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MGI:Tcf7l2

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Contents

Species (Taxon ID) Mus musculus (house mouse) (taxon:10090)
Gene Name(s) Tcf7l2 ( synonyms: mTcf-4B, mTcf-4E, Tcf-4, Tcf4, TCF4B, TCF4E )
Protein Name(s) transcription factor 7 like 2, T cell specific, HMG box,
External Links
MGI MGI:1202879

Annotations

Qualifier GO ID GO term name Reference Evidence Code with/from Aspect Notes Status
GO:0000122

negative regulation of transcription from RNA polymerase II promoter

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0001568

blood vessel development

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0003677

DNA binding

MGI:MGI:1354194

IEA: Inferred from Electronic Annotation

UniProtKB-KW:KW-0238

F

From MGI

GO:0003682

chromatin binding

MGI:MGI:3763856
PMID:17727834[1]

IDA: Inferred from Direct Assay

F

From MGI

GO:0003700

sequence-specific DNA binding transcription factor activity

MGI:MGI:4459044

PANTHER:PTHR10373

F

From MGI

GO:0003700

sequence-specific DNA binding transcription factor activity

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

F

From MGI

GO:0005515

protein binding

MGI:MGI:3688344
PMID:15102471[2]

IPI: Inferred from Physical Interaction

UniProtKB:P39428

F

From MGI

GO:0005515

protein binding

MGI:MGI:4359141
PMID:19503085[3]

IPI: Inferred from Physical Interaction

UniProtKB:O09106
UniProtKB:P70288

F

From MGI

GO:0005515

protein binding

MGI:MGI:5009785
PMID:20044351[4]

IPI: Inferred from Physical Interaction

UniProtKB:Q02248

F

From MGI

GO:0005634

nucleus

MGI:MGI:1276271
PMID:9697701[5]

IDA: Inferred from Direct Assay

C

From MGI

GO:0005634

nucleus

MGI:MGI:3799610
PMID:15578569[6]

IDA: Inferred from Direct Assay

C

From MGI

GO:0005634

nucleus

MGI:MGI:4412144
PMID:19718027[7]

IDA: Inferred from Direct Assay

C

From MGI

GO:0005634

nucleus

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

C

From MGI

GO:0005634

nucleus

MGI:MGI:5009785
PMID:20044351[4]

IDA: Inferred from Direct Assay

C

From MGI

GO:0005654

nucleoplasm

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

C

From MGI

GO:0005667

transcription factor complex

MGI:MGI:2668307
PMID:12861022[8]

IDA: Inferred from Direct Assay

C

From MGI

GO:0005829

cytosol

MGI:MGI:3799610
PMID:15578569[6]

IDA: Inferred from Direct Assay

C

From MGI

GO:0006351

transcription, DNA-dependent

MGI:MGI:1354194

IEA: Inferred from Electronic Annotation

UniProtKB-KW:KW-0804

P

From MGI

GO:0006355

regulation of transcription, DNA-dependent

MGI:MGI:2668307
PMID:12861022[8]

IDA: Inferred from Direct Assay

P

From MGI

GO:0006355

regulation of transcription, DNA-dependent

MGI:MGI:4459044

PANTHER:PTHR10373

P

From MGI

GO:0006357

regulation of transcription from RNA polymerase II promoter

MGI:MGI:4412432
PMID:19168596[9]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0006357

regulation of transcription from RNA polymerase II promoter

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0006916

anti-apoptosis

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0007050

cell cycle arrest

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0008013

beta-catenin binding

MGI:MGI:1196720
PMID:9488439[10]

IPI: Inferred from Physical Interaction

UniProtKB:Q02248

F

From MGI

GO:0008013

beta-catenin binding

MGI:MGI:1313068
PMID:9784592[11]

IDA: Inferred from Direct Assay

F

From MGI

GO:0008013

beta-catenin binding

MGI:MGI:2677113
PMID:12874278[12]

IPI: Inferred from Physical Interaction

UniProtKB:Q02248

F

From MGI

GO:0008013

beta-catenin binding

MGI:MGI:4359141
PMID:19503085[3]

IDA: Inferred from Direct Assay

F

From MGI

GO:0008013

beta-catenin binding

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

F

From MGI

GO:0008134

transcription factor binding

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

F

From MGI

GO:0008283

cell proliferation

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0009749

response to glucose stimulus

MGI:MGI:4412432
PMID:19168596[9]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0010909

positive regulation of heparan sulfate proteoglycan biosynthetic process

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0014003

oligodendrocyte development

MGI:MGI:4360127
PMID:19741146[13]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1926344

