Literature DB >> 18003902

A tensor higher-order singular value decomposition for integrative analysis of DNA microarray data from different studies.

Larsson Omberg1, Gene H Golub, Orly Alter.   

Abstract

We describe the use of a higher-order singular value decomposition (HOSVD) in transforming a data tensor of genes x "x-settings," that is, different settings of the experimental variable x x "y-settings," which tabulates DNA microarray data from different studies, to a "core tensor" of "eigenarrays" x "x-eigengenes" x "y-eigengenes." Reformulating this multilinear HOSVD such that it decomposes the data tensor into a linear superposition of all outer products of an eigenarray, an x- and a y-eigengene, that is, rank-1 "subtensors," we define the significance of each subtensor in terms of the fraction of the overall information in the data tensor that it captures. We illustrate this HOSVD with an integration of genome-scale mRNA expression data from three yeast cell cycle time courses, two of which are under exposure to either hydrogen peroxide or menadione. We find that significant subtensors represent independent biological programs or experimental phenomena. The picture that emerges suggests that the conserved genes YKU70, MRE11, AIF1, and ZWF1, and the processes of retrotransposition, apoptosis, and the oxidative pentose phosphate pathway that these genes are involved in, may play significant, yet previously unrecognized, roles in the differential effects of hydrogen peroxide and menadione on cell cycle progression. A genome-scale correlation between DNA replication initiation and RNA transcription, which is equivalent to a recently discovered correlation and might be due to a previously unknown mechanism of regulation, is independently uncovered.

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Year:  2007        PMID: 18003902      PMCID: PMC2147680          DOI: 10.1073/pnas.0709146104

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  32 in total

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2.  Serial regulation of transcriptional regulators in the yeast cell cycle.

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3.  Singular value decomposition for genome-wide expression data processing and modeling.

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4.  Genomic expression programs in the response of yeast cells to environmental changes.

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6.  Genome-wide distribution of ORC and MCM proteins in S. cerevisiae: high-resolution mapping of replication origins.

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7.  Multiple Yap1p-binding sites mediate induction of the yeast major facilitator FLR1 gene in response to drugs, oxidants, and alkylating agents.

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10.  Genome-wide hierarchy of replication origin usage in Saccharomyces cerevisiae.

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  36 in total

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2.  Learning common and specific patterns from data of multiple interrelated biological scenarios with matrix factorization.

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3.  Tightly integrated genomic and epigenomic data mining using tensor decomposition.

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10.  Tumor Classification Using High-Order Gene Expression Profiles Based on Multilinear ICA.

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