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  1. World Encyclopedia
  2. GTF2I - Wikipedia
GTF2I - Wikipedia
From Wikipedia, the free encyclopedia
Protein-coding gene in humans
GTF2I
Available structures
PDBOrtholog search: PDBe RCSB
List of PDB id codes

2D9B, 2DN4, 2ED2, 2EJE

Identifiers
AliasesGTF2I, BAP135, BTKAP1, DIWS, GTFII-I, IB291, SPIN, TFII-I, WBS, WBSCR6, general transcription factor IIi
External IDsOMIM: 601679; MGI: 1202722; HomoloGene: 7748; GeneCards: GTF2I; OMA:GTF2I - orthologs
Gene location (Human)
Chromosome 7 (human)
Chr.Chromosome 7 (human)[1]
Chromosome 7 (human)
Genomic location for GTF2I
Genomic location for GTF2I
Band7q11.23Start74,650,231 bp[1]
End74,760,692 bp[1]
Gene location (Mouse)
Chromosome 5 (mouse)
Chr.Chromosome 5 (mouse)[2]
Chromosome 5 (mouse)
Genomic location for GTF2I
Genomic location for GTF2I
Band5 G2|5 74.48 cMStart134,237,834 bp[2]
End134,314,760 bp[2]
RNA expression pattern
Bgee
HumanMouse (ortholog)
Top expressed in
  • ganglionic eminence

  • epithelium of colon

  • sural nerve

  • ventricular zone

  • right uterine tube

  • right adrenal cortex

  • right lobe of thyroid gland

  • left lobe of thyroid gland

  • right ovary

  • body of pancreas
Top expressed in
  • utricle

  • spermatocyte

  • molar

  • primitive streak

  • vestibular sensory epithelium

  • superior surface of tongue

  • medullary collecting duct

  • renal corpuscle

  • retinal pigment epithelium

  • ciliary body
More reference expression data
BioGPS
n/a
Gene ontology
Molecular function
  • protein binding
  • mitogen-activated protein kinase binding
  • DNA-binding transcription factor activity, RNA polymerase II-specific
  • DNA binding
  • DNA-binding transcription factor activity
Cellular component
  • soma
  • cell projection
  • membrane
  • nucleus
  • cytoplasm
  • nucleoplasm
Biological process
  • negative regulation of angiogenesis
  • transcription, DNA-templated
  • transcription initiation from RNA polymerase II promoter
  • regulation of transcription, DNA-templated
  • signal transduction
  • negative regulation of cytosolic calcium ion concentration
  • transition between slow and fast fiber
  • regulation of transcription by RNA polymerase II
  • transcription by RNA polymerase II
Sources:Amigo / QuickGO
Orthologs
SpeciesHumanMouse
Entrez

2969

14886

Ensembl

ENSG00000263001

ENSMUSG00000060261

UniProt

P78347

Q9ESZ8

RefSeq (mRNA)
NM_001163636
NM_001280800
NM_001518
NM_032999
NM_033000

NM_033001

NM_001080746
NM_001080747
NM_001080748
NM_001080749
NM_010365

NM_001359062
NM_001359063
NM_001359064
NM_001359065
NM_001359066
NM_001359067

RefSeq (protein)
NP_001157108
NP_001267729
NP_001509
NP_127492
NP_127493

NP_127494

NP_001074215
NP_001074216
NP_001074217
NP_001074218
NP_034495

NP_001345991
NP_001345992
NP_001345993
NP_001345994
NP_001345995
NP_001345996

Location (UCSC)Chr 7: 74.65 – 74.76 MbChr 5: 134.24 – 134.31 Mb
PubMed search[3][4]
Wikidata
View/Edit HumanView/Edit Mouse

General transcription factor II-I is a protein that in humans is encoded by the GTF2I gene.[5][6][7]

Function

[edit]

This gene encodes a multifunctional phosphoprotein, TFII-I, with roles in transcription and signal transduction. Haploinsuffiency (deletion of one copy) of the GTF2I gene is noted in Williams-Beuren syndrome, a multisystem developmental disorder caused by the deletion of contiguous genes at chromosome 7q11.23. It is duplicated in the 7q11.23 duplication syndrome.[8] The exon(s) encoding 5' UTR has not been fully defined, but this gene is known to contain at least 34 exons, and its alternative splicing generates 4 transcript variants in humans.[7] A single gain-of-function point mutation in GTF2I is also found in certain Thymomas. Single nucleotide polymorphism (SNP) in GTF2I is correlated to autoimmune disorders.

