Basic Information
Gene ID
Atru.chr9.2265.g
Position
chr9:37607375-37609513 (-)
2138bp
Gene Type
gene
Gene Description (Protein Product)
cytochrome P450
Organism
Also AS AT2G40890

Gene Structure

upstream:

Domain
Database EntryID E-Value Start end InterPro ID Description

Regulation&Interaction
Protein-protein interaction (PPI)
Atru.chr9.983.g Pectate lyase
Atru.chr9.2309.g Pectate lyase
Atru.chr9.2265.g cytochrome P450

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Annotation

Orthologous Group
Orthologous ID Species Number All hits in PereRegDB Hits of this species Orthologous Detail


Pathway
GO Term Description GO Category
GO:0003674 molecular_function MF
GO:0003824 catalytic activity MF
GO:0004497 monooxygenase activity MF
GO:0005575 cellular_component CC
GO:0006576 biogenic amine metabolic process BP
GO:0006595 polyamine metabolic process BP
GO:0006725 cellular aromatic compound metabolic process BP
GO:0006807 nitrogen compound metabolic process BP
GO:0008150 biological_process BP
GO:0008152 metabolic process BP
GO:0008216 spermidine metabolic process BP
GO:0009058 biosynthetic process BP
GO:0009308 amine metabolic process BP
GO:0009698 phenylpropanoid metabolic process BP
GO:0009699 phenylpropanoid biosynthetic process BP
GO:0009808 lignin metabolic process BP
GO:0009809 lignin biosynthetic process BP
GO:0009987 cellular process BP
GO:0016020 membrane CC
GO:0016491 oxidoreductase activity MF
GO:0016705 oxidoreductase activity, acting on paired donors, with incorporation or reduction of molecular oxygen MF
GO:0016709 oxidoreductase activity, acting on paired donors, with incorporation or reduction of molecular oxygen, NAD(P)H as one donor, and incorporation of one atom of oxygen MF
GO:0019438 aromatic compound biosynthetic process BP
GO:0019748 secondary metabolic process BP
GO:0034641 cellular nitrogen compound metabolic process BP
GO:0044106 amine metabolic process BP
GO:0044237 cellular metabolic process BP
GO:0044249 cellular biosynthetic process BP
GO:0044550 secondary metabolite biosynthetic process BP
GO:0055114 obsolete oxidation-reduction process BP
GO:0071704 organic substance metabolic process BP
GO:0072532 tri-(feruloyl or hydroxyferuloyl) spermidine meta-hydroxylase activity MF
GO:0072533 tri-(coumaroyl or caffeoyl) spermidine meta-hydroxylase activity MF
GO:0072547 tricoumaroylspermidine meta-hydroxylase activity MF
GO:0072548 dicoumaroyl monocaffeoyl spermidine meta-hydroxylase activity MF
GO:0072549 monocoumaroyl dicaffeoyl spermidine meta-hydroxylase activity MF
GO:0072550 triferuloylspermidine meta-hydroxylase activity MF
GO:0072551 diferuloyl mono-(hydroxyferuloyl) spermidine meta-hydroxylase activity MF
GO:0072552 monoferuloyl di-(hydroxyferuloyl) spermidine meta-hydroxylase activity MF
GO:0097164 ammonium ion metabolic process BP
GO:1901360 organic cyclic compound metabolic process BP
GO:1901362 organic cyclic compound biosynthetic process BP
GO:1901564 organonitrogen compound metabolic process BP
GO:1901576 organic substance biosynthetic process BP
KEGG Term Name Description
map01110 Biosynthesis of secondary metabolites -
map01110 Biosynthesis of secondary metabolites -
map01100 Metabolic pathways -
map00945 Stilbenoid, diarylheptanoid and gingerol biosynthesis Stilbenoids are a group of phenolic compounds, biosynthetically interrelated through their common origin from a C6-C2-C6 intermediate, such as resveratol found in grapes. Stilbenoids can also exist as glycosides (e.g., piceid). Combretastatins are potentially useful stilbenoid natural products with known antitumor activity. Diarylheptanoid is a compound group having phenyl rings at 1,7 positions of n-heptane (C6-C7-C6), such as curcumin found in the ginger family. [6]-Gingerol is a major active component of ginger and has diverse pharmacologic effects.
map00941 Flavonoid biosynthesis Flavonoids are a major class of plant secondary metabolites that serves a multitude of functions including pigments and antioxidant activity. Flavonoids are synthesized from phenylpropanoid derivatives by condensation with malonyl-CoA. For example, condensation of p-coumaroyl-CoA (C6-C3) with three malonyl-CoA (C3) molecules results in naringenin chalcone with a diphenylpropane (C6-C3-C6) unit, which is converted to naringenin with the flavone (2-phenylchromen-4-one) backbone by conjugate ring closure. These and further modifications yield a variety of structural forms including chalcones, flavanones, dihyroflavonols, and flavans, anthocyanins, flavones and flavonols, and isoflavonoids.
map00940 Phenylpropanoid biosynthesis Phenylpropanoids are a group of plant secondary metabolites derived from phenylalanine and having a wide variety of functions both as structural and signaling molecules. Phenylalanine is first converted to cinnamic acid by deamination. It is followed by hydroxylation and frequent methylation to generate coumaric acid and other acids with a phenylpropane (C6-C3) unit. Reduction of the CoA-activated carboxyl groups of these acids results in the corresponding aldehydes and alcohols. The alcohols are called monolignols, the starting compounds for biosynthesis of lignin.
map00940 Phenylpropanoid biosynthesis Phenylpropanoids are a group of plant secondary metabolites derived from phenylalanine and having a wide variety of functions both as structural and signaling molecules. Phenylalanine is first converted to cinnamic acid by deamination. It is followed by hydroxylation and frequent methylation to generate coumaric acid and other acids with a phenylpropane (C6-C3) unit. Reduction of the CoA-activated carboxyl groups of these acids results in the corresponding aldehydes and alcohols. The alcohols are called monolignols, the starting compounds for biosynthesis of lignin.