P

From MGI

GO:0016055

Wnt receptor signaling pathway

MGI:MGI:1196720
PMID:9488439[10]

IDA: Inferred from Direct Assay

P

From MGI

GO:0016055

Wnt receptor signaling pathway

MGI:MGI:3722225
PMID:17699607[14]

IGI: Inferred from Genetic Interaction

MGI:MGI:96770

P

From MGI

GO:0019901

protein kinase binding

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

F

From MGI

GO:0021915

neural tube development

MGI:MGI:3042541
PMID:15057272[15]

IGI: Inferred from Genetic Interaction

MGI:MGI:98507

P

From MGI

GO:0021983

pituitary gland development

MGI:MGI:3763872
PMID:17919533[16]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1926344

P

From MGI

GO:0030282

bone mineralization

MGI:MGI:3850932
PMID:19213727[17]

IGI: Inferred from Genetic Interaction

MGI:MGI:101948

P

From MGI

GO:0030514

negative regulation of BMP signaling pathway

MGI:MGI:3763872
PMID:17919533[16]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1926344

P

From MGI

GO:0030538

embryonic genitalia morphogenesis

MGI:MGI:3042541
PMID:15057272[15]

IGI: Inferred from Genetic Interaction

MGI:MGI:98507

P

From MGI

GO:0031641

regulation of myelination

MGI:MGI:4359141
PMID:19503085[3]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0032024

positive regulation of insulin secretion

MGI:MGI:4412432
PMID:19168596[9]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0032024

positive regulation of insulin secretion

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0032092

positive regulation of protein binding

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0032252

secretory granule localization

MGI:MGI:4412432
PMID:19168596[9]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0032350

regulation of hormone metabolic process

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0032993

protein-DNA complex

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

C

From MGI

GO:0035019

somatic stem cell maintenance

MGI:MGI:1276271
PMID:9697701[5]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1926344

P

From MGI

GO:0035019

somatic stem cell maintenance

MGI:MGI:1330442
PMID:10027409[18]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1926344

P

From MGI

GO:0035019

somatic stem cell maintenance

MGI:MGI:3841508
PMID:19251639[19]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1926344

P

From MGI

GO:0035019

somatic stem cell maintenance

MGI:MGI:4412144
PMID:19718027[7]

IGI: Inferred from Genetic Interaction

MGI:MGI:1202876

P

From MGI

GO:0035257

nuclear hormone receptor binding

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

F

From MGI

GO:0035411

catenin import into nucleus

MGI:MGI:1306742
PMID:9792805[20]

IDA: Inferred from Direct Assay

P

From MGI

GO:0040037

negative regulation of fibroblast growth factor receptor signaling pathway

MGI:MGI:3763872
PMID:17919533[16]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1926344

P

From MGI

GO:0042475

odontogenesis of dentin-containing tooth

MGI:MGI:3722225
PMID:17699607[14]

IGI: Inferred from Genetic Interaction

MGI:MGI:96770

P

From MGI

GO:0042593

glucose homeostasis

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0043065

positive regulation of apoptotic process

MGI:MGI:3763872
PMID:17919533[16]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1926344

P

From MGI

GO:0043433

negative regulation of sequence-specific DNA binding transcription factor activity

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0043565

sequence-specific DNA binding

MGI:MGI:4459044

PANTHER:PTHR10373

F

From MGI

GO:0043565

sequence-specific DNA binding

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

F

From MGI

GO:0043570

maintenance of DNA repeat elements

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0043588

skin development

MGI:MGI:4412144
PMID:19718027[7]

IGI: Inferred from Genetic Interaction

MGI:MGI:1202876

P

From MGI

GO:0044212

transcription regulatory region DNA binding

MGI:MGI:4459044

PANTHER:PTHR10373

F

From MGI

GO:0044212

transcription regulatory region DNA binding

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

F

From MGI

GO:0044212

transcription regulatory region DNA binding

MGI:MGI:5009785
PMID:20044351[4]

IDA: Inferred from Direct Assay

F

From MGI

GO:0044334

canonical Wnt receptor signaling pathway involved in positive regulation of epithelial to mesenchymal transition