Interactions

[edit]

GTF2I has been shown to interact with:

  • Bruton's tyrosine kinase,[6][9][10]
  • HDAC3,[11][12]
  • Histone deacetylase 2,[11][13]
  • MAPK3,[14]
  • Myc,[15]
  • PRKG1,[16]
  • Serum response factor[5][17] and
  • USF1 (human gene).[18][19]

References

[edit]
  1. ^ a b c GRCh38: Ensembl release 89: ENSG00000263001 – Ensembl, May 2017
  2. ^ a b c GRCm38: Ensembl release 89: ENSMUSG00000060261 – Ensembl, May 2017
  3. ^ "Human PubMed Reference:". National Center for Biotechnology Information, U.S. National Library of Medicine.
  4. ^ "Mouse PubMed Reference:". National Center for Biotechnology Information, U.S. National Library of Medicine.
  5. ^ a b Grueneberg DA, Henry RW, Brauer A, Novina CD, Cheriyath V, Roy AL, Gilman M (Oct 1997). "A multifunctional DNA-binding protein that promotes the formation of serum response factor/homeodomain complexes: identity to TFII-I". Genes & Development. 11 (19): 2482–93. doi:10.1101/gad.11.19.2482. PMC 316568. PMID 9334314.
  6. ^ a b Yang W, Desiderio S (Jan 1997). "BAP-135, a target for Bruton's tyrosine kinase in response to B cell receptor engagement". Proceedings of the National Academy of Sciences of the United States of America. 94 (2): 604–9. Bibcode:1997PNAS...94..604Y. doi:10.1073/pnas.94.2.604. PMC 19560. PMID 9012831.
  7. ^ a b "Entrez Gene: GTF2I general transcription factor II, i".
  8. ^ Roy AL (June 2017). "Pathophysiology of TFII-I: Old Guard Wearing New Hats". Trends in Molecular Medicine. 23 (6): 501–511. doi:10.1016/j.molmed.2017.04.002. PMC 5504908. PMID 28461154.
  9. ^ Sacristán C, Tussié-Luna MI, Logan SM, Roy AL (Feb 2004). "Mechanism of Bruton's tyrosine kinase-mediated recruitment and regulation of TFII-I". The Journal of Biological Chemistry. 279 (8): 7147–58. doi:10.1074/jbc.M303724200. PMID 14623887.
  10. ^ Novina CD, Kumar S, Bajpai U, Cheriyath V, Zhang K, Pillai S, Wortis HH, Roy AL (Jul 1999). "Regulation of nuclear localization and transcriptional activity of TFII-I by Bruton's tyrosine kinase". Molecular and Cellular Biology. 19 (7): 5014–24. doi:10.1128/mcb.19.7.5014. PMC 84330. PMID 10373551.
  11. ^ a b Wen YD, Cress WD, Roy AL, Seto E (Jan 2003). "Histone deacetylase 3 binds to and regulates the multifunctional transcription factor TFII-I". The Journal of Biological Chemistry. 278 (3): 1841–7. doi:10.1074/jbc.M206528200. PMID 12393887.
  12. ^ Tussié-Luna MI, Bayarsaihan D, Seto E, Ruddle FH, Roy AL (Oct 2002). "Physical and functional interactions of histone deacetylase 3 with TFII-I family proteins and PIASxbeta". Proceedings of the National Academy of Sciences of the United States of America. 99 (20): 12807–12. Bibcode:2002PNAS...9912807T. doi:10.1073/pnas.192464499. PMC 130541. PMID 12239342.
  13. ^ Hakimi MA, Dong Y, Lane WS, Speicher DW, Shiekhattar R (Feb 2003). "A candidate X-linked mental retardation gene is a component of a new family of histone deacetylase-containing complexes". The Journal of Biological Chemistry. 278 (9): 7234–9. doi:10.1074/jbc.M208992200. PMID 12493763.
  14. ^ Kim DW, Cochran BH (Feb 2000). "Extracellular signal-regulated kinase binds to TFII-I and regulates its activation of the c-fos promoter". Molecular and Cellular Biology. 20 (4): 1140–8. doi:10.1128/mcb.20.4.1140-1148.2000. PMC 85232. PMID 10648599.
  15. ^ Roy AL, Carruthers C, Gutjahr T, Roeder RG (Sep 1993). "Direct role for Myc in transcription initiation mediated by interactions with TFII-I". Nature. 365 (6444): 359–61. Bibcode:1993Natur.365..359R. doi:10.1038/365359a0. PMID 8377829. S2CID 4354157.
  16. ^ Casteel DE, Zhuang S, Gudi T, Tang J, Vuica M, Desiderio S, Pilz RB (Aug 2002). "cGMP-dependent protein kinase I beta physically and functionally interacts with the transcriptional regulator TFII-I". The Journal of Biological Chemistry. 277 (35): 32003–14. doi:10.1074/jbc.M112332200. PMID 12082086.
  17. ^ Kim DW, Cheriyath V, Roy AL, Cochran BH (Jun 1998). "TFII-I enhances activation of the c-fos promoter through interactions with upstream elements". Molecular and Cellular Biology. 18 (6): 3310–20. doi:10.1128/mcb.18.6.3310. PMC 108912. PMID 9584171.
  18. ^ Roy AL, Du H, Gregor PD, Novina CD, Martinez E, Roeder RG (Dec 1997). "Cloning of an inr- and E-box-binding protein, TFII-I, that interacts physically and functionally with USF1". The EMBO Journal. 16 (23): 7091–104. doi:10.1093/emboj/16.23.7091. PMC 1170311. PMID 9384587.
  19. ^ Roy AL, Meisterernst M, Pognonec P, Roeder RG (Nov 1991). "Cooperative interaction of an initiator-binding transcription initiation factor and the helix-loop-helix activator USF". Nature. 354 (6350): 245–8. Bibcode:1991Natur.354..245R. doi:10.1038/354245a0. PMID 1961251. S2CID 4260885.

