Modeling the evolution of regulatory elements by simultaneous detection and alignment with phylogenetic pair HMMs.

dc.contributor.author

Majoros, William H

dc.contributor.author

Ohler, Uwe

dc.contributor.editor

Wasserman, Wyeth W

dc.coverage.spatial

United States

dc.date.accessioned

2011-06-21T17:31:13Z

dc.date.issued

2010-12-16

dc.description.abstract

The computational detection of regulatory elements in DNA is a difficult but important problem impacting our progress in understanding the complex nature of eukaryotic gene regulation. Attempts to utilize cross-species conservation for this task have been hampered both by evolutionary changes of functional sites and poor performance of general-purpose alignment programs when applied to non-coding sequence. We describe a new and flexible framework for modeling binding site evolution in multiple related genomes, based on phylogenetic pair hidden Markov models which explicitly model the gain and loss of binding sites along a phylogeny. We demonstrate the value of this framework for both the alignment of regulatory regions and the inference of precise binding-site locations within those regions. As the underlying formalism is a stochastic, generative model, it can also be used to simulate the evolution of regulatory elements. Our implementation is scalable in terms of numbers of species and sequence lengths and can produce alignments and binding-site predictions with accuracy rivaling or exceeding current systems that specialize in only alignment or only binding-site prediction. We demonstrate the validity and power of various model components on extensive simulations of realistic sequence data and apply a specific model to study Drosophila enhancers in as many as ten related genomes and in the presence of gain and loss of binding sites. Different models and modeling assumptions can be easily specified, thus providing an invaluable tool for the exploration of biological hypotheses that can drive improvements in our understanding of the mechanisms and evolution of gene regulation.

dc.description.version

Version of Record

dc.identifier

http://www.ncbi.nlm.nih.gov/pubmed/21187896

dc.identifier.eissn

1553-7358

dc.identifier.uri

https://hdl.handle.net/10161/4455

dc.language

eng

dc.language.iso

en_US

dc.publisher

Public Library of Science (PLoS)

dc.relation.ispartof

PLoS Comput Biol

dc.relation.isversionof

10.1371/journal.pcbi.1001037

dc.relation.journal

Plos Computational Biology

dc.subject

Animals

dc.subject

Base Sequence

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Computational Biology

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Computer Simulation

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Drosophila melanogaster

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Evolution, Molecular

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Gene Expression Regulation

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Markov Chains

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Molecular Sequence Data

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Phylogeny

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ROC Curve

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Regulatory Elements, Transcriptional

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Sequence Alignment

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Sequence Analysis, DNA

dc.title

Modeling the evolution of regulatory elements by simultaneous detection and alignment with phylogenetic pair HMMs.

dc.title.alternative
dc.type

Journal article

duke.contributor.orcid

Majoros, William H|0000-0001-7284-9335

duke.date.pubdate

2010-12-0

duke.description.issue

12

duke.description.volume

6

pubs.author-url

http://www.ncbi.nlm.nih.gov/pubmed/21187896

pubs.begin-page

e1001037

pubs.issue

12

pubs.organisational-group

Basic Science Departments

pubs.organisational-group

Biostatistics & Bioinformatics

pubs.organisational-group

Duke

pubs.organisational-group

School of Medicine

pubs.publication-status

Published online

pubs.volume

6

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