Vibrio fluvialis: AL536_13125
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Entry
AL536_13125 CDS
T04379
Symbol
hppD
Name
(GenBank) 4-hydroxyphenylpyruvate dioxygenase
KO
K00457
4-hydroxyphenylpyruvate dioxygenase [EC:
1.13.11.27
]
Organism
vfl
Vibrio fluvialis
Pathway
vfl00130
Ubiquinone and other terpenoid-quinone biosynthesis
vfl00350
Tyrosine metabolism
vfl00360
Phenylalanine metabolism
vfl01100
Metabolic pathways
vfl01240
Biosynthesis of cofactors
Module
vfl_M00044
Tyrosine degradation, tyrosine => homogentisate
Brite
KEGG Orthology (KO) [BR:
vfl00001
]
09100 Metabolism
09105 Amino acid metabolism
00350 Tyrosine metabolism
AL536_13125 (hppD)
00360 Phenylalanine metabolism
AL536_13125 (hppD)
09108 Metabolism of cofactors and vitamins
00130 Ubiquinone and other terpenoid-quinone biosynthesis
AL536_13125 (hppD)
09180 Brite Hierarchies
09183 Protein families: signaling and cellular processes
04147 Exosome [BR:
vfl04147
]
AL536_13125 (hppD)
Enzymes [BR:
vfl01000
]
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
AL536_13125 (hppD)
Exosome [BR:
vfl04147
]
Exosomal proteins
Exosomal proteins of other body fluids (saliva and urine)
AL536_13125 (hppD)
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Motif
Pfam:
Glyoxalase_5
Glyoxalase
Glyoxalase_4
Glyoxalase_3
Motif
Other DBs
NCBI-ProteinID:
AMF94416
UniProt:
A0AAX2LNC9
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All DBs
Position
2:1183405..1184478
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AA seq
357 aa
AA seq
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MSANINPLGTDGFEFVEYTAASTKGIEDLKQLFSSLGFAEIAKHRSKEAWLYRQGDINFI
VNAQPRSQAEAFAKVHGPSVCGMAFRVKDAASALKHALNNGAEEYKTEIGPMELSIPAIY
GIGESLLYFVDRYGDRSIYDVDFHFYDDAAARMQQAQAGLMEIDHLTHNVKQGHMDTWSG
FYERIGNFREIRYFDIEGKLTGLVSRAMTAPCGKIRIPINESSDDKSQIEEFIREYNGEG
IQHIALSTDDIYQTVRTLRERGMDFMPTPDTYYEKVDARVEGHSENVDELKALRILIDGA
PMKDGILLQIFTQTVIGPVFFEIIQRKGNEGFGEGNFKALFESIEEDQIRRGVLSDA
NT seq
1074 nt
NT seq
+upstream
nt +downstream
nt
atgagcgccaacatcaacccactgggcacagatggctttgaatttgtcgaatatacggca
gcaagtaccaaaggtattgaagacttaaaacagctgttttcctcgctagggtttgccgag
attgccaaacatcgctctaaagaagcgtggttgtatcgtcagggtgacatcaactttatc
gtcaatgcccagccgcgcagccaggctgaagcctttgccaaagtccatggcccatccgta
tgcggcatggcttttcgtgtcaaagatgccgcgtctgcgcttaaacatgcgttaaacaac
ggcgcagaagagtacaaaaccgaaatcggcccgatggaactcagtattccggcgatttac
ggcattggcgaaagcttgttgtactttgtcgaccgctacggcgatcgcagcatttacgat
gtcgatttccatttctatgacgatgccgccgcgcgcatgcaacaagcgcaagctggcctg
atggaaattgaccacctgacgcacaacgtcaaacagggccacatggatacttggtctggc
ttttatgagcgcatcggtaacttccgtgagattcgttacttcgatatcgaagggaaactc
accgggctggtaagccgtgcaatgactgcgccgtgtggcaaaatccgtattccgatcaat
gaatcctcggacgacaaatcacagattgaagagttcattcgtgaatacaacggggaaggc
attcagcacattgcactgagcaccgacgacatctaccaaaccgtgcgcacgctacgcgaa
cgtggcatggactttatgccgacaccggatacttactatgagaaagtcgatgcgcgcgtt
gaagggcatagcgagaatgtcgatgagctcaaagcgttgcgtattctgattgacggcgcg
ccgatgaaagacggcattctgctgcaaatctttacccaaaccgtgattggcccggtgttc
tttgaaatcattcaacgtaaaggcaatgaaggctttggagaaggcaacttcaaagcgctg
tttgaatcgattgaagaagatcagattcgtcgaggagtactgagcgatgcataa
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