Further reading

[edit]
  • Roy AL, Meisterernst M, Pognonec P, Roeder RG (Nov 1991). "Cooperative interaction of an initiator-binding transcription initiation factor and the helix-loop-helix activator USF". Nature. 354 (6350): 245–8. Bibcode:1991Natur.354..245R. doi:10.1038/354245a0. PMID 1961251. S2CID 4260885.
  • Roy AL, Carruthers C, Gutjahr T, Roeder RG (Sep 1993). "Direct role for Myc in transcription initiation mediated by interactions with TFII-I". Nature. 365 (6444): 359–61. Bibcode:1993Natur.365..359R. doi:10.1038/365359a0. PMID 8377829. S2CID 4354157.
  • Roy AL, Du H, Gregor PD, Novina CD, Martinez E, Roeder RG (Dec 1997). "Cloning of an inr- and E-box-binding protein, TFII-I, that interacts physically and functionally with USF1". The EMBO Journal. 16 (23): 7091–104. doi:10.1093/emboj/16.23.7091. PMC 1170311. PMID 9384587.
  • Pérez Jurado LA, Wang YK, Peoples R, Coloma A, Cruces J, Francke U (Mar 1998). "A duplicated gene in the breakpoint regions of the 7q11.23 Williams-Beuren syndrome deletion encodes the initiator binding protein TFII-I and BAP-135, a phosphorylation target of BTK". Human Molecular Genetics. 7 (3): 325–34. doi:10.1093/hmg/7.3.325. PMID 9466987.
  • Kim DW, Cheriyath V, Roy AL, Cochran BH (Jun 1998). "TFII-I enhances activation of the c-fos promoter through interactions with upstream elements". Molecular and Cellular Biology. 18 (6): 3310–20. doi:10.1128/mcb.18.6.3310. PMC 108912. PMID 9584171.
  • Cheriyath V, Novina CD, Roy AL (Aug 1998). "TFII-I regulates Vbeta promoter activity through an initiator element". Molecular and Cellular Biology. 18 (8): 4444–54. doi:10.1128/mcb.18.8.4444. PMC 109030. PMID 9671454.
  • Novina CD, Cheriyath V, Roy AL (Dec 1998). "Regulation of TFII-I activity by phosphorylation". The Journal of Biological Chemistry. 273 (50): 33443–8. doi:10.1074/jbc.273.50.33443. PMID 9837922.
  • Novina CD, Kumar S, Bajpai U, Cheriyath V, Zhang K, Pillai S, Wortis HH, Roy AL (Jul 1999). "Regulation of nuclear localization and transcriptional activity of TFII-I by Bruton's tyrosine kinase". Molecular and Cellular Biology. 19 (7): 5014–24. doi:10.1128/mcb.19.7.5014. PMC 84330. PMID 10373551.
  • Kim DW, Cochran BH (Feb 2000). "Extracellular signal-regulated kinase binds to TFII-I and regulates its activation of the c-fos promoter". Molecular and Cellular Biology. 20 (4): 1140–8. doi:10.1128/MCB.20.4.1140-1148.2000. PMC 85232. PMID 10648599.
  • Cheriyath V, Roy AL (Aug 2000). "Alternatively spliced isoforms of TFII-I. Complex formation, nuclear translocation, and differential gene regulation". The Journal of Biological Chemistry. 275 (34): 26300–8. doi:10.1074/jbc.M002980200. PMID 10854432.
