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MGI:Th

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Contents

Species (Taxon ID) Mus musculus (house mouse) (taxon:10090)
Gene Name(s) Th
Protein Name(s) tyrosine hydroxylase,
External Links
MGI MGI:98735

Annotations

Qualifier GO ID GO term name Reference Evidence Code with/from Aspect Notes Status
GO:0001666

response to hypoxia

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

P

From MGI

GO:0001666

response to hypoxia

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

P

From MGI

GO:0001963

synaptic transmission, dopaminergic

MGI:MGI:2652924
PMID:12604788[1]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1928960

P

From MGI

GO:0001963

synaptic transmission, dopaminergic

MGI:MGI:3052583
PMID:15317940[2]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1928960

P

From MGI

GO:0004497

monooxygenase activity

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

F

From MGI

GO:0004511

tyrosine 3-monooxygenase activity

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

F

From MGI

GO:0004511

tyrosine 3-monooxygenase activity

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

F

From MGI

GO:0004511

tyrosine 3-monooxygenase activity

MGI:MGI:77787
PMID:7592982[3]

TAS: Traceable Author Statement

F

From MGI

GO:0005506

iron ion binding

MGI:MGI:2152098

IEA: Inferred from Electronic Annotation

InterPro:IPR001273
InterPro:IPR018301

F

From MGI

GO:0005634

nucleus

MGI:MGI:3531318
PMID:15643613[4]

IDA: Inferred from Direct Assay

C

From MGI

GO:0005737

cytoplasm

MGI:MGI:1352916
PMID:10707987[5]

IDA: Inferred from Direct Assay

C

From MGI

GO:0005737

cytoplasm

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

C

From MGI

GO:0005737

cytoplasm

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

C

From MGI

GO:0005739

mitochondrion

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

C

From MGI

GO:0005790

smooth endoplasmic reticulum

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

C

From MGI

GO:0005829

cytosol

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

C

From MGI

GO:0006585

dopamine biosynthetic process from tyrosine

MGI:MGI:1335713
PMID:10212311[6]

TAS: Traceable Author Statement

P

From MGI

GO:0006585

dopamine biosynthetic process from tyrosine

MGI:MGI:2386819
PMID:9520487[7]

IDA: Inferred from Direct Assay

P

From MGI

GO:0006585

dopamine biosynthetic process from tyrosine

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

P

From MGI

GO:0006585

dopamine biosynthetic process from tyrosine

MGI:MGI:72094
PMID:7715703[8]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1860450

P

From MGI

GO:0006585

dopamine biosynthetic process from tyrosine

MGI:MGI:77787
PMID:7592982[3]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1860450

P

From MGI

GO:0007507

heart development

MGI:MGI:1335713
PMID:10212311[6]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1860480

P

From MGI

GO:0007507

heart development

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

P

From MGI

GO:0007507

heart development

MGI:MGI:72094
PMID:7715703[8]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1860450

P

From MGI

GO:0007601

visual perception

MGI:MGI:3617102
PMID:16445854[9]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0007612

learning

MGI:MGI:3027662
PMID:14684249[10]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1928960

P

From MGI

GO:0007613

memory

MGI:MGI:3027662
PMID:14684249[10]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1928960

P

From MGI

GO:0007617

mating behavior

MGI:MGI:1314754
PMID:9829800[11]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1928960

P

From MGI

GO:0007626

locomotory behavior

MGI:MGI:2136522
PMID:11430814[12]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1928960

P

From MGI

GO:0007626

locomotory behavior

MGI:MGI:2450064
PMID:12538862[13]

IGI: Inferred from Genetic Interaction

MGI:MGI:87934

P

From MGI

GO:0007626

locomotory behavior

MGI:MGI:3027662
PMID:14684249[10]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1928960

P

From MGI

GO:0008016

regulation of heart contraction

MGI:MGI:72094
PMID:7715703[8]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1860450

P

From MGI

GO:0008016

regulation of heart contraction

MGI:MGI:77787
PMID:7592982[3]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1860453

