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Drosophila ORC Localizes to Open Chromatin and Marks Sites of Cohesin Complex Loading

Overview
Journal Genome Res
Specialty Genetics
Date 2009 Dec 10
PMID 19996087
Citations 178
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Abstract

The origin recognition complex (ORC) is an essential DNA replication initiation factor conserved in all eukaryotes. In Saccharomyces cerevisiae, ORC binds to specific DNA elements; however, in higher eukaryotes, ORC exhibits little sequence specificity in vitro or in vivo. We investigated the genome-wide distribution of ORC in Drosophila and found that ORC localizes to specific chromosomal locations in the absence of any discernible simple motif. Although no clear sequence motif emerged, we were able to use machine learning approaches to accurately discriminate between ORC-associated sequences and ORC-free sequences based solely on primary sequence. The complex sequence features that define ORC binding sites are highly correlated with nucleosome positioning signals and likely represent a preferred nucleosomal landscape for ORC association. Open chromatin appears to be the underlying feature that is deterministic for ORC binding. ORC-associated sequences are enriched for the histone variant, H3.3, often at transcription start sites, and depleted for bulk nucleosomes. The density of ORC binding along the chromosome is reflected in the time at which a sequence replicates, with early replicating sequences having a high density of ORC binding. Finally, we found a high concordance between sites of ORC binding and cohesin loading, suggesting that, in addition to DNA replication, ORC may be required for the loading of cohesin on DNA in Drosophila.

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References
1.
Aladjem M, Fanning E . The replicon revisited: an old model learns new tricks in metazoan chromosomes. EMBO Rep. 2004; 5(7):686-91. PMC: 1299096. DOI: 10.1038/sj.embor.7400185. View

2.
Kriegstein H, Hogness D . Mechanism of DNA replication in Drosophila chromosomes: structure of replication forks and evidence for bidirectionality. Proc Natl Acad Sci U S A. 1974; 71(1):135-9. PMC: 387951. DOI: 10.1073/pnas.71.1.135. View

3.
Uhlmann F, Nasmyth K . Cohesion between sister chromatids must be established during DNA replication. Curr Biol. 1998; 8(20):1095-101. DOI: 10.1016/s0960-9822(98)70463-4. View

4.
Beall E, Manak J, Zhou S, Bell M, Lipsick J, Botchan M . Role for a Drosophila Myb-containing protein complex in site-specific DNA replication. Nature. 2002; 420(6917):833-7. DOI: 10.1038/nature01228. View

5.
Wendt K, Yoshida K, Itoh T, Bando M, Koch B, Schirghuber E . Cohesin mediates transcriptional insulation by CCCTC-binding factor. Nature. 2008; 451(7180):796-801. DOI: 10.1038/nature06634. View