  • Parker R, Phan T, Baumeister P, Roy B, Cheriyath V, Roy AL, Lee AS (May 2001). "Identification of TFII-I as the endoplasmic reticulum stress response element binding factor ERSF: its autoregulation by stress and interaction with ATF6". Molecular and Cellular Biology. 21 (9): 3220–33. doi:10.1128/MCB.21.9.3220-3233.2001. PMC 86961. PMID 11287625.
  • Kim DW, Cochran BH (May 2001). "JAK2 activates TFII-I and regulates its interaction with extracellular signal-regulated kinase". Molecular and Cellular Biology. 21 (10): 3387–97. doi:10.1128/MCB.21.10.3387-3397.2000. PMC 100260. PMID 11313464.
  • Egloff AM, Desiderio S (Jul 2001). "Identification of phosphorylation sites for Bruton's tyrosine kinase within the transcriptional regulator BAP/TFII-I". The Journal of Biological Chemistry. 276 (30): 27806–15. doi:10.1074/jbc.M103692200. PMID 11373296.
  • Cheriyath V, Desgranges ZP, Roy AL (Jun 2002). "c-Src-dependent transcriptional activation of TFII-I". The Journal of Biological Chemistry. 277 (25): 22798–805. doi:10.1074/jbc.M202956200. PMID 11934902.
  • Casteel DE, Zhuang S, Gudi T, Tang J, Vuica M, Desiderio S, Pilz RB (Aug 2002). "cGMP-dependent protein kinase I beta physically and functionally interacts with the transcriptional regulator TFII-I". The Journal of Biological Chemistry. 277 (35): 32003–14. doi:10.1074/jbc.M112332200. PMID 12082086.
  • Tussie-Luna MI, Michel B, Hakre S, Roy AL (Nov 2002). "The SUMO ubiquitin-protein isopeptide ligase family member Miz1/PIASxbeta /Siz2 is a transcriptional cofactor for TFII-I". The Journal of Biological Chemistry. 277 (45): 43185–93. doi:10.1074/jbc.M207635200. PMID 12193603.
  • Tussié-Luna MI, Bayarsaihan D, Seto E, Ruddle FH, Roy AL (Oct 2002). "Physical and functional interactions of histone deacetylase 3 with TFII-I family proteins and PIASxbeta". Proceedings of the National Academy of Sciences of the United States of America. 99 (20): 12807–12. Bibcode:2002PNAS...9912807T. doi:10.1073/pnas.192464499. PMC 130541. PMID 12239342.
  • Wen YD, Cress WD, Roy AL, Seto E (Jan 2003). "Histone deacetylase 3 binds to and regulates the multifunctional transcription factor TFII-I". The Journal of Biological Chemistry. 278 (3): 1841–7. doi:10.1074/jbc.M206528200. PMID 12393887.

External links

[edit]
  • GTF2I+protein,+human at the U.S. National Library of Medicine Medical Subject Headings (MeSH)

This article incorporates text from the United States National Library of Medicine, which is in the public domain.

