasa 1/genética , Proteína Fosfatasa 1/metabolismo , Estabilidad Proteica , Proteínas Quinasas Asociadas a Fase-S/genética , Proteínas Quinasas Asociadas a Fase-S/metabolismo
9.
Cell ; 155(1): 135-47, 2013 09 26.
Artículo en Inglés | MEDLINE | ID: mdl-24074866

RESUMEN

Self-renewal and differentiation of stem cells are fundamentally associated with cell-cycle progression to enable tissue specification, organ homeostasis, and potentially tumorigenesis. However, technical challenges have impaired the study of the molecular interactions coordinating cell fate choice and cell-cycle progression. Here, we bypass these limitations by using the FUCCI reporter system in human pluripotent stem cells and show that their capacity of differentiation varies during the progression of their cell cycle. These mechanisms are governed by the cell-cycle regulators cyclin D1-3 that control differentiation signals such as the TGF-ß-Smad2/3 pathway. Conversely, cell-cycle manipulation using a small molecule directs differentiation of hPSCs and provides an approach to generate cell types with a clinical interest. Our results demonstrate that cell fate decisions are tightly associated with the cell-cycle machinery and reveal insights in the mechanisms synchronizing differentiation and proliferation in developing tissues.


Asunto(s)
Ciclo Celular , Diferenciación Celular , Ciclina D/metabolismo , Células Madre Embrionarias/citología , Transducción de Señal , Ciclina D/genética , Células Madre Embrionarias/metabolismo , Fase G1 , Técnicas de Silenciamiento del Gen , Humanos , Células Madre Pluripotentes/citología , Células Madre Pluripotentes/metabolismo , Proteína Smad2/genética , Proteína smad3/genética
10.
Nature ; 605(7909): 357-365, 2022 05.
Artículo en Inglés | MEDLINE | ID: mdl-35508654

RESUMEN

The entry of mammalian cells into the DNA synthesis phase (S phase) represents a key event in cell division1. According to current models of the cell cycle, the kinase CDC7 constitutes an essential and rate-limiting trigger of DNA replication, acting together with the cyclin-dependent kinase CDK2. Here we show that CDC7 is dispensable for cell division of many different cell types, as determined using chemical genetic systems that enable acute shutdown of CDC7 in cultured cells and in live mice. We demonstrate that another cell cycle kinase, CDK1, is also active during G1/S transition both in cycling cells and in cells exiting quiescence. We show that CDC7 and CDK1 perform functionally redundant roles during G1/S transition, and at least one of these kinases must be present to allow S-phase entry. These observations revise our understanding of cell cycle progression by demonstrating that CDK1 physiologically regulates two distinct transitions during cell division cycle, whereas CDC7 has a redundant function in DNA replication.


Asunto(s)
Proteínas de Ciclo Celular , Fase G1 , Proteínas Serina-Treonina Quinasas , Proteolisis , Fase S , Animales , Proteínas de Ciclo Celular/metabolismo , Replicación del ADN , Ratones , Proteínas Serina-Treonina Quinasas/metabolismo
11.
Nature ; 606(7912): 197-203, 2022 06.
Artículo en Inglés | MEDLINE | ID: mdl-35585235

RESUMEN

Eukaryotic genomes are compacted into loops and topologically associating domains (TADs)1-3, which contribute to transcription, recombination and genomic stability4,5. Cohesin extrudes DNA into loops that are thought to lengthen until CTCF boundaries are encountered6-12. Little is known about whether loop extrusion is impeded by DNA-bound machines. Here we show that the minichromosome maintenance (MCM) complex is a barrier that restricts loop extrusion in G1 phase. Single-nucleus Hi-C (high-resolution chromosome conformation capture) of mouse zygotes reveals that MCM loading reduces CTCF-anchored loops and decreases TAD boundary insulation, which suggests that loop extrusion is impeded before reaching CTCF. This effect extends to HCT116 cells, in which MCMs affect the number of CTCF-anchored loops and gene expression. Simulations suggest that MCMs are abundant, randomly positioned and partially permeable barriers. Single-molecule imaging shows that MCMs are physical barriers that frequently constrain cohesin translocation in vitro. Notably, chimeric yeast MCMs that contain a cohesin-interaction motif from human MCM3 induce cohesin pausing, indicating that MCMs are 'active' barriers with binding sites. These findings raise the possibility that cohesin can arrive by loop extrusion at MCMs, which determine the genomic sites at which sister chromatid cohesion is established. On the basis of in vivo, in silico and in vitro data, we conclude that distinct loop extrusion barriers shape the three-dimensional genome.


