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Durand-Dubief, Mikael
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Publications (3 of 3) Show all publications
Durand-Dubief, M. & Ekwall, K. (2008). Heterochromatin tells CENP-A where to go. Bioessays, 30(6), 526-529
Open this publication in new window or tab >>Heterochromatin tells CENP-A where to go
2008 (English)In: Bioessays, ISSN 0265-9247, E-ISSN 1521-1878, Vol. 30, no 6, p. 526-529Article in journal (Refereed) Published
Abstract [en]

The centromere is the region of the chromosome where the kinetochore forms. Kinetochores are the attachment sites for spindle microtubules that separate duplicated chromosomes in mitosis and meiosis. Kinetochore formation depends on a special chromatin structure containing the histone H3 variant CENP-A. The epigenetic mechanisms that maintain CENP-A chromatin throughout the cell cycle have been studied extensively but little is known about the mechanism that targets CENP-A to naked centromeric DNA templates. In a recent report published in Science,((1)) such de novo centromere assembly of CENP-A is shown to be dependent on heterochromatin and the RNA interference pathway.

National Category
Biochemistry Molecular Biology
Identifiers
urn:nbn:se:sh:diva-14149 (URN)10.1002/bies.20763 (DOI)000256608700003 ()2-s2.0-45549091508 (Scopus ID)
Available from: 2011-12-18 Created: 2011-12-16 Last updated: 2025-10-07Bibliographically approved
Fagerström-Billai, F., Durand-Dubief, M., Ekwall, K. & Wright, A. P. H. (2007). Individual Subunits of the Ssn6-Tup11/12 corepressor are selectively required for repression of different target genes. Molecular and Cellular Biology, 27(3), 1069-1082
Open this publication in new window or tab >>Individual Subunits of the Ssn6-Tup11/12 corepressor are selectively required for repression of different target genes
2007 (English)In: Molecular and Cellular Biology, ISSN 0270-7306, E-ISSN 1098-5549, Vol. 27, no 3, p. 1069-1082Article in journal (Refereed) Published
Abstract [en]

The Saccharomyces cerevisiae Ssn6 and Tup1 proteins form a corepressor complex that is recruited to target genes by DNA-bound repressor proteins. Repression occurs via several mechanisms, including interaction with hypoacetylated N termini of histones, recruitment of histone deacetylases (HDACs), and interactions with the RNA polymerase II holoenzyme. The distantly related fission yeast, Schizosaccharomyces pombe, has two partially redundant Tup1-like proteins that are dispensable during normal growth. In contrast, we show that Ssn6 is an essential protein in S. pombe, suggesting a function that is independent of Tup11 and Tup12. Consistently, the group of genes that requires Ssn6 for their regulation overlaps but is distinct from the group of genes that depend on Tup11 or Tup12. Global chip-on-chip analysis shows that Ssn6 is almost invariably found in the same genomic locations as Tup11 and/or Tup12. All three corepressor subunits are generally bound to genes that are selectively regulated by Ssn6 or Tup11/12, and thus, the subunit specificity is probably manifested in the context of a corepressor complex containing all three subunits. The corepressor binds to both the intergenic and coding regions of genes, but differential localization of the corepressor within genes does not appear to account for the selective dependence of target genes on the Ssn6 or Tup11/12 subunits. Ssn6, Tup11, and Tup12 are preferentially found at genomic locations at which histones are deacetylated, primarily by the Clr6 class I HDAC. Clr6 is also important for the repression of corepressor target genes. Interestingly, a subset of corepressor target genes, including direct target genes affected by Ssn6 overexpression, is associated with the function of class II (CIr3) and III (Hst4 and Sir2) HDACs.

National Category
Biological Sciences
Identifiers
urn:nbn:se:sh:diva-13954 (URN)10.1128/MCB.01674-06 (DOI)000243946000024 ()17101775 (PubMedID)2-s2.0-33846584595 (Scopus ID)
Available from: 2011-12-15 Created: 2011-12-15 Last updated: 2025-10-07Bibliographically approved
Durand-Dubief, M., Sinha, I., Fagerström-Billai, F., Bonilla, C., Wright, A., Grunstein, M. & Ekwall, K. (2007). Specific functions for the fission yeast Sirtuins Hst2 and Hst4 in gene regulation and retrotransposon silencing. EMBO Journal, 26(10), 2477-2488
Open this publication in new window or tab >>Specific functions for the fission yeast Sirtuins Hst2 and Hst4 in gene regulation and retrotransposon silencing
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2007 (English)In: EMBO Journal, ISSN 0261-4189, E-ISSN 1460-2075, Vol. 26, no 10, p. 2477-2488Article in journal (Refereed) Published
Abstract [en]

Expression profiling, ChiP-CHIP and phenotypic analysis were used to investigate the functional relationships of class III NAD(+)-dependent HDACs (Sirtuins) in fission yeast. We detected significant histone acetylation increases in Sirtuin mutants at their specific genomic binding targets and were thus able to identify an in vivo substrate preference for each Sirtuin. At heterochromatic loci, we demonstrate that although Hst2 is mainly cytoplasmic, a nuclear pool of Hst2 colocalizes with the other Sirtuins at silent regions (cen, mat, tel, rDNA), and that like the other Sirtuins, Hst2 is required for rDNA and centromeric silencing. Interestingly we found specific functions for the fission yeast Sirtuins Hst2 and Hst4 in gene regulation. Hst2 directly represses genes involved in transport and membrane function, whereas Hst4 represses amino-acid biosynthesis genes and Tf2 retrotransposons. A specific role for Hst4 in Tf2 50 mRNA processing was revealed. Thus, Sirtuins share functions at many genomic targets, but Hst2 and Hst4 have also evolved unique functions in gene regulation.

National Category
Biochemistry Molecular Biology Cell Biology
Identifiers
urn:nbn:se:sh:diva-14223 (URN)10.1038/sj.emboj.7601690 (DOI)000247083100004 ()17446861 (PubMedID)2-s2.0-34249001997 (Scopus ID)
Note

Som manuskript i avhandling. As manuscript in dissertation.

Available from: 2011-12-19 Created: 2011-12-19 Last updated: 2025-10-07Bibliographically approved
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