  • v
  • t
  • e
PDB gallery
  • 1q60: Solution Structure of RSGI RUH-004, a GTF2I domain in Mouse cDNA
    1q60: Solution Structure of RSGI RUH-004, a GTF2I domain in Mouse cDNA
  • 2d9b: Solution Structure of RSGI RUH-052, a GTF2I domain in human cDNA
    2d9b: Solution Structure of RSGI RUH-052, a GTF2I domain in human cDNA
  • 2dn4: Solution Structure of RSGI RUH-060, a GTF2I domain in human cDNA
    2dn4: Solution Structure of RSGI RUH-060, a GTF2I domain in human cDNA
  • v
  • t
  • e
Transcription factors and intracellular receptors
(1) Basic domains
(1.1) Basic leucine zipper (bZIP)
  • Activating transcription factor
    • AATF
    • 1
    • 2
    • 3
    • 4
    • 5
    • 6
    • 7
  • AP-1
    • c-Fos
    • FOSB
    • FOSL1
    • FOSL2
    • JDP2
    • c-Jun
    • JUNB
    • JunD
  • BACH
    • 1
    • 2
  • BATF
  • BLZF1
  • C/EBP
    • α
    • β
    • γ
    • δ
    • ε
    • ζ
  • CREB
    • 1
    • 3
    • L1
  • CREM
  • DBP
  • DDIT3
  • GABPA
  • GCN4
  • HLF
  • MAF
    • B
    • sMaf
      • F
      • G
      • K
  • NFE
    • 2
    • L1
    • L2
    • L3
  • NFIL3
  • NRL
  • NRF
    • 1
    • 2
    • 3
  • XBP1
(1.2) Basic helix-loop-helix (bHLH)
Group A
  • AS-C
    • ASCL1
    • ASCL2
  • ATOH1
  • HAND
    • 1
    • 2
  • MESP2
  • Myogenic regulatory factors
    • MyoD
    • Myogenin
    • MYF5
    • MYF6
  • NeuroD
    • 1
    • 2
  • Neurogenins
    • 1
    • 2
    • 3
  • OLIG
    • 1
    • 2
  • Paraxis
    • TCF15
    • Scleraxis
  • SLC
    • LYL1
    • TAL
      • 1
      • 2
  • Twist
Group B
  • FIGLA
  • Myc
    • c-Myc
    • l-Myc
    • n-Myc
  • MXD4
  • TCF4
Group C
bHLH-PAS
  • AhR
  • AHRR
  • ARNT
    • ARNTL
    • ARNTL2
  • CLOCK
  • HIF
    • 1A
    • EPAS1
    • 3A
  • NPAS
    • 1
    • 2
    • 3
  • PER
    • 1
    • 2
    • 3
    • Period
  • SIM
    • 1
    • 2
Group D
  • DEC
    • 1
    • 2
  • BHLHA9
  • Pho4
  • ID
    • 1
    • 2
    • 3
    • 4
Group E
  • HES
    • 1
    • 2
    • 3
    • 4
    • 5
    • 6
    • 7
  • HEY
    • 1
    • 2
    • L
Group F
bHLH-COE
  • EBF1
(1.3) bHLH-ZIP
  • AP-4
  • MAX
    • MXD1
    • MXD3
  • MITF
  • MNT
  • MLX
  • MLXIPL
  • MXI1
  • Myc
  • SREBP
    • 1
    • 2
  • USF1
(1.4) NF-1
  • NFI
    • A
    • B
    • C
    • X
  • SMAD
    • R-SMAD
      • 1
      • 2
      • 3
      • 5
      • 9
    • I-SMAD
      • 6
      • 7
    • 4)
(1.5) RF-X
  • RFX
    • 1
    • 2
    • 3
    • 4
    • 5
    • 6
    • ANK
(1.6) Basic helix-span-helix (bHSH)
  • AP-2
    • α
    • β
    • γ
    • δ
    • ε
(2) Zinc finger DNA-binding domains
(2.1) Nuclear receptor (Cys4)
subfamily 1
  • Thyroid hormone
    • α
    • β
  • CAR
  • FXR
  • LXR
    • α
    • β
  • PPAR
    • α
    • β/δ
    • γ
  • PXR
  • RAR
    • α
    • β
    • γ
  • ROR
    • α
    • β
    • γ
  • Rev-ErbA
    • α
    • β
