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PMID: 15340490 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Transcriptional control in the segmentation gene network of Drosophila.

PLoS biology ·Vol. 2 ·No. 9 ·2004-09-00 ·Pages E271

Schroeder MD, Pearce M, Fak J, Fan H, Unnerstall U, Emberly E, Rajewsky N, Siggia ED, Gaul U

Abstract

The segmentation gene network of Drosophila consists of maternal and zygotic factors that generate, by transcriptional (cross-) regulation, expression patterns of increasing complexity along the anterior-posterior axis of the embryo. Using known binding site information for maternal and zygotic gap transcription factors, the computer algorithm Ahab recovers known segmentation control elements (modules) with excellent success and predicts many novel modules within the network and genome-wide. We show that novel module predictions are highly enriched in the network and typically clustered proximal to the promoter, not only upstream, but also in intronic space and downstream. When placed upstream of a reporter gene, they consistently drive patterned blastoderm expression, in most cases faithfully producing one or more pattern elements of the endogenous gene. Moreover, we demonstrate for the entire set of known and newly validated modules that Ahab's prediction of binding sites correlates well with the expression patterns produced by the modules, revealing basic rules governing their composition. Specifically, we show that maternal factors consistently act as activators and that gap factors act as repressors, except for the bimodal factor Hunchback. Our data suggest a simple context-dependent rule for its switch from repressive to activating function. Overall, the composition of modules appears well fitted to the spatiotemporal distribution of their positive and negative input factors. Finally, by comparing Ahab predictions with different categories of transcription factor input, we confirm the global regulatory structure of the segmentation gene network, but find odd skipped behaving like a primary pair-rule gene. The study expands our knowledge of the segmentation gene network by increasing the number of experimentally tested modules by 50%. For the first time, the entire set of validated modules is analyzed for binding site composition under a uniform set of criteria, permitting the definition of basic composition rules. The study demonstrates that computational methods are a powerful complement to experimental approaches in the analysis of transcription networks.

MeSH Terms
Algorithms Animals Binding Sites Body Patterning Chromosome Mapping Computational Biology/methods Developmental Biology/methods Drosophila/genetics Drosophila melanogaster/embryology,genetics Evolution, Molecular Gene Expression Regulation, Developmental Genome In Situ Hybridization Models, Genetic Multigene Family Promoter Regions, Genetic RNA, Messenger/metabolism Software Species Specificity Transcription Factors Transcription, Genetic
Chemicals
RNA, Messenger Transcription Factors
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Schroeder Mark D
Laboratory of Developmental Neurogenetics, Rockefeller University, New York, New York, USA.
Pearce Michael
Fak John
Fan HongQing
Unnerstall Ulrich
Emberly Eldon
Rajewsky Nikolaus
Siggia Eric D
Gaul Ulrike
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Article Info
Journal
PLoS biology
Abbr.
PLoS Biol
ISSN
1545-7885
Published
2004-09-00
Epub
2004-00-31
Pages
E271
Language
English
Region
United States
NLM ID
101183755
PMCID
PMC514885
Subset
IM
Grants
NIGMS NIH HHS · R21 GM066434 · United States
NIGMS NIH HHS · R33 GM066434 · United States
NIGMS NIH HHS · GM066434 · United States
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