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Showing 1 to 20 of 25 for “"Glycine soja"”.

  1. GENETIC AND QUANTITATIVE VARIATION IN WILD SOYBEAN (GLYCINE SOJA) POPULATIONS

    <p>Glycine soja seeds collected from South Korea and Japan were studied for their genetic structure and quantitative variation. Seventy two G. soja seed accessions were examined for genetic variation by gel electrophoresis. Based on a total of 43 loci of 15 enzymes and one protein, an average of …

    unh-thes Repository record for GENETIC AND QUANTITATIVE VARIATION IN WILD SOYBEAN (GLYCINE SOJA) POPULATIONS (opens in a new tab)

  2. Evaluation of Diversity in Glycine Soja and Genetic Relationships Within the Subgenus Soja

    … the genetic control of leaflet shape in G. soja. The F 2 progenies of eight G. max x G. soja and G. soja x G. soja crosses indicate at least two new loci controlling leaflet shape in G. soja. (Abstract shortened by UMI.).

    uiuc Repository record for Evaluation of Diversity in Glycine Soja and Genetic Relationships Within the Subgenus Soja (opens in a new tab)

  3. Phytic Acid In Developing And Mature Seed Of Soybean (glycine Max (l.) Merr.) And Glycine Soja Sieb. & Zucc. (phosphorus, Zinc, Nutrition)

    Soybean {Glycine max (L.) Merr.} and G. soja Sieb. & Zucc. germplasm collections were surveyed for variation in the concentration of the seed phosphorus (P) storage compound, phytic acid. Seed of the soybean lines contained from 13.9 to 23.0 mg g('-1) phytic acid, while seed of the G. soja lines …

    uiuc Repository record for Phytic Acid In Developing And Mature Seed Of Soybean (glycine Max (l.) Merr.) And Glycine Soja Sieb. & Zucc. (phosphorus, Zinc, Nutrition) (opens in a new tab)

  4. Molecular characterization of signaling mechanisms in flowering transition in arabidopsis and association mapping of temperature response in floral development within glycine soja

    … response in flowering and maturity of Glycine Soja, the wild progenitor of cultivated soybean In the first approach Yeast Two-Hybrid assay reveals 5PTase13, an inositol polyphosphate 5-phosphatase involved in phospholipid signaling, interacts with TFL1 at a key functional residue. Both …

    uiuc Repository record for Molecular characterization of signaling mechanisms in flowering transition in arabidopsis and association mapping of temperature response in floral development within glycine soja (opens in a new tab)

  5. Towards cloning of a novel SCN resistance locus using de novo genome assembly and fosmid screening

    Glycine soja, the wild annual ancestor of soybean, has great potential to be used as a source of genetic diversity for the crop. A Glycine soja line, PI 468916, contains a resistance QTL to soybean cyst nematode (SCN) Heterodera glycines, a devastating pest of soybean. This resistance QTL has been …

    uiuc Repository record for Towards cloning of a novel SCN resistance locus using de novo genome assembly and fosmid screening (opens in a new tab)

  6. Develpment of soybean knowledge base for systems biology studies

    … MISSOURI-COLUMBIA AT AUTHOR'S REQUEST.] Soybean (Glycine max), as an important crop worldwide primarily for protein and oil, has raised great interest in both basic and applied researches. Soybean Knowledge Base (SoyKB) is a comprehensive and integrated platform for soybean translational genomics …

    missouri Repository record for Develpment of soybean knowledge base for systems biology studies (opens in a new tab)

  7. Whole genomic structural variant calling in soybean: Analysis on 481 different soybean lines

    Soybean (Glycine max) is an important crop worldwide, with utilities as protein source and rotation crop. Often, soybean variant discovery is conducted using alignment methods and largely yields short variants such as SNP(s) and short indel(s). We conducted variant discovery on 481 soybean lines …

    uiuc Repository record for Whole genomic structural variant calling in soybean: Analysis on 481 different soybean lines (opens in a new tab)

  8. Phytophthora Sojae Infecting Soybean: Pathotype Diversity, New Sources of Resistance and Interaction with the Soybean Cyst Nematode

    … root and stem rot, caused by <em>Phytophthora sojae</em> Kaufmann and Gerdemann, is an important disease of soybean (<em>Glycine max</em> L.) in South Dakota. To gain a better understanding of the importance of P. sojae in South Dakota, specifically pathotype diversity, identification of new …

    sdstate Repository record for Phytophthora Sojae Infecting Soybean: Pathotype Diversity, New Sources of Resistance and Interaction with the Soybean Cyst Nematode (opens in a new tab)

  9. Mapping and Characterization of Phytophthora sojae and Soybean Mosaic Virus Resistance in Soybean

    Phytophthora sojae, the causal organism of stem and root rot, and <i>Soybean mosaic virus</i> (SMV) cause two of the most highly destructive diseases of soybean (<i>Glycine max</i> L. Merr). <i>P. sojae</i> can be managed either through deployment of race-specific resistance or through quantitative …

    vt Repository record for Mapping and Characterization of Phytophthora sojae and Soybean Mosaic Virus Resistance in Soybean (opens in a new tab)

