Basic Information
Gene ID
orange1.1g043209m.g.v1.1
Position
scaffold00144:116549-117811 (+)
1262bp
Gene Type
gene
Gene Description (Protein Product)
cysteine biosynthetic process from serine
Organism
Also AS AT3G04940CICLE_v10003223mg

Gene Structure

upstream:

Domain
Database EntryID E-Value Start end InterPro ID Description

Regulation&Interaction
Protein-protein interaction (PPI)
orange1.1g047635m.g.v1.1 serine acetyltransferase
orange1.1g048350m.g.v1.1 Ubiquitin exists either covalently attached to another protein; or free (unanchored). When covalently bound; it is conjugated to target proteins via an isopeptide bond either as a monomer (monoubiquitin); a polymer linked via different Lys residues of the ubiquitin (polyubiquitin chains) or a linear polymer linked via the initiator Met of the ubiquitin (linear polyubiquitin chains). Polyubiquitin chains; when attached to a target protein; have different functions depending on the Lys residue of the ubiquitin that is linked
orange1.1g046387m.g.v1.1 Ubiquitin exists either covalently attached to another protein; or free (unanchored). When covalently bound; it is conjugated to target proteins via an isopeptide bond either as a monomer (monoubiquitin); a polymer linked via different Lys residues of the ubiquitin (polyubiquitin chains) or a linear polymer linked via the initiator Met of the ubiquitin (linear polyubiquitin chains). Polyubiquitin chains; when attached to a target protein; have different functions depending on the Lys residue of the ubiquitin that is linked
Regulatory gene
orange1.1g000304m.g.v1.1 SANT SWI3; ADA2; N-CoR and TFIIIB'' DNA-binding domains
orange1.1g000392m.g.v1.1 lysine-specific demethylase
orange1.1g001099m.g.v1.1 Protein ALWAYS EARLY

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Annotation

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

Expression Profile
DataSet Number of Samples expressed(TPM>1) Mean Min Max Standard deviation(SD) Coeffcient variation(CV)


Pathway
KEGG Term Name Description
map01110 Biosynthesis of secondary metabolites -
map01110 Biosynthesis of secondary metabolites -
map01100 Metabolic pathways -
map01100 Metabolic pathways -
map00920 Sulfur metabolism -
map00920 Sulfur metabolism -
map00460 Cyanoamino acid metabolism -
map00270 Cysteine and methionine metabolism Cysteine and methionine are sulfur-containing amino acids. Cysteine is synthesized from serine through different pathways in different organism groups. In bacteria and plants, cysteine is converted from serine (via acetylserine) by transfer of hydrogen sulfide [MD:M00021]. In animals, methionine-derived homocysteine is used as sulfur source and its condensation product with serine (cystathionine) is converted to cysteine [MD:M00338]. Cysteine is metabolized to pyruvate in multiple routes. Methionine is an essential amino acid, which animals cannot synthesize. In bacteria and plants, methionine is synthesized from aspartate [MD:M00017]. S-Adenosylmethionine (SAM), synthesized from methionine and ATP, is a methyl group donor in many important transfer reactions including DNA methylation for regulation of gene expression. SAM may also be used to regenerate methionine in the methionine salvage pathway [MD:M00034].
map00270 Cysteine and methionine metabolism Cysteine and methionine are sulfur-containing amino acids. Cysteine is synthesized from serine through different pathways in different organism groups. In bacteria and plants, cysteine is converted from serine (via acetylserine) by transfer of hydrogen sulfide [MD:M00021]. In animals, methionine-derived homocysteine is used as sulfur source and its condensation product with serine (cystathionine) is converted to cysteine [MD:M00338]. Cysteine is metabolized to pyruvate in multiple routes. Methionine is an essential amino acid, which animals cannot synthesize. In bacteria and plants, methionine is synthesized from aspartate [MD:M00017]. S-Adenosylmethionine (SAM), synthesized from methionine and ATP, is a methyl group donor in many important transfer reactions including DNA methylation for regulation of gene expression. SAM may also be used to regenerate methionine in the methionine salvage pathway [MD:M00034].