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1.
Chromosoma ; 129(3-4): 215-226, 2020 12.
Article de Anglais | MEDLINE | ID: mdl-32651609

RÉSUMÉ

Heterochromatin protein 1ß (HP1ß), encoded by the Cbx1 gene, has been functionally linked to chromatin condensation, transcriptional regulation, and DNA damage repair. Here we report that testis-specific Cbx1 conditional knockout (Cbx1 cKO) impairs male germ cell development in mice. Depletion of HP1ß negatively affected sperm maturation and increased seminiferous tubule degeneration in Cbx1 cKO mice. In addition, the spermatogonia have elevated γ-H2AX foci levels as do Cbx1 deficient mouse embryonic fibroblasts (MEFs) as compared to wild-type (WT) control MEFs. The increase in γ-H2AX foci in proliferating Cbx1 cKO cells indicates defective replication-dependent DNA damage repair. Depletion or loss of HP1ß from human cells and MEFs increased DNA replication fork stalling and firing of new origins of replication, indicating defective DNA synthesis. Taken together, these results suggest that loss of HP1ß in proliferating cells leads to DNA replication defects with associated DNA damage that impact spermatogenesis.


Sujet(s)
Protéines chromosomiques nonhistones/génétique , Réplication de l'ADN , Régulation de l'expression des gènes au cours du développement , Spermatogenèse/génétique , Allèles , Animaux , Apoptose/génétique , Lignée cellulaire , Homologue-5 de la protéine chromobox , Protéines chromosomiques nonhistones/métabolisme , Réplication de l'ADN/effets des médicaments et des substances chimiques , Technique d'immunofluorescence , Régulation de l'expression des gènes au cours du développement/effets des médicaments et des substances chimiques , Ciblage de gène , Locus génétiques , Histone/métabolisme , Humains , Immunohistochimie , Mâle , Souris , Souris knockout , Phénotype , Maturation du spermatozoïde/génétique , Spermatogenèse/effets des médicaments et des substances chimiques , Spermatogonies/cytologie , Spermatogonies/métabolisme
2.
Stem Cell Reports ; 10(2): 627-641, 2018 02 13.
Article de Anglais | MEDLINE | ID: mdl-29358085

RÉSUMÉ

The heterochromatin protein 1 (HP1) family is involved in various functions with maintenance of chromatin structure. During murine somatic cell reprogramming, we find that early depletion of HP1γ reduces the generation of induced pluripotent stem cells, while late depletion enhances the process, with a concomitant change from a centromeric to nucleoplasmic localization and elongation-associated histone H3.3 enrichment. Depletion of heterochromatin anchoring protein SENP7 increased reprogramming efficiency to a similar extent as HP1γ, indicating the importance of HP1γ release from chromatin for pluripotency acquisition. HP1γ interacted with OCT4 and DPPA4 in HP1α and HP1ß knockouts and in H3K9 methylation depleted H3K9M embryonic stem cell (ESC) lines. HP1α and HP1γ complexes in ESCs differed in association with histones, the histone chaperone CAF1 complex, and specific components of chromatin-modifying complexes such as DPY30, implying distinct functional contributions. Taken together, our results reveal the complex contribution of the HP1 proteins to pluripotency.


Sujet(s)
Reprogrammation cellulaire/génétique , Chromatine/génétique , Cellules souches pluripotentes induites/composition chimique , Complexes multiprotéiques/génétique , Animaux , Chromatine/composition chimique , Homologue-5 de la protéine chromobox , Protéines chromosomiques nonhistones/composition chimique , Protéines chromosomiques nonhistones/génétique , Endopeptidases/composition chimique , Endopeptidases/génétique , Exoribonucleases , Histone-lysine N-methyltransferase/composition chimique , Histone-lysine N-methyltransferase/génétique , Histone/génétique , Humains , Cellules souches pluripotentes induites/cytologie , Souris , Souris knockout , Complexes multiprotéiques/composition chimique , Protéines nucléaires/génétique , Facteur de transcription Oct-3/composition chimique , Facteur de transcription Oct-3/génétique , Protéines/composition chimique , Protéines/génétique , Protéines de répression , Ribonucléases , Facteurs de transcription
3.
Cell Rep ; 21(8): 2048-2057, 2017 Nov 21.
Article de Anglais | MEDLINE | ID: mdl-29166597

RÉSUMÉ

HP1 is a structural component of heterochromatin. Mammalian HP1 isoforms HP1α, HP1ß, and HP1γ play different roles in genome stability, but their precise role in heterochromatin structure is unclear. Analysis of Hp1α-/-, Hp1ß-/-, and Hp1γ-/- MEFs show that HP1 proteins have both redundant and unique functions within pericentric heterochromatin (PCH) and also act globally throughout the genome. HP1α confines H4K20me3 and H3K27me3 to regions within PCH, while its absence results in a global hyper-compaction of chromatin associated with a specific pattern of mitotic defects. In contrast, HP1ß is functionally associated with Suv4-20h2 and H4K20me3, and its loss induces global chromatin decompaction and an abnormal enrichment of CTCF in PCH and other genomic regions. Our work provides insight into the roles of HP1 proteins in heterochromatin structure and genome stability.