  10. Exploring flowering gene networks in soybean and arabidopsis through transcriptome analysis

    … LD to 1 week SD on six domesticated varieties of Glycine max; a reference variety, Williams 82, Clark and it’s four NILs that are polymorphic for E loci (E1, E2, E3, and E5) and a soybean ancestor, Glycine soja. Samplings were performed at three time points in a day: early morning (6:30), …

    uiuc Repository record for Exploring flowering gene networks in soybean and arabidopsis through transcriptome analysis (opens in a new tab)

  11. Understanding Plant Pathosystems in Wild Relatives of Cultivated Crop Plants

    … but chemical controls as well. Phytophthora sojae (P. sojae), the causal agent of Phytophthora root and stem rot disease, reduces soybean harvests worldwide. We developed an approach to screen for new R genes that recognize core effectors from P. sojae. We expect R genes identified by these …

    vt Repository record for Understanding Plant Pathosystems in Wild Relatives of Cultivated Crop Plants (opens in a new tab)

  12. AN ELECTROPHORETIC ANALYSIS OF THE GENETIC VARIATION IN THE WILD AND CULTIVATED SOYBEAN GERMPLASM

    <p>Over 400 soybean (Glycine max (L.) Merr.) cultivars and plant introductions and more than 100 wild soybean (Glycine soja Sieb & Zucc.) plant introductions from a wide geographic distribution were examined by polyacrylamide, slab electrophoresis for genetic variation in 15 enzymes. Allozymes for …

    unh-thes Repository record for AN ELECTROPHORETIC ANALYSIS OF THE GENETIC VARIATION IN THE WILD AND CULTIVATED SOYBEAN GERMPLASM (opens in a new tab)

  13. Molecular Mapping Of A Soybean Mosaic Virus (SMV) Resistance Gene In Soybean (Glycine Max)

    … A mapping population constructed by crossing Glycine max x Glycine soja employed in determining the location AFLP-derived RFLP clone on soybean linkage map. This population has densely mapped molecular marker data that enabled determining the location of AFLP-derived RFLP clone ACR1 on soybean …

    vt Repository record for Molecular Mapping Of A Soybean Mosaic Virus (SMV) Resistance Gene In Soybean (Glycine Max) (opens in a new tab)

  14. Genomic changes underlying disease resistance and high protein QTL

    … Nematode (SCN) is the most devastating pest of Glycine max (soybean). Currently control of SCN is through planting of non-host crops and the use of disease-resistant soybean germplasm containing resistance genes Rhg1 and Rhg4. Over-reliance on these sources necessitates identifying and …

    uiuc Repository record for Genomic changes underlying disease resistance and high protein QTL (opens in a new tab)

  15. Microsatellite polymorphism, orthologous evolution and molecular marker analysis of seed quality traits in soybean (Glycine max L. Merr.)

    … five microsatellites in 94 accessions of wild (Glycine soja) and cultivated soybean (G. max). F₂ segregation analysis indicated that all five of the microsatellites were independently inherited and four loci were located in four independent linkage groups. The number of alleles per …

    vt Repository record for Microsatellite polymorphism, orthologous evolution and molecular marker analysis of seed quality traits in soybean (Glycine max L. Merr.) (opens in a new tab)

  16. Inheritance of the Gene(s) Controlling Leaflet Shape in Soybean

    Many soybean [Glycine max (L.) Merrill] cultivars have narrow leaflet shape but it is not known if all of these lines derive this trait from the ln gene or another locus. This project was conducted to determine the inheritance of the narrow leaflet trait in several soybean genotypes and wild …

    vt Repository record for Inheritance of the Gene(s) Controlling Leaflet Shape in Soybean (opens in a new tab)

  17. Improvement of soybean breeding via high throughput phenotyping and disease resistance

    … multispectral images for large scale soybean [Glycine max (L.) Merr.] breeding trials. We used a supervised machine learning model (Random Forest) to measure crop geometric features and obtained high correlations with final yield in breeding populations (r = 0.82). The traditional yield …

    uiuc Repository record for Improvement of soybean breeding via high throughput phenotyping and disease resistance (opens in a new tab)

  18. Investigation of Putative Genetic Factors Associated with Soybean [Glycine Max (L.) Merr.] Seed Quality Traits

    … map for a F8 RIL population developed from the Glycine max line V71-370 and the Glycine soja introduction PI40712. Analysis across all 20 soybean MLG identified 25 QTL for these traits on MLG A1, A2, C2, D1b, D2, F, G, H, I, L, M, O. Nine of these QTL were supported across multiple environments, …

    vt Repository record for Investigation of Putative Genetic Factors Associated with Soybean [Glycine Max (L.) Merr.] Seed Quality Traits (opens in a new tab)

  19. QTL mapping of Phytophthora root rot resistance and aphid resistance in soybean

    Soybean [Glycine max (L.) Merr.] is one of the most important crops worldwide. As the largest soybean producer, the United States produces $40.2 billion US dollar worth soybeans in 2011. Biotic stresses such as soybean cyst nematode (SCN), Phytophthora root rot (PRR), sudden death syndromes (SDS) …

    msu Repository record for QTL mapping of Phytophthora root rot resistance and aphid resistance in soybean (opens in a new tab)

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