KEGG   Thalassovita mediterranea: KUV46_10570
Entry
KUV46_10570       CDS       T07443                                 
Symbol
hppD
Name
(GenBank) 4-hydroxyphenylpyruvate dioxygenase
  KO
K00457  4-hydroxyphenylpyruvate dioxygenase [EC:1.13.11.27]
Organism
tmd  Thalassovita mediterranea
Pathway
tmd00130  Ubiquinone and other terpenoid-quinone biosynthesis
tmd00350  Tyrosine metabolism
tmd00360  Phenylalanine metabolism
tmd01100  Metabolic pathways
tmd01240  Biosynthesis of cofactors
Brite
KEGG Orthology (KO) [BR:tmd00001]
 09100 Metabolism
  09105 Amino acid metabolism
   00350 Tyrosine metabolism
    KUV46_10570 (hppD)
   00360 Phenylalanine metabolism
    KUV46_10570 (hppD)
  09108 Metabolism of cofactors and vitamins
   00130 Ubiquinone and other terpenoid-quinone biosynthesis
    KUV46_10570 (hppD)
 09180 Brite Hierarchies
  09183 Protein families: signaling and cellular processes
   04147 Exosome [BR:tmd04147]
    KUV46_10570 (hppD)
Enzymes [BR:tmd01000]
 1. Oxidoreductases
  1.13  Acting on single donors with incorporation of molecular oxygen (oxygenases)
   1.13.11  With incorporation of two atoms of oxygen
    1.13.11.27  4-hydroxyphenylpyruvate dioxygenase
     KUV46_10570 (hppD)
Exosome [BR:tmd04147]
 Exosomal proteins
  Exosomal proteins of other body fluids (saliva and urine)
   KUV46_10570 (hppD)
SSDB
Motif
Pfam: Glyoxalase_5 Glyoxalase Glyoxalase_4
Other DBs
NCBI-ProteinID: QYI99788
LinkDB
Position
2121960..2123066
AA seq 368 aa
MADLFENPAGLDGFEFIEFSAPEKGQLEPVFEVMGFTKVAKHRSKDVELWRQGGINLITN
YEKGSPAYYFAKEHGPSACGMGFRVRNAKAAYDHLLANDAEPCDVPTGPMELKLPAIRGI
GHSLIYLIDRYDDGEGGLSIYDIDFEYLPGVEKFPEGCGFKLVDHLTHNVYKGRMKYWAD
FYEKLFNFQEIRYFDIKGEYTGLTSQALTAPDGKIRIPLNEEAEGGKGQIEEFLREYNGE
GIQHIALICDDLVAAYDKLKARGVPMMTPPPDTYYEMLSERLPGHGEDENALKTRGLLLD
GTTEGGEPRLLFQIFAEPQVGPVFFEFIQRKGDYKQGFGEGNFKALFESMERDQIKRGAL
KVDQKEDA
NT seq 1107 nt   +upstreamnt  +downstreamnt
atggcagacctgtttgaaaatccagctggcctcgatggctttgaattcatcgaattttct
gcgcctgagaagggccagctcgaacccgttttcgaagtcatgggcttcaccaaagtcgcc
aagcaccgttccaaggatgttgagctgtggcgccagggtggcataaacctcatcaccaat
tacgaaaaaggctccccggcctattacttcgccaaggaacatgggccgagcgcctgtggc
atgggcttccgcgtccgtaacgcgaaagcggcctatgaccatcttctcgccaatgatgca
gagccatgcgacgtgccgaccggcccgatggagctgaagctcccggccattcgcggcatt
ggccattcgctcatctatctaatcgaccgctatgatgatggtgaaggcggtctctctatc
tatgacattgattttgaatacctgccgggcgtcgagaaatttcctgaaggctgcggcttc
aagctcgtcgatcacctgacccacaatgtctataagggccggatgaagtactgggctgac
ttctatgagaagctcttcaacttccaggaaatccgctatttcgatatcaagggcgaatat
actggcctcacctcgcaggcgctgaccgcccctgacggcaaaatccgtattccgctcaat
gaggaagccgaaggcggcaagggccagatcgaggaattcctccgcgaatacaacggtgaa
ggcatccagcacatcgcccttatctgcgatgatctcgttgccgcctatgacaagctgaaa
gcgcgcggcgtgccgatgatgacgccgccgccagacacctattacgagatgctgagcgag
cgcctgccgggccacggcgaagacgagaatgcgctgaagacgcgcggcctcctgctcgac
ggtacgaccgaaggtggcgaaccacgccttctcttccagattttcgcagagccgcaagtc
ggccctgtcttcttcgaattcatccagcgcaagggtgactacaagcagggtttcggcgaa
ggtaacttcaaggcgctgttcgaaagcatggaacgcgaccagatcaagcgcggcgcgctg
aaggtcgatcagaaggaagatgcataa

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