Abstract
Cooperativity between transcription factors is critical to gene regulation. Current computational methods do not take adequate account of this salient aspect. To address this issue, we present a computational method based on multivariate adaptive regression splines to correlate the occurrences of transcription factor binding motifs in the promoter DNA and their interactions to the logarithm of the ratio of gene expression levels. This allows us to discover both the individual motifs and synergistic pairs of motifs that are most likely to be functional, and enumerate their relative contributions at any arbitrary time point for which mRNA expression data are available. We present results of simulations and focus specifically on the yeast cell-cycle data. Inclusion of synergistic interactions can increase the prediction accuracy over linear regression to as much as 1.5- to 3.5-fold. Significant motifs and combinations of motifs are appropriately predicted at each stage of the cell cycle. We believe our multivariate adaptive regression splines-based approach will become more significant when applied to higher eukaryotes, especially mammals, where cooperative control of gene regulation is absolutely essential.
MeSH Terms
Cell Cycle/genetics
DNA, Fungal/genetics,metabolism
Databases, Genetic
Gene Expression Regulation
Gene Expression Regulation, Fungal
Models, Genetic
Models, Statistical
Multivariate Analysis
Promoter Regions, Genetic
RNA, Fungal/genetics
RNA, Messenger/genetics
Saccharomyces cerevisiae/cytology,genetics,metabolism
Saccharomyces cerevisiae Proteins/metabolism
Transcription Factors/metabolism
Chemicals
DNA, Fungal
RNA, Fungal
RNA, Messenger
Saccharomyces cerevisiae Proteins
Transcription Factors
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Das Debopriya
Cold Spring Harbor Laboratory, Cold Spring Harbor, NY 11724, USA.
Banerjee Nilanjana
Zhang Michael Q
References (24)
24 references, click to expand
-
Identification of regulatory elements using a feature selection method.
Bioinformatics. 2002 Sep;18(9):1167-75
PMID: 12217908
-
Characterization of the ECB binding complex responsible for the M/G(1)-specific transcription of CLN3 and SWI4.
Mol Cell Biol. 2002 Jan;22(2):430-41
PMID: 11756540
-
Conserved homeodomain proteins interact with MADS box protein Mcm1 to restrict ECB-dependent transcription to the M/G1 phase of the cell cycle.
Genes Dev. 2002 Dec 1;16(23):3034-45
PMID: 12464633
-
Rap1p and other transcriptional regulators can function in defining distinct domains of gene expression.
Nucleic Acids Res. 2003 Feb 15;31(4):1224-33
PMID: 12582242
-
Integrating regulatory motif discovery and genome-wide expression analysis.
Proc Natl Acad Sci U S A. 2003 Mar 18;100(6):3339-44
PMID: 12626739
-
Sequencing and comparison of yeast species to identify genes and regulatory elements.
Nature. 2003 May 15;423(6937):241-54
PMID: 12748633
-
Phylogenetically and spatially conserved word pairs associated with gene-expression changes in yeasts.
Genome Biol. 2003;4(7):R43
PMID: 12844359
-
Transcription regulation and animal diversity.
Nature. 2003 Jul 10;424(6945):147-51
PMID: 12853946
-
A biophysical approach to transcription factor binding site discovery.
Genome Res. 2003 Nov;13(11):2381-90
PMID: 14597652
-
Identifying cooperativity among transcription factors controlling the cell cycle in yeast.
Nucleic Acids Res. 2003 Dec 1;31(23):7024-31
PMID: 14627835
-
The global transcriptional activator of Saccharomyces cerevisiae, Gcr1p, mediates the response to glucose by stimulating protein synthesis and CLN-dependent cell cycle progression.
Genetics. 2003 Nov;165(3):1017-29
PMID: 14668361
-
Regression trees for regulatory element identification.
Bioinformatics. 2004 Mar 22;20(5):750-7
PMID: 14751992
-
Rme1, a negative regulator of meiosis, is also a positive activator of G1 cyclin gene expression.
EMBO J. 1995 Dec 1;14(23):5824-32
PMID: 8846775
-
Ste12 and Mcm1 regulate cell cycle-dependent transcription of FAR1.
Mol Cell Biol. 1996 Jun;16(6):2830-7
PMID: 8649392
-
The enhanceosome and transcriptional synergy.
Cell. 1998 Jan 9;92(1):5-8
PMID: 9489694
-
Comprehensive identification of cell cycle-regulated genes of the yeast Saccharomyces cerevisiae by microarray hybridization.
Mol Biol Cell. 1998 Dec;9(12):3273-97
PMID: 9843569
-
Regulation of G2/M progression by the STE mitogen-activated protein kinase pathway in budding yeast filamentous growth.
Mol Biol Cell. 1999 Oct;10(10):3301-16
PMID: 10512868
-
A genome-wide transcriptional analysis of the mitotic cell cycle.
Mol Cell. 1998 Jul;2(1):65-73
PMID: 9702192
-
Identification of target sites of the alpha2-Mcm1 repressor complex in the yeast genome.
Genome Res. 1999 Nov;9(11):1040-7
PMID: 10568744
-
Two yeast forkhead genes regulate the cell cycle and pseudohyphal growth.
Nature. 2000 Jul 6;406(6791):90-4
PMID: 10894548
-
Regulatory element detection using correlation with expression.
Nat Genet. 2001 Feb;27(2):167-71
PMID: 11175784
-
Serial regulation of transcriptional regulators in the yeast cell cycle.
Cell. 2001 Sep 21;106(6):697-708
PMID: 11572776
-
Identifying regulatory networks by combinatorial analysis of promoter elements.
Nat Genet. 2001 Oct;29(2):153-9
PMID: 11547334
-
Genome-wide co-occurrence of promoter elements reveals a cis-regulatory cassette of rRNA transcription motifs in Saccharomyces cerevisiae.
Genome Res. 2002 Nov;12(11):1723-31
PMID: 12421759