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0045295

gamma-catenin binding

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

F

From MGI

GO:0045444

fat cell differentiation

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0045599

negative regulation of fat cell differentiation

MGI:MGI:3758508
PMID:10937998[21]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0045892

negative regulation of transcription, DNA-dependent

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0045893

positive regulation of transcription, DNA-dependent

MGI:MGI:4412432
PMID:19168596[9]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0045944

positive regulation of transcription from RNA polymerase II promoter

MGI:MGI:3579620
PMID:15778706[22]

IGI: Inferred from Genetic Interaction

MGI:MGI:88276

P

From MGI

GO:0045944

positive regulation of transcription from RNA polymerase II promoter

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0045944

positive regulation of transcription from RNA polymerase II promoter

MGI:MGI:4947862
PMID:21335239[23]

IDA: Inferred from Direct Assay

P

From MGI

GO:0045944

positive regulation of transcription from RNA polymerase II promoter

MGI:MGI:5009785
PMID:20044351[4]

IDA: Inferred from Direct Assay

P

From MGI

GO:0046621

negative regulation of organ growth

MGI:MGI:3763872
PMID:17919533[16]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1926344

P

From MGI

GO:0046827

positive regulation of protein export from nucleus

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0048557

embryonic digestive tract morphogenesis

MGI:MGI:3042541
PMID:15057272[15]

IGI: Inferred from Genetic Interaction

MGI:MGI:98507

P

From MGI

GO:0048619

embryonic hindgut morphogenesis

MGI:MGI:3042541
PMID:15057272[15]

IGI: Inferred from Genetic Interaction

MGI:MGI:98507

P

From MGI

GO:0048625

myoblast cell fate commitment

MGI:MGI:3758508
PMID:10937998[21]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0048625

myoblast cell fate commitment

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0048641

regulation of skeletal muscle tissue development

MGI:MGI:4879035
PMID:21177349[24]

IMP: Inferred from Mutant Phenotype

MGI:MGI:4881345

P

From MGI

GO:0048660

regulation of smooth muscle cell proliferation

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0048713

regulation of oligodendrocyte differentiation

MGI:MGI:4359141
PMID:19503085[3]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0050679

positive regulation of epithelial cell proliferation

MGI:MGI:3841508
PMID:19251639[19]

IMP: Inferred from Mutant Phenotype

MGI:MGI:1926344

P

From MGI

GO:0051897

positive regulation of protein kinase B signaling cascade

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI

GO:0060070

canonical Wnt receptor signaling pathway

MGI:MGI:3758508
PMID:10937998[21]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0060325

face morphogenesis

MGI:MGI:3722225
PMID:17699607[14]

IGI: Inferred from Genetic Interaction

MGI:MGI:96770

P

From MGI

GO:0061178

regulation of insulin secretion involved in cellular response to glucose stimulus

MGI:MGI:2154458

ISO: Inferred from Sequence Orthology

UniProtKB:D4A9H4

P

From MGI

GO:0061178

regulation of insulin secretion involved in cellular response to glucose stimulus

MGI:MGI:4412432
PMID:19168596[9]

