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Search results 1 to 26 out of 26 for oil

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Category: DataSet
Type Details Score
Data Set
URL: https://data.legumeinfo.org/Glycine/max/markers/Wm82.gnm2.mrk.Li_Zhao_2019/
Description: Soybean is globally cultivated primarily for its protein and oil. The protein and oil contents of the seeds are quantitatively inherited traits determined by the interaction of numerous genes. In order to gain a better understanding of the molecular foundation of soybean protein and oil content for the marker-assisted selection (MAS) of high quality traits, a population of 185 soybean germplasms was evaluated to identify the quantitative trait loci (QTLs) associated with the seed protein and oil contents. Using specific length amplified fragment sequencing (SLAF-seq) technology, a total of 12,072 single nucleotide polymorphisms (SNPs) with a minor allele frequency (MAF) ≥ 0.05 were detected across the 20 chromosomes (Chr), with a marker density of 78.7 kbp. A total of 31 SNPs located on 12 of the 20 soybean chromosomes were correlated with seed protein and oil content. Of the 31 SNPs that were associated with the two target traits, 31 beneficial alleles were identified. Two SNP markers, namely rs15774585 and rs15783346 on Chr 07, were determined to be related to seed oil content both in 2015 and 2016. Three SNP markers, rs53140888 on Chr 01, rs19485676 on Chr 13, and rs24787338 on Chr 20 were correlated with seed protein content both in 2015 and 2016. These beneficial alleles may potentially contribute towards the MAS of favorable soybean protein and oil characteristics.
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/A81356022_x_PI468916.qtl.Diers_Keim_1992/
Description: Further information provided in 10.1007/bf00226905
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/N87-984-16_x_TN93-99.qtl.Panthee_Pantalone_2006c/
Description: Further information provided in 10.1007/s10681-006-9179-3
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/JP036034_x_Ryuhou.qtl.Wang_Chen_2015/
Description: Further information provided in 10.2135/cropsci2014.04.0280
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/M82806_x_HHP.qtl.Brummer_Graef_1997/
Description: Further information provided in 10.2135/cropsci1997.0011183x003700020011x
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/Charleston_x_Dongnong.qtl.Qi_Wu_2011/
Description: Further information provided in 10.1007/s10681-011-0386-1
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/Lineage69_x_Tucunare.qtl.Leite_Pinheiro_2016/
Description: Further information provided in 10.4238/gmr.15017685
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/mixed.qtl.Qi_Wu_2011/
Description: Further information provided in 10.1007/s10681-011-0386-1
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/gwas/mixed.gwas.Cao_Li_2017/
Description: We used both a linkage and association mapping methodology to dissect the genetic basis of seed oil content of Chinese soybean cultivars in various environments in the Jiang-Huai River Valley. One recombinant inbred line (RIL) population (NJMN-RIL), with 104 lines developed from a cross between M8108 and NN1138-2, was planted in five environments to investigate phenotypic data, and a new genetic map with 2,062 specific-locus amplified fragment markers was constructed to map oil content QTLs. A derived F2 population between MN-5 (a line of NJMN-RIL) and NN1138-2 was also developed to confirm one major QTL. A soybean breeding germplasm population (279 lines) was established to perform a genome-wide association study (GWAS) using 59,845 high-quality single nucleotide polymorphism markers. In the NJMN-RIL population, 8 QTLs were found that explained a range of phenotypic variance from 6.3 to 26.3% in certain planting environments. Among them, qOil-5-1, qOil-10-1, and qOil-14-1 were detected in different environments, and qOil-5-1 was further confirmed using the secondary F2 population. Three loci located on chromosomes 5 and 20 were detected in a 2-year long GWAS, and one locus that overlapped with qOil-5-1 was found repeatedly and treated as the same locus. qOil-5-1 was further localized to a linkage disequilibrium block region of approximately 440 kb. These results will not only increase our understanding of the genetic control of seed oil content in soybean, but will also be helpful in marker-assisted selection for breeding high seed oil content soybean and gene cloning to elucidate the mechanisms of seed oil content.