Asunto(s)
Proteínas de Ciclo Celular , Proteínas Cromosómicas no Histona , ADN , Proteínas de Mantenimiento de Minicromosoma , Animales , Factor de Unión a CCCTC/metabolismo , Proteínas de Ciclo Celular/metabolismo , Cromátides/química , Cromátides/metabolismo , Proteínas Cromosómicas no Histona/metabolismo , ADN/química , ADN/metabolismo , Fase G1 , Células HCT116 , Humanos , Ratones , Componente 3 del Complejo de Mantenimiento de Minicromosoma/química , Componente 3 del Complejo de Mantenimiento de Minicromosoma/metabolismo , Proteínas de Mantenimiento de Minicromosoma/química , Proteínas de Mantenimiento de Minicromosoma/metabolismo , Complejos Multienzimáticos/química , Complejos Multienzimáticos/metabolismo , Conformación de Ácido Nucleico , Saccharomyces cerevisiae , Proteínas de Saccharomyces cerevisiae/metabolismo , Cohesinas
12.
Mol Cell ; 80(2): 183-192, 2020 10 15.
Artículo en Inglés | MEDLINE | ID: mdl-32946743

RESUMEN

The Cdk-Rb-E2F pathway integrates external and internal signals to control progression at the G1/S transition of the mammalian cell cycle. Alterations in this pathway are found in most human cancers, and specific cyclin-dependent kinase Cdk4/6 inhibitors are approved or in clinical trials for the treatment of diverse cancers. In the long-standing paradigm for G1/S control, Cdks inactivate the retinoblastoma tumor suppressor protein (Rb) through phosphorylation, which releases E2F transcription factors to drive cell-cycle progression from G1 to S. However, recent observations in the laboratory and clinic challenge central tenets of the current paradigm and demonstrate that our understanding of the Rb pathway and G1/S control is still incomplete. Here, we integrate these new findings with the previous paradigm to synthesize a current molecular and cellular view of the mammalian G1/S transition. A more complete and accurate understanding of G1/S control will lead to improved therapeutic strategies targeting the cell cycle in cancer.


Asunto(s)
Fase G1 , Fase S , Animales , Proliferación Celular , Quinasas Ciclina-Dependientes/metabolismo , Humanos , Modelos Biológicos , Proteína de Retinoblastoma/metabolismo
13.
Mol Cell ; 78(2): 359-370.e6, 2020 04 16.
Artículo en Inglés | MEDLINE | ID: mdl-32246903

RESUMEN

Yeast cells must grow to a critical size before committing to division. It is unknown how size is measured. We find that as cells grow, mRNAs for some cell-cycle activators scale faster than size, increasing in concentration, while mRNAs for some inhibitors scale slower than size, decreasing in concentration. Size-scaled gene expression could cause an increasing ratio of activators to inhibitors with size, triggering cell-cycle entry. Consistent with this, expression of the CLN2 activator from the promoter of the WHI5 inhibitor, or vice versa, interfered with cell size homeostasis, yielding a broader distribution of cell sizes. We suggest that size homeostasis comes from differential scaling of gene expression with size. Differential regulation of gene expression as a function of cell size could affect many cellular processes.


Asunto(s)
División Celular/genética , Tamaño de la Célula , Ciclinas/genética , Proteínas de Saccharomyces cerevisiae/genética , Ciclo Celular/genética , Fase G1/genética , Regulación del Desarrollo de la Expresión Génica/genética , Regulación Fúngica de la Expresión Génica/genética , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/crecimiento & desarrollo
14.
Mol Cell ; 78(1): 127-140.e7, 2020 04 02.
Artículo en Inglés | MEDLINE | ID: mdl-32035037

RESUMEN

As cells enter mitosis, the genome is restructured to facilitate chromosome segregation, accompanied by dramatic changes in gene expression. However, the mechanisms that underlie mitotic transcriptional regulation are unclear. In contrast to transcribed genes, centromere regions retain transcriptionally active RNA polymerase II (Pol II) in mitosis. Here, we demonstrate that chromatin-bound cohesin is necessary to retain elongating Pol II at centromeres. We find that WAPL-mediated removal of cohesin from chromosome arms during prophase is required for the dissociation of Pol II and nascent transcripts, and failure of this process dramatically alters mitotic gene expression. Removal of cohesin/Pol II from chromosome arms in prophase is important for accurate chromosome segregation and normal activation of gene expression in G1. We propose that prophase cohesin removal is a key step in reprogramming gene expression as cells transition from G2 through mitosis to G1.


