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Comparative deep transcriptional profiling of four developing oilseeds

Transcriptome analysis based on deep expressed sequence tag (EST) sequencing allows quantitative comparisons of gene expression across multiple species. Using pyrosequencing, we generated over 7 million ESTs from four stages of developing seeds of Ricinus communis, Brassica napus, Euonymus alatus an...

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Autores principales: Troncoso-Ponce, Manuel A, Kilaru, Aruna, Cao, Xia, Durrett, Timothy P, Fan, Jilian, Jensen, Jacob K, Thrower, Nick A, Pauly, Markus, Wilkerson, Curtis, Ohlrogge, John B
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3507003/
https://www.ncbi.nlm.nih.gov/pubmed/21851431
http://dx.doi.org/10.1111/j.1365-313X.2011.04751.x
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author Troncoso-Ponce, Manuel A
Kilaru, Aruna
Cao, Xia
Durrett, Timothy P
Fan, Jilian
Jensen, Jacob K
Thrower, Nick A
Pauly, Markus
Wilkerson, Curtis
Ohlrogge, John B
author_facet Troncoso-Ponce, Manuel A
Kilaru, Aruna
Cao, Xia
Durrett, Timothy P
Fan, Jilian
Jensen, Jacob K
Thrower, Nick A
Pauly, Markus
Wilkerson, Curtis
Ohlrogge, John B
author_sort Troncoso-Ponce, Manuel A
collection PubMed
description Transcriptome analysis based on deep expressed sequence tag (EST) sequencing allows quantitative comparisons of gene expression across multiple species. Using pyrosequencing, we generated over 7 million ESTs from four stages of developing seeds of Ricinus communis, Brassica napus, Euonymus alatus and Tropaeolum majus, which differ in their storage tissue for oil, their ability to photosynthesize and in the structure and content of their triacylglycerols (TAG). The larger number of ESTs in these 16 datasets provided reliable estimates of the expression of acyltransferases and other enzymes expressed at low levels. Analysis of EST levels from these oilseeds revealed both conserved and distinct species-specific expression patterns for genes involved in the synthesis of glycerolipids and their precursors. Independent of the species and tissue type, ESTs for core fatty acid synthesis enzymes maintained a conserved stoichiometry and a strong correlation in temporal profiles throughout seed development. However, ESTs associated with non-plastid enzymes of oil biosynthesis displayed dissimilar temporal patterns indicative of different regulation. The EST levels for several genes potentially involved in accumulation of unusual TAG structures were distinct. Comparison of expression of members from multi-gene families allowed the identification of specific isoforms with conserved function in oil biosynthesis. In all four oilseeds, ESTs for Rubisco were present, suggesting its possible role in carbon metabolism, irrespective of light availability. Together, these data provide a resource for use in comparative and functional genomics of diverse oilseeds. Expression data for more than 350 genes encoding enzymes and proteins involved in lipid metabolism are available at the ‘ARALIP’ website (http://aralip.plantbiology.msu.edu/).
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spelling pubmed-35070032012-12-03 Comparative deep transcriptional profiling of four developing oilseeds Troncoso-Ponce, Manuel A Kilaru, Aruna Cao, Xia Durrett, Timothy P Fan, Jilian Jensen, Jacob K Thrower, Nick A Pauly, Markus Wilkerson, Curtis Ohlrogge, John B Plant J Original Articles Transcriptome analysis based on deep expressed sequence tag (EST) sequencing allows quantitative comparisons of gene expression across multiple species. Using pyrosequencing, we generated over 7 million ESTs from four stages of developing seeds of Ricinus communis, Brassica napus, Euonymus alatus and Tropaeolum majus, which differ in their storage tissue for oil, their ability to photosynthesize and in the structure and content of their triacylglycerols (TAG). The larger number of ESTs in these 16 datasets provided reliable estimates of the expression of acyltransferases and other enzymes expressed at low levels. Analysis of EST levels from these oilseeds revealed both conserved and distinct species-specific expression patterns for genes involved in the synthesis of glycerolipids and their precursors. Independent of the species and tissue type, ESTs for core fatty acid synthesis enzymes maintained a conserved stoichiometry and a strong correlation in temporal profiles throughout seed development. However, ESTs associated with non-plastid enzymes of oil biosynthesis displayed dissimilar temporal patterns indicative of different regulation. The EST levels for several genes potentially involved in accumulation of unusual TAG structures were distinct. Comparison of expression of members from multi-gene families allowed the identification of specific isoforms with conserved function in oil biosynthesis. In all four oilseeds, ESTs for Rubisco were present, suggesting its possible role in carbon metabolism, irrespective of light availability. Together, these data provide a resource for use in comparative and functional genomics of diverse oilseeds. Expression data for more than 350 genes encoding enzymes and proteins involved in lipid metabolism are available at the ‘ARALIP’ website (http://aralip.plantbiology.msu.edu/). Blackwell Publishing Ltd 2011-12 2011-10-10 /pmc/articles/PMC3507003/ /pubmed/21851431 http://dx.doi.org/10.1111/j.1365-313X.2011.04751.x Text en © 2011 The Authors. The Plant Journal © 2011 Blackwell Publishing Ltd http://creativecommons.org/licenses/by/2.5/ Re-use of this article is permitted in accordance with the Creative Commons Deed, Attribution 2.5, which does not permit commercial exploitation.
spellingShingle Original Articles
Troncoso-Ponce, Manuel A
Kilaru, Aruna
Cao, Xia
Durrett, Timothy P
Fan, Jilian
Jensen, Jacob K
Thrower, Nick A
Pauly, Markus
Wilkerson, Curtis
Ohlrogge, John B
Comparative deep transcriptional profiling of four developing oilseeds
title Comparative deep transcriptional profiling of four developing oilseeds
title_full Comparative deep transcriptional profiling of four developing oilseeds
title_fullStr Comparative deep transcriptional profiling of four developing oilseeds
title_full_unstemmed Comparative deep transcriptional profiling of four developing oilseeds
title_short Comparative deep transcriptional profiling of four developing oilseeds
title_sort comparative deep transcriptional profiling of four developing oilseeds
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3507003/
https://www.ncbi.nlm.nih.gov/pubmed/21851431
http://dx.doi.org/10.1111/j.1365-313X.2011.04751.x
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