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/Jindou23_x_Huibuzhi.qtl.LIANG_YU_2010/
Description: Further information provided in 10.1016/s1671-2927(09)60197-8
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/N87-984-16_x_TN93-99.qtl.Panthee_Pantalone_2005/
Description: Further information provided in 10.2135/cropsci2004.0720
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/Young_x_PI416937.qtl.Lee_Bailey_1996a/
Description: Further information provided in 10.1007/bf00224058
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/PI438489B_x_Hamilton.qtl.Masum-Akond_Ragin_2012/
Description: Further information provided in 10.5539/jas.v4n11p16
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/Zhongdou27_x_Jiunong20.qtl.Han_Teng_2015/
Description: Further information provided in 10.1111/pbr.12259
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/DongNong46_x_KenJian23.qtl.Mao_Jiang_2013/
Description: Further information provided in 10.1111/pbr.12091
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/gwas/mixed.gwas.Bandillo_Jarquin_2015/
Description: In this research, we conducted the first comprehensive analysis of population structure on the collection of 14,000 soybean accessions [Glycine max (L.) Merr. and G. soja Siebold & Zucc.] using a 50KSNP chip. Accessions originating from Japan were relatively homogenous and distinct from the Korean accessions. As a whole, both Japanese and Korean accessions diverged from the Chinese accessions. The ancestry of founders of the American accessions derived mostly from two Chinese subpopulations, which reflects the composition of the American accessions as a whole. A 12,000 accession GWAS conducted on seed protein and oil is the largest reported to date in plants and identified single nucleotide polymorphisms (SNPs) with strong signals on chromosomes 20 and 15. A chromosome 20 region previously reported to be important for protein and oil content was further narrowed and now contains only three plausible candidate genes. The haplotype effects show a strong negative relationship between oil and protein at this locus, indicating negative pleiotropic effects or multiple closely linked loci in repulsion phase linkage. The vast majority of accessions carry the haplotype allele conferring lower protein and higher oil.
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/mixed.qtl.Pathan_Vuong_2013/
Description: Further information provided in 10.2135/cropsci2012.03.0153
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/OACWallace_x_OACGlencoe.qtl.Eskandari_Cober_2013b/
Description: Further information provided in 10.1007/s00122-013-2083-z
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/SD02-4-59_x_A02-381100.qtl.Wang_Jiang_2014/
Description: Further information provided in 10.1007/s00438-014-0865-x
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/KF1_x_NN1138-2.qtl.Li_Zhao_2011/
Description: Further information provided in 10.1007/s10681-011-0524-9
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/qtl/OACWallace_x_OACGlencoe.qtl.Eskandari_Cober_2013a/
Description: Further information provided in 10.1007/s00122-012-1995-3
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/gwas/mixed.gwas.Li_Zhao_2019/
Description: A GWAS study of seed protein and oil content using a population of 185 soybean (Glycine max) accessions from China and across the northern hemisphere. Specific length amplified fragment sequencing (SLAF-seq) tecyyhnology detected 12,072 SNPs across 20 chromosomes showing a marker density of 78.7 kbp. Thirty-one SNPs, and their 31 beneficial alleles, placed on 12 of the chromosomes represented QTLs associateyd with protein and oil. In both 2015 and 2016, the SNPs rs15774585 and rs15783346 (Chr 7) were correlated with seed oil, and the SNPs rs53140888 (Chr 01), rs19485676 (Chr 13), and rs24787338 (Chr 20) with seed protein.