Asunto(s)
Proteínas de Ciclo Celular/fisiología , Proteínas Cromosómicas no Histona/fisiología , Regulación de la Expresión Génica , Mitosis/genética , Transcripción Genética , Anafase/genética , Animales , Aurora Quinasa B/análisis , Ciclo Celular , Proteínas de Ciclo Celular/análisis , Línea Celular , Centrómero/enzimología , Segregación Cromosómica , Fase G1/genética , Puntos de Control de la Fase G2 del Ciclo Celular/genética , Humanos , Metafase/genética , Profase , ARN Polimerasa II/metabolismo , Xenopus laevis , Cohesinas
15.
EMBO J ; 42(2): e110321, 2023 01 16.
Artículo en Inglés | MEDLINE | ID: mdl-36420556

RESUMEN

Eukaryotic cells decide in late G1 phase of the cell cycle whether to commit to another round of division. This point of cell cycle commitment is termed "Restriction Point" in mammals and "Start" in the budding yeast Saccharomyces cerevisiae. At Start, yeast cells integrate multiple signals such as pheromones and nutrients, and will not pass Start if nutrients are lacking. However, how cells respond to nutrient depletion after the Start decision remains poorly understood. Here, we analyze how post-Start cells respond to nutrient depletion, by monitoring Whi5, the cell cycle inhibitor whose export from the nucleus determines Start. Surprisingly, we find that cells that have passed Start can re-import Whi5 into the nucleus. In these cells, the positive feedback loop activating G1/S transcription is interrupted, and the Whi5 repressor re-binds DNA. Cells which re-import Whi5 become again sensitive to mating pheromone, like pre-Start cells, and CDK activation can occur a second time upon replenishment of nutrients. These results demonstrate that upon starvation, the commitment decision at Start can be reversed. We therefore propose that cell cycle commitment in yeast is a multi-step process, similar to what has been suggested for mammalian cells.


Asunto(s)
Proteínas de Saccharomyces cerevisiae , Saccharomycetales , Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo , Ciclo Celular , División Celular , Fase G1 , Saccharomycetales/metabolismo
16.
Nat Rev Mol Cell Biol ; 16(6): 360-74, 2015 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-25999062

RESUMEN

DNA replication begins with the assembly of pre-replication complexes (pre-RCs) at thousands of DNA replication origins during the G1 phase of the cell cycle. At the G1-S-phase transition, pre-RCs are converted into pre-initiation complexes, in which the replicative helicase is activated, leading to DNA unwinding and initiation of DNA synthesis. However, only a subset of origins are activated during any S phase. Recent insights into the mechanisms underlying this choice reveal how flexibility in origin usage and temporal activation are linked to chromosome structure and organization, cell growth and differentiation, and replication stress.


Asunto(s)
Replicación del ADN/fisiología , ADN/biosíntesis , Fase G1/fisiología , Origen de Réplica/fisiología , Fase S/fisiología , Animales , Diferenciación Celular/fisiología , Cromosomas Humanos/genética , Cromosomas Humanos/metabolismo , ADN/genética , Humanos
17.
Cell ; 148(5): 908-21, 2012 Mar 02.
Artículo en Inglés | MEDLINE | ID: mdl-22341456

RESUMEN

The extent to which the three-dimensional organization of the genome contributes to chromosomal translocations is an important question in cancer genomics. We generated a high-resolution Hi-C spatial organization map of the G1-arrested mouse pro-B cell genome and used high-throughput genome-wide translocation sequencing to map translocations from target DNA double-strand breaks (DSBs) within it. RAG endonuclease-cleaved antigen-receptor loci are dominant translocation partners for target DSBs regardless of genomic position, reflecting high-frequency DSBs at these loci and their colocalization in a fraction of cells. To directly assess spatial proximity contributions, we normalized genomic DSBs via ionizing radiation. Under these conditions, translocations were highly enriched in cis along single chromosomes containing target DSBs and within other chromosomes and subchromosomal domains in a manner directly related to pre-existing spatial proximity. By combining two high-throughput genomic methods in a genetically tractable system, we provide a new lens for viewing cancer genomes.


Asunto(s)
Genoma , Neoplasias/genética , Translocación Genética , Animales , Roturas del ADN de Doble Cadena/efectos de la radiación , Fase G1 , Secuenciación de Nucleótidos de Alto Rendimiento , Ratones , Ratones de la Cepa 129 , Ratones Endogámicos BALB C , Neoplasias/tratamiento farmacológico , Neoplasias/patología , Células Precursoras de Linfocitos B/citología , Receptores de Antígenos/genética
18.
Cell ; 148(1-2): 99-111, 2012 Jan 20.
Artículo en Inglés | MEDLINE | ID: mdl-22265405

RESUMEN

The replication of eukaryotic chromosomes is organized temporally and spatially within the nucleus through epigenetic regulation of replication origin function. The characteristic initiation timing of specific origins is thought to reflect their chromatin environment or sub-nuclear positioning, however the mechanism remains obscure. Here we show that the yeast Forkhead transcription factors, Fkh1 and Fkh2, are global determinants of replication origin timing. Forkhead regulation of origin timing is independent of local levels or changes of transcription. Instead, we show that Fkh1 and Fkh2 are required for the clustering of early origins and their association with the key initiation factor Cdc45 in G1 phase, suggesting that Fkh1 and Fkh2 selectively recruit origins to emergent replication factories. Fkh1 and Fkh2 bind Fkh-activated origins, and interact physically with ORC, providing a plausible mechanism to cluster origins. These findings add a new dimension to our understanding of the epigenetic basis for differential origin regulation and its connection to chromosomal domain organization.