Sujet(s)
Protéines chromosomiques nonhistones/génétique , Protéines chromosomiques nonhistones/métabolisme , Séquence d'acides aminés/génétique , Animaux , Chromatine/métabolisme , Homologue-5 de la protéine chromobox , Cellules HeLa , Humains , Mammifères/métabolisme , Liaison aux protéines/génétique , Liaison aux protéines/immunologie , Isoformes de protéines/génétique , Isoformes de protéines/métabolisme , Facteurs de transcription/génétique , Facteurs de transcription/métabolisme
4.
Epigenetics ; 12(2): 166-175, 2017 02.
Article de Anglais | MEDLINE | ID: mdl-28059589

RÉSUMÉ

The presence of H3K9me3 and heterochromatin protein 1 (HP1) are hallmarks of heterochromatin conserved in eukaryotes. The spreading and maintenance of H3K9me3 is effected by the functional interplay between the H3K9me3-specific histone methyltransferase Suv39h1 and HP1. This interplay is complex in mammals because the three HP1 isoforms, HP1α, ß, and γ, are thought to play a redundant role in Suv39h1-dependent deposition of H3K9me3 in pericentric heterochromatin (PCH). Here, we demonstrate that despite this redundancy, HP1α and, to a lesser extent, HP1γ have a closer functional link to Suv39h1, compared to HP1ß. HP1α and γ preferentially interact in vivo with Suv39h1, regulate its dynamics in heterochromatin, and increase Suv39h1 protein stability through an inhibition of MDM2-dependent Suv39h1-K87 polyubiquitination. The reverse is also observed, where Suv39h1 increases HP1α stability compared HP1ß and γ. The interplay between Suv39h1 and HP1 isoforms appears to be relevant under genotoxic stress. Specifically, loss of HP1α and γ isoforms inhibits the upregulation of Suv39h1 and H3K9me3 that is observed under stress conditions. Reciprocally, Suv39h1 deficiency abrogates stress-dependent upregulation of HP1α and γ, and enhances HP1ß levels. Our work defines a specific role for HP1 isoforms in regulating Suv39h1 function under stress via a feedback mechanism that likely regulates heterochromatin formation.


Sujet(s)
Protéines chromosomiques nonhistones/métabolisme , Altération de l'ADN , Rétrocontrôle physiologique , Methyltransferases/génétique , Protéines de répression/génétique , Lignée cellulaire , Assemblage et désassemblage de la chromatine , Homologue-5 de la protéine chromobox , Protéines chromosomiques nonhistones/génétique , Histone/métabolisme , Humains , Methyltransferases/métabolisme , Liaison aux protéines , Isoformes de protéines/génétique , Isoformes de protéines/métabolisme , Stabilité protéique , Protéines de répression/métabolisme , Ubiquitination
5.
Nucleus ; 4(1): 74-82, 2013.
Article de Anglais | MEDLINE | ID: mdl-23337132

RÉSUMÉ

Heterochromatin protein 1 (HP1), a small non-histone chromosomal protein, was recently shown to form a complex in vivo with Proliferating Cell Nuclear Antigen (PCNA), a key factor in DNA replication. The complex, which requires HP1ß in a form of a dimer, is engaged in DNA repair and replication. We now provide further evidence based on FRET-FLIM live cell studies confirming the association and close proximity between HP1ß and PCNA in the complex. We also demonstrate using FRAP, that although HP1ß-PCNA complexes are highly mobile in nonreplicating nuclei, when engaged in DNA replication, they become bound and do not exchange with the mobile pool. These observations are in agreement with a notion that a subpopulation of HP1 molecules interact with PCNA in vivo during DNA replication. Similarly, HP1ß which is associated with PCNA in regions of DNA repair, is bound and does not exchange with the mobile pool, suggesting that HP1ß in association with PCNA may be a component of a DNA repair complex.


Sujet(s)
Protéines chromosomiques nonhistones/métabolisme , Réparation de l'ADN , ADN/métabolisme , Antigène nucléaire de prolifération cellulaire/métabolisme , Noyau de la cellule/métabolisme , Facteur-1 d'assemblage de la chromatine/métabolisme , Homologue-5 de la protéine chromobox , Réplication de l'ADN , Dimérisation , Transfert d'énergie par résonance de fluorescence , Cellules HeLa , Humains , Liaison aux protéines , Sous-unités de protéines/métabolisme , Facteurs de transcription
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