IMP: Inferred from Mutant Phenotype

P

From MGI

GO:0070016

armadillo repeat domain binding

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

F

From MGI

GO:0070369

beta-catenin-TCF7L2 complex

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

C

From MGI

GO:0090090

negative regulation of canonical Wnt receptor signaling pathway

MGI:MGI:4834177

ISO: Inferred from Sequence Orthology

UniProtKB:Q9NQB0

P

From MGI


Notes

References

See Help:References for how to manage references in GONUTS.
  1. Miller KA et al. (2007) A highly conserved Wnt-dependent TCF4 binding site within the proximal enhancer of the anti-myogenic Msx1 gene supports expression within Pax3-expressing limb bud muscle precursor cells. Dev Biol 311: 665-78 PubMed GONUTS page
  2. Papin J & Subramaniam S (2004) Bioinformatics and cellular signaling. Curr Opin Biotechnol 15: 78-81 PubMed GONUTS page
  3. 3.0 3.1 3.2 3.3 Ye F et al. (2009) HDAC1 and HDAC2 regulate oligodendrocyte differentiation by disrupting the beta-catenin-TCF interaction. Nat Neurosci 12: 829-38 PubMed GONUTS page
  4. 4.0 4.1 4.2 4.3 Weise A et al. (2010) Alternative splicing of Tcf7l2 transcripts generates protein variants with differential promoter-binding and transcriptional activation properties at Wnt/beta-catenin targets. Nucleic Acids Res 38: 1964-81 PubMed GONUTS page
  5. 5.0 5.1 Korinek V et al. (1998) Depletion of epithelial stem-cell compartments in the small intestine of mice lacking Tcf-4. Nat Genet 19: 379-83 PubMed GONUTS page
  6. 6.0 6.1 Kanda S et al. (2005) T-cell factor-4-dependent up-regulation of fibronectin is involved in fibroblast growth factor-2-induced tube formation by endothelial cells. J Cell Biochem 94: 835-47 PubMed GONUTS page
  7. 7.0 7.1 7.2 Nguyen H et al. (2009) Tcf3 and Tcf4 are essential for long-term homeostasis of skin epithelia. Nat Genet 41: 1068-75 PubMed GONUTS page
  8. 8.0 8.1 Kennell JA et al. (2003) T-cell factor 4N (TCF-4N), a novel isoform of mouse TCF-4, synergizes with beta-catenin to coactivate C/EBPalpha and steroidogenic factor 1 transcription factors. Mol Cell Biol 23: 5366-75 PubMed GONUTS page
  9. 9.0 9.1 9.2 9.3 9.4 9.5 da Silva Xavier G et al. (2009) TCF7L2 regulates late events in insulin secretion from pancreatic islet beta-cells. Diabetes 58: 894-905 PubMed GONUTS page
  10. 10.0 10.1 Korinek V et al. (1998) Two members of the Tcf family implicated in Wnt/beta-catenin signaling during embryogenesis in the mouse. Mol Cell Biol 18: 1248-56 PubMed GONUTS page
  11. Cho EA & Dressler GR (1998) TCF-4 binds beta-catenin and is expressed in distinct regions of the embryonic brain and limbs. Mech Dev 77: 9-18 PubMed GONUTS page
  12. Kanamori M et al. (2003) The PDZ protein tax-interacting protein-1 inhibits beta-catenin transcriptional activity and growth of colorectal cancer cells. J Biol Chem 278: 38758-64 PubMed GONUTS page
  13. Fu H et al. (2009) A genome-wide screen for spatially restricted expression patterns identifies transcription factors that regulate glial development. J Neurosci 29: 11399-408 PubMed GONUTS page
  14. 14.0 14.1 14.2 Brugmann SA et al. (2007) Wnt signaling mediates regional specification in the vertebrate face. Development 134: 3283-95 PubMed GONUTS page
  15. 15.0 15.1 15.2 15.3 Gregorieff A et al. (2004) Hindgut defects and transformation of the gastro-intestinal tract in Tcf4(-/-)/Tcf1(-/-) embryos. EMBO J 23: 1825-33 PubMed GONUTS page
  16. 16.0 16.1 16.2 16.3 16.4 Brinkmeier ML et al. (2007) TCF4 deficiency expands ventral diencephalon signaling and increases induction of pituitary progenitors. Dev Biol 311: 396-407 PubMed GONUTS page
  17. Friedman MS et al. (2009) Wnt11 promotes osteoblast maturation and mineralization through R-spondin 2. J Biol Chem 284: 14117-25 PubMed GONUTS page
  18. Wielenga VJ et al. (1999) Expression of CD44 in Apc and Tcf mutant mice implies regulation by the WNT pathway. Am J Pathol 154: 515-23 PubMed GONUTS page
  19. 19.0 19.1 Fre S et al. (2009) Notch and Wnt signals cooperatively control cell proliferation and tumorigenesis in the intestine. Proc Natl Acad Sci U S A 106: 6309-14 PubMed GONUTS page
  20. Ogawa S et al. (1998) Molecular cloning of a novel RING finger-B box-coiled coil (RBCC) protein, terf, expressed in the testis. Biochem Biophys Res Commun 251: 515-9 PubMed GONUTS page
  21. 21.0 21.1 21.2 Ross SE et al. (2000) Inhibition of adipogenesis by Wnt signaling. Science 289: 950-3 PubMed GONUTS page
  22. van Es JH et al. (2005) Wnt signalling induces maturation of Paneth cells in intestinal crypts. Nat Cell Biol 7: 381-6 PubMed GONUTS page
  23. Fujiwara H et al. (2011) The basement membrane of hair follicle stem cells is a muscle cell niche. Cell 144: 577-89 PubMed GONUTS page
  24. Mathew SJ et al. (2011) Connective tissue fibroblasts and Tcf4 regulate myogenesis. Development 138: 371-84 PubMed GONUTS page
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