Understanding gene sequence variation in the context of transcription regulation in yeast.
DNA sequence polymorphism in a regulatory protein can have a widespread transcriptional effect. Here we present a computational approach for analyzing modules of genes with a common regulation that are affected by specific DNA polymorphisms. We identify such regulatory-linkage modules by integrating...
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doaj-01b7ce90088f410ca9758d8f917e29cf2020-11-25T02:49:24ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042010-01-0161e100080010.1371/journal.pgen.1000800Understanding gene sequence variation in the context of transcription regulation in yeast.Irit Gat-ViksRenana MellerMartin KupiecRon ShamirDNA sequence polymorphism in a regulatory protein can have a widespread transcriptional effect. Here we present a computational approach for analyzing modules of genes with a common regulation that are affected by specific DNA polymorphisms. We identify such regulatory-linkage modules by integrating genotypic and expression data for individuals in a segregating population with complementary expression data of strains mutated in a variety of regulatory proteins. Our procedure searches simultaneously for groups of co-expressed genes, for their common underlying linkage interval, and for their shared regulatory proteins. We applied the method to a cross between laboratory and wild strains of S. cerevisiae, demonstrating its ability to correctly suggest modules and to outperform extant approaches. Our results suggest that middle sporulation genes are under the control of polymorphism in the sporulation-specific tertiary complex Sum1p/Rfm1p/Hst1p. In another example, our analysis reveals novel inter-relations between Swi3 and two mitochondrial inner membrane proteins underlying variation in a module of aerobic cellular respiration genes. Overall, our findings demonstrate that this approach provides a useful framework for the systematic mapping of quantitative trait loci and their role in gene expression variation.http://europepmc.org/articles/PMC2794365?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Irit Gat-Viks Renana Meller Martin Kupiec Ron Shamir |
spellingShingle |
Irit Gat-Viks Renana Meller Martin Kupiec Ron Shamir Understanding gene sequence variation in the context of transcription regulation in yeast. PLoS Genetics |
author_facet |
Irit Gat-Viks Renana Meller Martin Kupiec Ron Shamir |
author_sort |
Irit Gat-Viks |
title |
Understanding gene sequence variation in the context of transcription regulation in yeast. |
title_short |
Understanding gene sequence variation in the context of transcription regulation in yeast. |
title_full |
Understanding gene sequence variation in the context of transcription regulation in yeast. |
title_fullStr |
Understanding gene sequence variation in the context of transcription regulation in yeast. |
title_full_unstemmed |
Understanding gene sequence variation in the context of transcription regulation in yeast. |
title_sort |
understanding gene sequence variation in the context of transcription regulation in yeast. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Genetics |
issn |
1553-7390 1553-7404 |
publishDate |
2010-01-01 |
description |
DNA sequence polymorphism in a regulatory protein can have a widespread transcriptional effect. Here we present a computational approach for analyzing modules of genes with a common regulation that are affected by specific DNA polymorphisms. We identify such regulatory-linkage modules by integrating genotypic and expression data for individuals in a segregating population with complementary expression data of strains mutated in a variety of regulatory proteins. Our procedure searches simultaneously for groups of co-expressed genes, for their common underlying linkage interval, and for their shared regulatory proteins. We applied the method to a cross between laboratory and wild strains of S. cerevisiae, demonstrating its ability to correctly suggest modules and to outperform extant approaches. Our results suggest that middle sporulation genes are under the control of polymorphism in the sporulation-specific tertiary complex Sum1p/Rfm1p/Hst1p. In another example, our analysis reveals novel inter-relations between Swi3 and two mitochondrial inner membrane proteins underlying variation in a module of aerobic cellular respiration genes. Overall, our findings demonstrate that this approach provides a useful framework for the systematic mapping of quantitative trait loci and their role in gene expression variation. |
url |
http://europepmc.org/articles/PMC2794365?pdf=render |
work_keys_str_mv |
AT iritgatviks understandinggenesequencevariationinthecontextoftranscriptionregulationinyeast AT renanameller understandinggenesequencevariationinthecontextoftranscriptionregulationinyeast AT martinkupiec understandinggenesequencevariationinthecontextoftranscriptionregulationinyeast AT ronshamir understandinggenesequencevariationinthecontextoftranscriptionregulationinyeast |
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1724743708534898688 |