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Intricate environment-modulated genetic networks control isoflavone accumulation in soybean seeds

BACKGROUND: Soybean (Glycine max [L] Merr.) seed isoflavones have long been considered a desirable trait to target in selection programs for their contribution to human health and plant defense systems. However, attempts to modify seed isoflavone contents have not always produced the expected result...

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Autores principales: Gutierrez-Gonzalez, Juan J, Wu, Xiaolei, Gillman, Jason D, Lee, Jeong-Dong, Zhong, Rui, Yu, Oliver, Shannon, Grover, Ellersieck, Mark, Nguyen, Henry T, Sleper, David A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3224685/
https://www.ncbi.nlm.nih.gov/pubmed/20540761
http://dx.doi.org/10.1186/1471-2229-10-105
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author Gutierrez-Gonzalez, Juan J
Wu, Xiaolei
Gillman, Jason D
Lee, Jeong-Dong
Zhong, Rui
Yu, Oliver
Shannon, Grover
Ellersieck, Mark
Nguyen, Henry T
Sleper, David A
author_facet Gutierrez-Gonzalez, Juan J
Wu, Xiaolei
Gillman, Jason D
Lee, Jeong-Dong
Zhong, Rui
Yu, Oliver
Shannon, Grover
Ellersieck, Mark
Nguyen, Henry T
Sleper, David A
author_sort Gutierrez-Gonzalez, Juan J
collection PubMed
description BACKGROUND: Soybean (Glycine max [L] Merr.) seed isoflavones have long been considered a desirable trait to target in selection programs for their contribution to human health and plant defense systems. However, attempts to modify seed isoflavone contents have not always produced the expected results because their genetic basis is polygenic and complex. Undoubtedly, the extreme variability that seed isoflavones display over environments has obscured our understanding of the genetics involved. RESULTS: In this study, a mapping population of RILs with three replicates was analyzed in four different environments (two locations over two years). We found a total of thirty-five main-effect genomic regions and many epistatic interactions controlling genistein, daidzein, glycitein and total isoflavone accumulation in seeds. The use of distinct environments permitted detection of a great number of environment-modulated and minor-effect QTL. Our findings suggest that isoflavone seed concentration is controlled by a complex network of multiple minor-effect loci interconnected by a dense epistatic map of interactions. The magnitude and significance of the effects of many of the nodes and connections in the network varied depending on the environmental conditions. In an attempt to unravel the genetic architecture underlying the traits studied, we searched on a genome-wide scale for genomic regions homologous to the most important identified isoflavone biosynthetic genes. We identified putative candidate genes for several of the main-effect and epistatic QTL and for QTL reported by other groups. CONCLUSIONS: To better understand the underlying genetics of isoflavone accumulation, we performed a large scale analysis to identify genomic regions associated with isoflavone concentrations. We not only identified a number of such regions, but also found that they can interact with one another and with the environment to form a complex adaptable network controlling seed isoflavone levels. We also found putative candidate genes in several regions and overall we advanced the knowledge of the genetics underlying isoflavone synthesis.
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spelling pubmed-32246852011-11-28 Intricate environment-modulated genetic networks control isoflavone accumulation in soybean seeds Gutierrez-Gonzalez, Juan J Wu, Xiaolei Gillman, Jason D Lee, Jeong-Dong Zhong, Rui Yu, Oliver Shannon, Grover Ellersieck, Mark Nguyen, Henry T Sleper, David A BMC Plant Biol Research Article BACKGROUND: Soybean (Glycine max [L] Merr.) seed isoflavones have long been considered a desirable trait to target in selection programs for their contribution to human health and plant defense systems. However, attempts to modify seed isoflavone contents have not always produced the expected results because their genetic basis is polygenic and complex. Undoubtedly, the extreme variability that seed isoflavones display over environments has obscured our understanding of the genetics involved. RESULTS: In this study, a mapping population of RILs with three replicates was analyzed in four different environments (two locations over two years). We found a total of thirty-five main-effect genomic regions and many epistatic interactions controlling genistein, daidzein, glycitein and total isoflavone accumulation in seeds. The use of distinct environments permitted detection of a great number of environment-modulated and minor-effect QTL. Our findings suggest that isoflavone seed concentration is controlled by a complex network of multiple minor-effect loci interconnected by a dense epistatic map of interactions. The magnitude and significance of the effects of many of the nodes and connections in the network varied depending on the environmental conditions. In an attempt to unravel the genetic architecture underlying the traits studied, we searched on a genome-wide scale for genomic regions homologous to the most important identified isoflavone biosynthetic genes. We identified putative candidate genes for several of the main-effect and epistatic QTL and for QTL reported by other groups. CONCLUSIONS: To better understand the underlying genetics of isoflavone accumulation, we performed a large scale analysis to identify genomic regions associated with isoflavone concentrations. We not only identified a number of such regions, but also found that they can interact with one another and with the environment to form a complex adaptable network controlling seed isoflavone levels. We also found putative candidate genes in several regions and overall we advanced the knowledge of the genetics underlying isoflavone synthesis. BioMed Central 2010-06-11 /pmc/articles/PMC3224685/ /pubmed/20540761 http://dx.doi.org/10.1186/1471-2229-10-105 Text en Copyright ©2010 Gutierrez-Gonzalez et al; licensee BioMed Central Ltd. This is an Open Access article distributed under the terms of the Creative Commons Attribution License (<url>http://creativecommons.org/licenses/by/2.0</url>), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Gutierrez-Gonzalez, Juan J
Wu, Xiaolei
Gillman, Jason D
Lee, Jeong-Dong
Zhong, Rui
Yu, Oliver
Shannon, Grover
Ellersieck, Mark
Nguyen, Henry T
Sleper, David A
Intricate environment-modulated genetic networks control isoflavone accumulation in soybean seeds
title Intricate environment-modulated genetic networks control isoflavone accumulation in soybean seeds
title_full Intricate environment-modulated genetic networks control isoflavone accumulation in soybean seeds
title_fullStr Intricate environment-modulated genetic networks control isoflavone accumulation in soybean seeds
title_full_unstemmed Intricate environment-modulated genetic networks control isoflavone accumulation in soybean seeds
title_short Intricate environment-modulated genetic networks control isoflavone accumulation in soybean seeds
title_sort intricate environment-modulated genetic networks control isoflavone accumulation in soybean seeds
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3224685/
https://www.ncbi.nlm.nih.gov/pubmed/20540761
http://dx.doi.org/10.1186/1471-2229-10-105
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