P

From MGI

GO:0008021

synaptic vesicle

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

C

From MGI

GO:0008198

ferrous iron binding

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

F

From MGI

GO:0008199

ferric iron binding

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

F

From MGI

GO:0009072

aromatic amino acid family metabolic process

MGI:MGI:2152098

IEA: Inferred from Electronic Annotation

InterPro:IPR001273
InterPro:IPR018301

P

From MGI

GO:0009887

organ morphogenesis

MGI:MGI:72094
PMID:7715703[8]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1860450

P

From MGI

GO:0009898

internal side of plasma membrane

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

C

From MGI

GO:0015842

synaptic vesicle amine transport

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

P

From MGI

GO:0016491

oxidoreductase activity

MGI:MGI:1354194

IEA: Inferred from Electronic Annotation

UniProtKB-KW:KW-0560

F

From MGI

GO:0016597

amino acid binding

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

F

From MGI

GO:0016714

oxidoreductase activity, acting on paired donors, with incorporation or reduction of molecular oxygen, reduced pteridine as one donor, and incorporation of one atom of oxygen

MGI:MGI:2152098

IEA: Inferred from Electronic Annotation

InterPro:IPR019774
InterPro:IPR019773

F

From MGI

GO:0019717

synaptosome

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

C

From MGI

GO:0019825

oxygen binding

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

F

From MGI

GO:0019904

protein domain specific binding

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

F

From MGI

GO:0030424

axon

MGI:MGI:3578029
PMID:15814794[14]

IDA: Inferred from Direct Assay

C

From MGI

GO:0030424

axon

MGI:MGI:3757895
PMID:17761882[15]

IDA: Inferred from Direct Assay

C

From MGI

GO:0030424

axon

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

C

From MGI

GO:0030425

dendrite

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

C

From MGI

GO:0030659

cytoplasmic vesicle membrane

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

C

From MGI

GO:0031410

cytoplasmic vesicle

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

C

From MGI

GO:0033162

melanosome membrane

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

C

From MGI

GO:0034617

tetrahydrobiopterin binding

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

F

From MGI

GO:0035240

dopamine binding

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

F

From MGI

GO:0042136

neurotransmitter biosynthetic process

MGI:MGI:1354194

IEA: Inferred from Electronic Annotation

UniProtKB-KW:KW-0530

P

From MGI

GO:0042416

dopamine biosynthetic process

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

P

From MGI

GO:0042418

epinephrine biosynthetic process

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

P

From MGI

GO:0042421

norepinephrine biosynthetic process

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

P

From MGI

GO:0042423

catecholamine biosynthetic process

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

P

From MGI

GO:0042462

eye photoreceptor cell development

MGI:MGI:3617102
PMID:16445854[9]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0042755

eating behavior

MGI:MGI:1855732
PMID:10802666[16]

IGI: Inferred from Genetic Interaction

MGI:MGI:104663

P

From MGI

GO:0042755

eating behavior

MGI:MGI:2136522
PMID:11430814[12]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1928960

P

From MGI

GO:0042755

eating behavior

MGI:MGI:2450064
PMID:12538862[13]

IGI: Inferred from Genetic Interaction

MGI:MGI:87934

P

From MGI

GO:0042755

eating behavior

MGI:MGI:3054588
PMID:15374756[17]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1928960

P

From MGI

GO:0043005

neuron projection

MGI:MGI:3604278
PMID:12074840[18]

IDA: Inferred from Direct Assay

C

From MGI

GO:0043005

neuron projection

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

C

From MGI

GO:0043025

neuronal cell body

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

C

From MGI

GO:0043195

terminal button

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

C

From MGI

GO:0043204

perikaryon

MGI:MGI:1339386
PMID:10350535[19]

IDA: Inferred from Direct Assay

C

From MGI

GO:0043204

perikaryon

MGI:MGI:4417868

ISO: Inferred from Sequence Orthology

UniProtKB:P04177

C

From MGI

GO:0045471

response to ethanol

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:P07101

P

From MGI

GO:0046872

metal ion binding

MGI:MGI:1354194

IEA: Inferred from Electronic Annotation

UniProtKB-KW:KW-0479

F

From MGI

GO:0048596

embryonic camera-type eye morphogenesis

MGI:MGI:3617102
PMID:16445854[9]