Asunto(s)
Proteínas de Ciclo Celular/metabolismo , Factores de Transcripción Forkhead/metabolismo , Origen de Réplica , Proteínas de Saccharomyces cerevisiae/metabolismo , Saccharomyces cerevisiae/metabolismo , Proteínas de Unión al ADN/metabolismo , Fase G1 , Proteínas Nucleares/metabolismo , Saccharomyces cerevisiae/citología , Saccharomyces cerevisiae/genética , Transcripción Genética
19.
Mol Cell ; 74(3): 571-583.e8, 2019 05 02.
Artículo en Inglés | MEDLINE | ID: mdl-30898438

RESUMEN

In mitosis, cells inactivate DNA double-strand break (DSB) repair pathways to preserve genome stability. However, some early signaling events still occur, such as recruitment of the scaffold protein MDC1 to phosphorylated histone H2AX at DSBs. Yet, it remains unclear whether these events are important for maintaining genome stability during mitosis. Here, we identify a highly conserved protein-interaction surface in MDC1 that is phosphorylated by CK2 and recognized by the DNA-damage response mediator protein TOPBP1. Disruption of MDC1-TOPBP1 binding causes a specific loss of TOPBP1 recruitment to DSBs in mitotic but not interphase cells, accompanied by mitotic radiosensitivity, increased micronuclei, and chromosomal instability. Mechanistically, we find that TOPBP1 forms filamentous structures capable of bridging MDC1 foci in mitosis, indicating that MDC1-TOPBP1 complexes tether DSBs until repair is reactivated in the following G1 phase. Thus, we reveal an important, hitherto-unnoticed cooperation between MDC1 and TOPBP1 in maintaining genome stability during cell division.


Asunto(s)
Proteínas Portadoras/genética , Inestabilidad Cromosómica/genética , Proteínas de Unión al ADN/genética , Mitosis/genética , Proteínas Nucleares/genética , Transactivadores/genética , Proteínas Adaptadoras Transductoras de Señales , Proteínas de Ciclo Celular , Roturas del ADN de Doble Cadena , Daño del ADN/genética , Reparación del ADN/genética , Fase G1/genética , Genoma Humano/genética , Inestabilidad Genómica/genética , Histonas , Humanos , Fosforilación , Transducción de Señal/genética
20.
Mol Cell ; 74(4): 758-770.e4, 2019 05 16.
Artículo en Inglés | MEDLINE | ID: mdl-30982746

RESUMEN

The cyclin-dependent kinases Cdk4 and Cdk6 form complexes with D-type cyclins to drive cell proliferation. A well-known target of cyclin D-Cdk4,6 is the retinoblastoma protein Rb, which inhibits cell-cycle progression until its inactivation by phosphorylation. However, the role of Rb phosphorylation by cyclin D-Cdk4,6 in cell-cycle progression is unclear because Rb can be phosphorylated by other cyclin-Cdks, and cyclin D-Cdk4,6 has other targets involved in cell division. Here, we show that cyclin D-Cdk4,6 docks one side of an alpha-helix in the Rb C terminus, which is not recognized by cyclins E, A, and B. This helix-based docking mechanism is shared by the p107 and p130 Rb-family members across metazoans. Mutation of the Rb C-terminal helix prevents its phosphorylation, promotes G1 arrest, and enhances Rb's tumor suppressive function. Our work conclusively demonstrates that the cyclin D-Rb interaction drives cell division and expands the diversity of known cyclin-based protein docking mechanisms.


Asunto(s)
Proliferación Celular/genética , Ciclina D/genética , Mapas de Interacción de Proteínas/genética , Proteína de Retinoblastoma/genética , Ciclo Celular/genética , Proteína Sustrato Asociada a CrK/genética , Ciclina D/química , Quinasa 4 Dependiente de la Ciclina/química , Quinasa 4 Dependiente de la Ciclina/genética , Quinasa 6 Dependiente de la Ciclina/química , Quinasa 6 Dependiente de la Ciclina/genética , Ciclinas/genética , Fase G1/genética , Humanos , Simulación del Acoplamiento Molecular , Fosforilación/genética , Unión Proteica/genética , Conformación Proteica en Hélice alfa/genética , Proteína de Retinoblastoma/química , Proteína p107 Similar a la del Retinoblastoma/genética , Fase S/genética
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