Molecular and Cellular Biology · 2007 · 42 citations · 50 references
GeneticsMolecular BiologyCytoskeletonMolecular GeneticsCell CycleHistone Acetyltransferase Gcn5pEpigeneticsYeastCentromere Kinetochore FunctionGenome InstabilityImportant RoleProtein FunctionCell DivisionMeiosisDna ReplicationNuclear OrganizationGene ExpressionEpigenetic RegulationCell BiologyChromatinBudding YeastChromatin RemodelingChromosome SegregationNatural SciencesChromosome BiologyMedicineSick Phenotype
We report that the histone acetyltransferase Gcn5p is involved in cell cycle progression, whereas its absence induces several mitotic defects, including inefficient nuclear division, chromosome loss, delayed G(2) progression, and spindle elongation. The fidelity of chromosome segregation is finely regulated by the close interplay between the centromere and the kinetochore, a protein complex hierarchically assembled in the centromeric DNA region, while disruption of GCN5 in mutants of inner components results in sick phenotype. These synthetic interactions involving the ADA complex lay the genetic basis for the critical role of Gcn5p in kinetochore assembly and function. We found that Gcn5p is, in fact, physically linked to the centromere, where it affects the structure of the variant centromeric nucleosome. Our findings offer a key insight into a Gcn5p-dependent epigenetic regulation at centromere/kinetochore in mitosis.
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