Any feedback?
Please rate this page
(literature.php)
(0/150)

BRENDA support

Literature summary for 1.14.19.25 extracted from

  • Soltani Gishini, M.F.; Zebarjadi, A.; Abdoli-Nasab, M.; Jalali Javaran, M.; Kahrizi, D.; Hildebrand, D.
    Endoplasmic reticulum retention signaling and transmembrane channel proteins predicted for oilseed omega3 fatty acid desaturase 3 (FAD3) genes (2020), Funct. Integr. Genomics, 20, 433-458.
    View publication on PubMed

Cloned(Commentary)

Cloned (Comment) Organism
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Cannabis sativa
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Carthamus tinctorius
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Crambe hispanica subsp. abyssinica
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Glycine max
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Gossypium hirsutum
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Helianthus annuus
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Linum usitatissimum
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Olea europaea
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Perilla frutescens
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Ricinus communis
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Salvia hispanica
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron Vernicia fordii
gene FAD3, DNA and amino acid sequence analysis and comparisons, seed-specific FAD3 expression is controlled by cis-regulatory elements in its promoter and enhancers in the 5'UTR intron, subcloning in Escherichia coli strain DH5alpha. Cis-regulatory elements in BnFAD3 promoter, overview Brassica napus
gene FAD3, DNA and amino acid sequence analysis and comparisons, subcloning in Escherichia coli strain DH5alpha Camelina sativa

Localization

Localization Comment Organism GeneOntology No. Textmining
chloroplast the Ricinus communis enzyme is the only oilseed enzyme containing plastid targeting sequences Ricinus communis 9507
-
endoplasmic reticulum
-
Glycine max 5783
-
endoplasmic reticulum
-
Olea europaea 5783
-
endoplasmic reticulum
-
Ricinus communis 5783
-
endoplasmic reticulum
-
Gossypium hirsutum 5783
-
endoplasmic reticulum
-
Salvia hispanica 5783
-
endoplasmic reticulum
-
Vernicia fordii 5783
-
endoplasmic reticulum
-
Linum usitatissimum 5783
-
endoplasmic reticulum
-
Carthamus tinctorius 5783
-
endoplasmic reticulum
-
Helianthus annuus 5783
-
endoplasmic reticulum
-
Crambe hispanica subsp. abyssinica 5783
-
endoplasmic reticulum
-
Brassica napus 5783
-
endoplasmic reticulum
-
Camelina sativa 5783
-
extracellular the enzyme from Helianthus annuus contains a secretory pathway signal peptide Helianthus annuus
-
-
membrane the enzyme contains 3 transmembrane domains Camelina sativa 16020
-
membrane the enzyme contains 4 transmembrane domains Glycine max 16020
-
membrane the enzyme contains 4 transmembrane domains Olea europaea 16020
-
membrane the enzyme contains 1 transmembrane domain Linum usitatissimum 16020
-
membrane the enzyme contains 3 transmembrane domains Ricinus communis 16020
-
membrane the enzyme contains 3 transmembrane domains Vernicia fordii 16020
-
membrane the enzyme contains 3 transmembrane domains Gossypium hirsutum 16020
-
membrane the enzyme contains 3 transmembrane domains Salvia hispanica 16020
-
membrane the enzyme contains 3 transmembrane domains Cannabis sativa 16020
-
membrane the enzyme contains 3 transmembrane domains Perilla frutescens 16020
-
membrane the enzyme contains 3 transmembrane domains Carthamus tinctorius 16020
-
membrane the enzyme contains 1 transmembrane domain Helianthus annuus 16020
-
membrane the enzyme contains 3 transmembrane domains Crambe hispanica subsp. abyssinica 16020
-
membrane the enzyme contains 5 transmembrane domains Brassica napus 16020
-
microsome
-
Carthamus tinctorius
-
-

Metals/Ions

Metals/Ions Comment Organism Structure
Fe2+ required Brassica napus
Fe2+ required Camelina sativa
Fe2+ required Cannabis sativa
Fe2+ required Carthamus tinctorius
Fe2+ required Crambe hispanica subsp. abyssinica
Fe2+ required Glycine max
Fe2+ required Gossypium hirsutum
Fe2+ required Helianthus annuus
Fe2+ required Linum usitatissimum
Fe2+ required Olea europaea
Fe2+ required Perilla frutescens
Fe2+ required Ricinus communis
Fe2+ required Salvia hispanica
Fe2+ required Vernicia fordii

Natural Substrates/ Products (Substrates)

Natural Substrates Organism Comment (Nat. Sub.) Natural Products Comment (Nat. Pro.) Rev. Reac.
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Salvia hispanica
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Gossypium hirsutum
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Vernicia fordii
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Ricinus communis
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Linum usitatissimum
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Carthamus tinctorius
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Helianthus annuus
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Crambe hispanica subsp. abyssinica
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Brassica napus
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Camelina sativa
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Glycine max
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Olea europaea
-
alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Camelina sativa
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Glycine max
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Olea europaea
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Linum usitatissimum
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Ricinus communis
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Vernicia fordii
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Gossypium hirsutum
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Salvia hispanica
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Cannabis sativa
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Perilla frutescens
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Carthamus tinctorius
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Helianthus annuus
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Crambe hispanica subsp. abyssinica
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+ Brassica napus
-
alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?

