Authors
Michael M Hoffman, Orion J Buske, Jie Wang, Zhiping Weng, Jeff A Bilmes, William Stafford Noble
Publication date
2012/5
Journal
Nature methods
Volume
9
Issue
5
Pages
473-476
Publisher
Nature Publishing Group
Description
We trained Segway, a dynamic Bayesian network method, simultaneously on chromatin data from multiple experiments, including positions of histone modifications, transcription-factor binding and open chromatin, all derived from a human chronic myeloid leukemia cell line. In an unsupervised fashion, we identified patterns associated with transcription start sites, gene ends, enhancers, transcriptional regulator CTCF-binding regions and repressed regions. Software and genome browser tracks are at http://noble. gs. washington. edu/proj/segway/.
Total citations
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