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/markers/Wm82.gnm2.mrk.Sonah_ODonoughue_2015/
Description: Soya bean is a major source of edible oil and protein for human consumption as well as animal feed. Understanding the genetic basis of different traits in soya bean will provide important insights for improving breeding strategies for this crop. A genome-wide association study (GWAS) was conducted to accelerate molecular breeding for the improvement of agronomic traits in soya bean. A genotyping-by-sequencing (GBS) approach was used to provide dense genome-wide marker coverage (>47 000 SNPs) for a panel of 304 short-season soya bean lines. A subset of 139 lines, representative of the diversity among these, was characterized phenotypically for eight traits under six environments (3 sites × 2 years). Marker coverage proved sufficient to ensure highly significant associations between the genes known to control simple traits (flower, hilum and pubescence colour) and flanking SNPs. Between one and eight genomic loci associated with more complex traits (maturity, plant height, seed weight, seed oil and protein) were also identified. Importantly, most of these GWAS loci were located within genomic regions identified by previously reported quantitative trait locus (QTL) for these traits. In some cases, the reported QTLs were also successfully validated by additional QTL mapping in a biparental population. This study demonstrates that integrating GBS and GWAS can be used as a powerful complementary approach to classical biparental mapping for dissecting complex traits in soya bean.
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/gwas/mixed.gwas.Sonah_ODonoughue_2015/
Description: Soya bean is a major source of edible oil and protein for human consumption as well as animal feed. Understanding the genetic basis of different traits in soya bean will provide important insights for improving breeding strategies for this crop. A genome-wide association study (GWAS) was conducted to accelerate molecular breeding for the improvement of agronomic traits in soya bean. A genotyping-by-sequencing (GBS) approach was used to provide dense genome-wide marker coverage (>47 000 SNPs) for a panel of 304 short-season soya bean lines. A subset of 139 lines, representative of the diversity among these, was characterized phenotypically for eight traits under six environments (3 sites × 2 years). Marker coverage proved sufficient to ensure highly significant associations between the genes known to control simple traits (flower, hilum and pubescence colour) and flanking SNPs. Between one and eight genomic loci associated with more complex traits (maturity, plant height, seed weight, seed oil and protein) were also identified. Importantly, most of these GWAS loci were located within genomic regions identified by previously reported quantitative trait locus (QTL) for these traits. In some cases, the reported QTLs were also successfully validated by additional QTL mapping in a biparental population. This study demonstrates that integrating GBS and GWAS can be used as a powerful complementary approach to classical biparental mapping for dissecting complex traits in soya bean.
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/markers/Wm82.gnm2.mrk.Fang_Ma_2017/
Description: To understand the genetic networks underlying phenotypic correlations, we collected 809 soybean accessions worldwide and phenotyped them for two years at three locations for 84 agronomic traits. Genome-wide association studies identified 245 significant genetic loci, among which 95 genetically interacted with other loci. We determined that 14 oil synthesis-related genes are responsible for fatty acid accumulation in soybean and function in line with an additive model. Network analyses demonstrated that 51 traits could be linked through the linkage disequilibrium of 115 associated loci and these links reflect phenotypic correlations. We revealed that 23 loci, including the known Dt1, E2, E1, Ln, Dt2, Fan, and Fap loci, as well as 16 undefined associated loci, have pleiotropic effects on different traits.
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
Data Set
URL: https://data.legumeinfo.org/Glycine/max/gwas/mixed.gwas.Fang_Ma_2017/
Description: To understand the genetic networks underlying phenotypic correlations, we collected 809 soybean accessions worldwide and phenotyped them for two years at three locations for 84 agronomic traits. Genome-wide association studies identified 245 significant genetic loci, among which 95 genetically interacted with other loci. We determined that 14 oil synthesis-related genes are responsible for fatty acid accumulation in soybean and function in line with an additive model. Network analyses demonstrated that 51 traits could be linked through the linkage disequilibrium of 115 associated loci and these links reflect phenotypic correlations. We revealed that 23 loci, including the known Dt1, E2, E1, Ln, Dt2, Fan, and Fap loci, as well as 16 undefined associated loci, have pleiotropic effects on different traits.
Licence: ODC Public Domain Dedication and Licence (PDDL)
DataSource: LIS Datastore
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