Organism

Organism UniProt Comment Textmining
Brassica napus A0A481P855
-
-
Camelina sativa A0A346QRU6
-
-
Cannabis sativa A0A088MER7
-
-
Carthamus tinctorius I6MCN8
-
-
Crambe hispanica subsp. abyssinica A0A125R3R5
-
-
Glycine max P48625
-
-
Gossypium hirsutum A0A075T3M7
-
-
Helianthus annuus I3QMS2
-
-
Linum usitatissimum Q3SAG0
-
-
Olea europaea Q0PMN6
-
-
Perilla frutescens Q9ZPP7
-
-
Ricinus communis B9SI38
-
-
Salvia hispanica A0A1Z1EC53
-
-
Vernicia fordii Q9ZTP7
-
-

Source Tissue

Source Tissue Comment Organism Textmining
seed
-
Camelina sativa
-
seed
-
Glycine max
-
seed
-
Olea europaea
-
seed
-
Linum usitatissimum
-
seed
-
Ricinus communis
-
seed
-
Vernicia fordii
-
seed
-
Gossypium hirsutum
-
seed
-
Salvia hispanica
-
seed
-
Cannabis sativa
-
seed
-
Perilla frutescens
-
seed
-
Carthamus tinctorius
-
seed
-
Helianthus annuus
-
seed
-
Crambe hispanica subsp. abyssinica
-
seed
-
Brassica napus
-

Substrates and Products (Substrate)

Substrates Comment Substrates Organism Products Comment (Products) Rev. Reac.
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Salvia hispanica alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Gossypium hirsutum alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Vernicia fordii alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Ricinus communis alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Linum usitatissimum alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Carthamus tinctorius alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Helianthus annuus alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Crambe hispanica subsp. abyssinica alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Brassica napus alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Camelina sativa alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Glycine max alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Olea europaea alpha-linolenoyl-[glycerolipid] + 2 ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Camelina sativa alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Glycine max alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Olea europaea alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Linum usitatissimum alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Ricinus communis alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Vernicia fordii alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Gossypium hirsutum alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Salvia hispanica alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Cannabis sativa alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Perilla frutescens alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Carthamus tinctorius alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Helianthus annuus alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Crambe hispanica subsp. abyssinica alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?
linoleoyl-[glycerolipid] + 2 ferrocytochrome b5 + O2 + 2 H+
-
Brassica napus alpha-linolenoyl-[glycerolipid] + ferricytochrome b5 + 2 H2O
-
?

Synonyms

Synonyms Comment Organism
DELTA 15 desaturase UniProt Cannabis sativa
delta-15 desaturase
-
Camelina sativa
delta-15 desaturase
-
Glycine max
delta-15 desaturase
-
Olea europaea
delta-15 desaturase
-
Linum usitatissimum
delta-15 desaturase
-
Ricinus communis
delta-15 desaturase
-
Vernicia fordii
delta-15 desaturase
-
Gossypium hirsutum
delta-15 desaturase
-
Salvia hispanica
delta-15 desaturase
-
Cannabis sativa
delta-15 desaturase
-
Perilla frutescens
delta-15 desaturase
-
Carthamus tinctorius
delta-15 desaturase
-
Helianthus annuus
delta-15 desaturase
-
Crambe hispanica subsp. abyssinica
delta-15 desaturase
-
Brassica napus
delta-15 fatty acid desaturase 3
-
Gossypium hirsutum
FAD3
-
Camelina sativa
FAD3
-
Glycine max
FAD3
-
Olea europaea
FAD3
-
Linum usitatissimum
FAD3
-
Ricinus communis
FAD3
-
Vernicia fordii
FAD3
-
Gossypium hirsutum
FAD3
-
Salvia hispanica
FAD3
-
Cannabis sativa
FAD3
-
Perilla frutescens
FAD3
-
Carthamus tinctorius
FAD3
-
Helianthus annuus
FAD3
-
Crambe hispanica subsp. abyssinica
FAD3
-
Brassica napus
FAD3-1 UniProt Gossypium hirsutum
FAD3-1A UniProt Gossypium hirsutum
fatty acid desaturase 3 isoform 1 UniProt Salvia hispanica
omega3 desaturase
-
Salvia hispanica
omega3 desaturase
-
Gossypium hirsutum
omega3 desaturase
-
Vernicia fordii
omega3 desaturase
-
Ricinus communis
omega3 desaturase
-
Linum usitatissimum
omega3 desaturase
-
Carthamus tinctorius
omega3 desaturase
-
Helianthus annuus
omega3 desaturase
-
Crambe hispanica subsp. abyssinica
omega3 desaturase
-
Brassica napus
omega3 desaturase
-
Camelina sativa
omega3 desaturase
-
Glycine max
omega3 desaturase
-
Olea europaea
omega3 fatty acid desaturase 3
-
Camelina sativa
omega3 fatty acid desaturase 3
-
Glycine max
omega3 fatty acid desaturase 3
-
Olea europaea
omega3 fatty acid desaturase 3
-
Linum usitatissimum
omega3 fatty acid desaturase 3
-
Ricinus communis
omega3 fatty acid desaturase 3
-
Vernicia fordii
omega3 fatty acid desaturase 3
-
Gossypium hirsutum
omega3 fatty acid desaturase 3
-
Salvia hispanica
omega3 fatty acid desaturase 3
-
Cannabis sativa
omega3 fatty acid desaturase 3
-
Perilla frutescens
omega3 fatty acid desaturase 3
-
Carthamus tinctorius
omega3 fatty acid desaturase 3
-
Helianthus annuus
omega3 fatty acid desaturase 3
-
Crambe hispanica subsp. abyssinica
omega3 fatty acid desaturase 3
-
Brassica napus