IMP: Inferred from Mutant Phenotype

P

From MGI


Notes

References

See Help:References for how to manage references in GONUTS.
  1. Paladini CA et al. (2003) Dopamine controls the firing pattern of dopamine neurons via a network feedback mechanism. Proc Natl Acad Sci U S A 100: 2866-71 PubMed GONUTS page
  2. Robinson S et al. (2004) Firing properties of dopamine neurons in freely moving dopamine-deficient mice: effects of dopamine receptor activation and anesthesia. Proc Natl Acad Sci U S A 101: 13329-34 PubMed GONUTS page
  3. 3.0 3.1 3.2 Kobayashi K et al. (1995) Targeted disruption of the tyrosine hydroxylase locus results in severe catecholamine depletion and perinatal lethality in mice. J Biol Chem 270: 27235-43 PubMed GONUTS page
  4. Jiang Z et al. (2005) Toward the evaluation of function in genetic variability: characterizing human SNP frequencies and establishing BAC-transgenic mice carrying the human CYP1A1_CYP1A2 locus. Hum Mutat 25: 196-206 PubMed GONUTS page
  5. Abeliovich A et al. (2000) Mice lacking alpha-synuclein display functional deficits in the nigrostriatal dopamine system. Neuron 25: 239-52 PubMed GONUTS page
  6. 6.0 6.1 Rios M et al. (1999) Catecholamine synthesis is mediated by tyrosinase in the absence of tyrosine hydroxylase. J Neurosci 19: 3519-26 PubMed GONUTS page
  7. Jones SR et al. (1998) Profound neuronal plasticity in response to inactivation of the dopamine transporter. Proc Natl Acad Sci U S A 95: 4029-34 PubMed GONUTS page
  8. 8.0 8.1 8.2 8.3 Zhou QY et al. (1995) Targeted disruption of the tyrosine hydroxylase gene reveals that catecholamines are required for mouse fetal development. Nature 374: 640-3 PubMed GONUTS page
  9. 9.0 9.1 9.2 Lavado A et al. (2006) Ectopic expression of tyrosine hydroxylase in the pigmented epithelium rescues the retinal abnormalities and visual function common in albinos in the absence of melanin. J Neurochem 96: 1201-11 PubMed GONUTS page
  10. 10.0 10.1 10.2 Denenberg VH et al. (2004) The role of dopamine in learning, memory, and performance of a water escape task. Behav Brain Res 148: 73-8 PubMed GONUTS page
  11. Szczypka MS et al. (1998) Dopamine-stimulated sexual behavior is testosterone dependent in mice. Behav Neurosci 112: 1229-35 PubMed GONUTS page
  12. 12.0 12.1 Szczypka MS et al. (2001) Dopamine production in the caudate putamen restores feeding in dopamine-deficient mice. Neuron 30: 819-28 PubMed GONUTS page
  13. 13.0 13.1 Kim DS & Palmiter RD (2003) Adenosine receptor blockade reverses hypophagia and enhances locomotor activity of dopamine-deficient mice. Proc Natl Acad Sci U S A 100: 1346-51 PubMed GONUTS page
  14. Suto F et al. (2005) Plexin-a4 mediates axon-repulsive activities of both secreted and transmembrane semaphorins and plays roles in nerve fiber guidance. J Neurosci 25: 3628-37 PubMed GONUTS page
  15. Kim J et al. (2007) A MicroRNA feedback circuit in midbrain dopamine neurons. Science 317: 1220-4 PubMed GONUTS page
  16. Szczypka MS et al. (2000) Dopamine is required for hyperphagia in Lep(ob/ob) mice. Nat Genet 25: 102-4 PubMed GONUTS page
  17. Hnasko TS et al. (2004) A role for dopamine in feeding responses produced by orexigenic agents. Brain Res 1023: 309-18 PubMed GONUTS page
  18. Fukami S et al. (2002) Abeta-degrading endopeptidase, neprilysin, in mouse brain: synaptic and axonal localization inversely correlating with Abeta pathology. Neurosci Res 43: 39-56 PubMed GONUTS page
  19. Sawada K et al. (1999) Abnormal expression of tyrosine hydroxylase immunoreactivity in cerebellar cortex of ataxic mutant mice. Brain Res 829: 107-12 PubMed GONUTS page
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