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Transcriptional Profile of Soybean Seeds with Contrasting Seed Coat Color
by
Molinari, Mayla D. C.
, Mertz-Henning, Liliane M.
, Marin, Silvana R. R.
, Koltun, Alessandra
, Kafer, João M.
, Nepomuceno, Alexandre L.
, Henning, Fernando A.
, Marques, Viviani V.
in
Agricultural commodities
/ Amino acids
/ Analysis
/ Biosynthesis
/ brassinosteroids
/ Clothing and dress
/ cold
/ Cold storage
/ color
/ Color of plants
/ computer simulation
/ Cultivars
/ Disease
/ Enzymes
/ ethylene
/ Genes
/ Genetic aspects
/ Genetic research
/ Genetic transcription
/ Glycine max
/ Kinases
/ Lignin
/ Lipids
/ longevity
/ mechanical damage
/ Metabolism
/ Moisture effects
/ Moisture resistance
/ Protein sources
/ Proteins
/ quantitative polymerase chain reaction
/ RNA
/ RNA-Seq
/ seed coat
/ Seed coats
/ seed quality
/ Seeds
/ sequence analysis
/ Soybean
/ soybean storage
/ Soybeans
/ Sulfur
/ sulfur amino acids
/ transcription (genetics)
/ transcriptome
/ Transcriptomes
/ vegetable protein
2023
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Transcriptional Profile of Soybean Seeds with Contrasting Seed Coat Color
by
Molinari, Mayla D. C.
, Mertz-Henning, Liliane M.
, Marin, Silvana R. R.
, Koltun, Alessandra
, Kafer, João M.
, Nepomuceno, Alexandre L.
, Henning, Fernando A.
, Marques, Viviani V.
in
Agricultural commodities
/ Amino acids
/ Analysis
/ Biosynthesis
/ brassinosteroids
/ Clothing and dress
/ cold
/ Cold storage
/ color
/ Color of plants
/ computer simulation
/ Cultivars
/ Disease
/ Enzymes
/ ethylene
/ Genes
/ Genetic aspects
/ Genetic research
/ Genetic transcription
/ Glycine max
/ Kinases
/ Lignin
/ Lipids
/ longevity
/ mechanical damage
/ Metabolism
/ Moisture effects
/ Moisture resistance
/ Protein sources
/ Proteins
/ quantitative polymerase chain reaction
/ RNA
/ RNA-Seq
/ seed coat
/ Seed coats
/ seed quality
/ Seeds
/ sequence analysis
/ Soybean
/ soybean storage
/ Soybeans
/ Sulfur
/ sulfur amino acids
/ transcription (genetics)
/ transcriptome
/ Transcriptomes
/ vegetable protein
2023
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Transcriptional Profile of Soybean Seeds with Contrasting Seed Coat Color
by
Molinari, Mayla D. C.
, Mertz-Henning, Liliane M.
, Marin, Silvana R. R.
, Koltun, Alessandra
, Kafer, João M.
, Nepomuceno, Alexandre L.
, Henning, Fernando A.
, Marques, Viviani V.
in
Agricultural commodities
/ Amino acids
/ Analysis
/ Biosynthesis
/ brassinosteroids
/ Clothing and dress
/ cold
/ Cold storage
/ color
/ Color of plants
/ computer simulation
/ Cultivars
/ Disease
/ Enzymes
/ ethylene
/ Genes
/ Genetic aspects
/ Genetic research
/ Genetic transcription
/ Glycine max
/ Kinases
/ Lignin
/ Lipids
/ longevity
/ mechanical damage
/ Metabolism
/ Moisture effects
/ Moisture resistance
/ Protein sources
/ Proteins
/ quantitative polymerase chain reaction
/ RNA
/ RNA-Seq
/ seed coat
/ Seed coats
/ seed quality
/ Seeds
/ sequence analysis
/ Soybean
/ soybean storage
/ Soybeans
/ Sulfur
/ sulfur amino acids
/ transcription (genetics)
/ transcriptome
/ Transcriptomes
/ vegetable protein
2023
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Transcriptional Profile of Soybean Seeds with Contrasting Seed Coat Color
Journal Article
Transcriptional Profile of Soybean Seeds with Contrasting Seed Coat Color
2023
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Overview
Soybean is the primary source of vegetable protein and is used for various purposes, mainly to feed animals. This crop can have diverse seed coat colors, varying from yellow, black, brown, and green to bicolor. Black seed coat cultivars have already been assigned as favorable for both seed and grain production. Thus, this work aimed to identify genes associated with soybean seed quality by comparing the transcriptomes of soybean seeds with contrasting seed coat colors. The results from RNA-seq analyses were validated with real-time PCR using the cultivar BRS 715A (black seed coat) and the cultivars BRS 413 RR and DM 6563 IPRO (yellow seed coat). We found 318 genes differentially expressed in all cultivars (freshly harvested seeds and seeds stored in cold chamber). From the in silico analysis of the transcriptomes, the following genes were selected and validated with RT-qPCR: ACS1, ACSF3, CYP90A1, CYP710A1, HCT, CBL, and SAHH. These genes are genes induced in the black seed coat cultivar and are part of pathways responsible for ethylene, lipid, brassinosteroid, lignin, and sulfur amino acid biosynthesis. The BRSMG 715A gene has almost 4times more lignin than the yellow seed coat cultivars. These attributes are related to the BRSMG 715A cultivar’s higher seed quality, which translates to more longevity and resistance to moisture and mechanical damage. Future silencing studies may evaluate the knockout of these genes to better understand the biology of soybean seeds with black seed coat.
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