Cofactor

Cofactor Comment Organism Structure
cytochrome b5
-
Camelina sativa
cytochrome b5
-
Glycine max
cytochrome b5
-
Olea europaea
cytochrome b5
-
Linum usitatissimum
cytochrome b5
-
Ricinus communis
cytochrome b5
-
Vernicia fordii
cytochrome b5
-
Gossypium hirsutum
cytochrome b5
-
Salvia hispanica
cytochrome b5
-
Cannabis sativa
cytochrome b5
-
Perilla frutescens
cytochrome b5
-
Carthamus tinctorius
cytochrome b5
-
Helianthus annuus
cytochrome b5
-
Crambe hispanica subsp. abyssinica
cytochrome b5
-
Brassica napus

General Information

General Information Comment Organism
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Camelina sativa
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Glycine max
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Olea europaea
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Linum usitatissimum
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Ricinus communis
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Vernicia fordii
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Gossypium hirsutum
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Salvia hispanica
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Cannabis sativa
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Perilla frutescens
evolution phylogeny tree based on neighbor-joining tree, phylogenetic comparison of FAD3 genes in oilseeds, cluster analysis of FAD3 sequences, overview Carthamus tinctorius
evolution phylogeny tree based on neighbor-joining tree, phylogenetic comparison of FAD3 genes in oilseeds, cluster analysis of FAD3 sequences, overview Helianthus annuus
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Crambe hispanica subsp. abyssinica
evolution phylogeny tree based on neighbor-joining tree, cluster analysis of FAD3 sequences, phylogenetic comparison of FAD3 genes in oilseeds, overview Brassica napus
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Salvia hispanica
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Gossypium hirsutum
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Vernicia fordii
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Ricinus communis
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Linum usitatissimum
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Carthamus tinctorius
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Helianthus annuus
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Crambe hispanica subsp. abyssinica
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Brassica napus
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Camelina sativa
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Glycine max
metabolism the enzyme is a transmembrane protein that can convert omega6 to omega3 fatty acids and may simultaneously act as a potassium ion channel in the endoplasmic reticulum Olea europaea
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. Secondary structure prediction and N/C terminus signal prediction, overview Camelina sativa
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. Secondary structure prediction and N/C terminus signal prediction, overview Glycine max
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. Secondary structure prediction and N/C terminus signal prediction, overview Olea europaea
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. Secondary structure prediction and N/C terminus signal prediction, overview Linum usitatissimum
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. The Ricinus communis enzyme is the only oilseed enzyme containing plastid targeting sequences Ricinus communis
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. Secondary structure prediction and N/C terminus signal prediction, overview Vernicia fordii
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQSecondary structure prediction and N/C terminus signal prediction, overview Gossypium hirsutum
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQSecondary structure prediction and N/C terminus signal prediction, overview Salvia hispanica
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. Secondary structure prediction and N/C terminus signal prediction, overview Cannabis sativa
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. Secondary structure prediction and N/C terminus signal prediction, overview Perilla frutescens
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. Secondary structure prediction and N/C terminus signal prediction, overview Carthamus tinctorius
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. The enzyme from Helianthus annuus contains a secretory pathway signal peptide. Secondary structure prediction and N/C terminus signal prediction, overview Helianthus annuus
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. Secondary structure prediction and N/C terminus signal prediction, overview Crambe hispanica subsp. abyssinica
additional information three-dimensional modeling Brassica napus
additional information three conserved motifs of histidine boxes exist in the membrane bound of delta-15 desaturase, both in microsome and plastid: GHDCGHGSFS, XWRXSHRTHHXNXG, and HVXHHXFXQ. Secondary structure prediction and N/C terminus signal prediction, overview Brassica napus