Literature DB >> 12861021

Acetylation-dependent chromatin reorganization by BRDT, a testis-specific bromodomain-containing protein.

Christophe Pivot-Pajot1, Cécile Caron, Jérôme Govin, Alexandre Vion, Sophie Rousseaux, Saadi Khochbin.   

Abstract

The association between histone acetylation and replacement observed during spermatogenesis prompted us to consider the testis as a source for potential factors capable of remodelling acetylated chromatin. A systematic search of data banks for open reading frames encoding testis-specific bromodomain-containing proteins focused our attention on BRDT, a testis-specific protein of unknown function containing two bromodomains. BRDT specifically binds hyperacetylated histone H4 tail depending on the integrity of both bromodomains. Moreover, in somatic cells, the ectopic expression of BRDT triggered a dramatic reorganization of the chromatin only after induction of histone hyperacetylation by trichostatin A (TSA). We then defined critical domains of BRDT involved in its activity. Both bromodomains of BRDT, as well as flanking regions, were found indispensable for its histone acetylation-dependent remodelling activity. Interestingly, we also observed that recombinant BRDT was capable of inducing reorganization of the chromatin of isolated nuclei in vitro only when the nuclei were from TSA-treated cells. This assay also allowed us to show that the action of BRDT was ATP independent, suggesting a structural role for the protein in the remodelling of acetylated chromatin. This is the first demonstration of a large-scale reorganization of acetylated chromatin induced by a specific factor.

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Year:  2003        PMID: 12861021      PMCID: PMC165724          DOI: 10.1128/MCB.23.15.5354-5365.2003

Source DB:  PubMed          Journal:  Mol Cell Biol        ISSN: 0270-7306            Impact factor:   4.272


  43 in total

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3.  Function and selectivity of bromodomains in anchoring chromatin-modifying complexes to promoter nucleosomes.

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4.  Deciphering the transcriptional histone acetylation code for a human gene.

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5.  Methylation of histone h3 at lysine 9 targets programmed DNA elimination in tetrahymena.

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6.  Growth and early postimplantation defects in mice deficient for the bromodomain-containing protein Brd4.

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7.  Reproductive cycle regulation of nuclear import, euchromatic localization, and association with components of Pol II mediator of a mammalian double-bromodomain protein.

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  90 in total

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Review 5.  The sperm nucleus: chromatin, RNA, and the nuclear matrix.

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7.  The double bromodomain proteins Brd2 and Brd3 couple histone acetylation to transcription.

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9.  The bromodomain protein BRD4 positively regulates necroptosis via modulating MLKL expression.

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10.  Chd5 orchestrates chromatin remodelling during sperm development.

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Journal:  Nat Commun       Date:  2014-05-13       Impact factor: 14.919

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