  • VDR
subfamily 2
  • COUP-TF
    • (I
    • II
  • Ear-2
  • HNF4
    • α
    • γ
  • PNR
  • RXR
    • α
    • β
    • γ
  • Testicular receptor
    • 2
    • 4
  • TLX
subfamily 3
  • Steroid hormone
    • Androgen
    • Estrogen
      • α
      • β
    • Glucocorticoid
    • Mineralocorticoid
    • Progesterone
  • Estrogen related
    • α
    • β
    • γ
subfamily 4
  • NUR
    • NGFIB
    • NOR1
    • NURR1
subfamily 5
  • LRH-1
  • SF1
subfamily 6
  • GCNF
subfamily 0
  • DAX1
  • SHP
(2.2) Other Cys4
  • GATA
    • 1
    • 2
    • 3
    • 4
    • 5
    • 6
  • MTA
    • 1
    • 2
    • 3
  • TRPS1
(2.3) Cys2His2
  • General transcription factors
    • TFIIA
    • TFIIB
    • TFIID
    • TFIIE
      • 1
      • 2
    • TFIIF
    • 1
    • 2
      • TFIIH
      • 1
      • 2
      • 4
      • 2I
      • 3A
      • 3C1
      • 3C2
  • ATBF1
  • BCL
    • 6
    • 11A
    • 11B
  • CTCF
  • E4F1
  • EGR
    • 1
    • 2
    • 3
    • 4
  • ERV3
  • GFI1
  • GLI family
    • 1
    • 2
    • 3
    • REST
    • S1
    • S2
    • YY1
  • HIC
    • 1
    • 2
  • HIVEP
    • 1
    • 2
    • 3
  • IKZF
    • 1
    • 2
    • 3
  • ILF
    • 2
    • 3
  • Sp/KLF family
    • KLF
      • 1
      • 2
      • 3
      • 4
      • 5
      • 6
      • 7
      • 8
      • 9
      • 10
      • 11
      • 12
      • 13
      • 14
      • 15
      • 17
    • SP
      • 1
      • 2
      • 4
      • 7
      • 8
  • MTF1
  • MYT1
  • OSR1
  • PRDM9
  • SALL
    • 1
    • 2
    • 3
    • 4
  • TSHZ3
  • WT1
  • Zbtb7
    • 7A
    • 7B
  • ZBTB
    • 11
    • 16
    • 17
    • 20
    • 21
    • 32
    • 33
    • 40
  • zinc finger
    • 3
    • 7
    • 9
    • 10
    • 19
    • 22
    • 24
    • 33B
    • 34
    • 35
    • 41
    • 43
    • 44
    • 51
    • 74
    • 143
    • 146
    • 148
    • 165
    • 202
    • 217
    • 219
    • 238
    • 239
    • 259
    • 267
    • 268
    • 281
    • 300
    • 318
    • 330
    • 346
    • 350
    • 365
    • 366
    • 384
    • 423
    • 451
    • 452
    • 471
    • 593
    • 638
    • 644
    • 649
    • 655
    • 804A
(2.4) Cys6
  • HIVEP1
(2.5) Alternating composition
  • AIRE
  • DIDO1
  • GRLF1
  • ING
    • 1
    • 2
    • 4
  • JARID
    • 1A
    • 1B
    • 1C
    • 1D
    • 2
  • JMJD1B
(2.6) WRKY
  • WRKY
(3) Helix-turn-helix domains
(3.1) Homeodomain
Antennapedia
ANTP class
protoHOX
Hox-like
  • ParaHox
    • Gsx
      • 1
      • 2
    • Xlox
      • PDX1
    • Cdx
      • 1
      • 2
      • 4
  • extended Hox: Evx1
  • Evx2
  • MEOX1
  • MEOX2
  • Homeobox
    • A1
    • A2
    • A3
    • A4
    • A5
    • A7
    • A9
    • A10
    • A11
    • A13
    • B1
    • B2
    • B3
    • B4
    • B5
    • B6
    • B7
    • B8
    • B9
    • B13
    • C4
    • C5
    • C6
    • C8
    • C9
    • C10
    • C11
    • C12
    • C13
    • D1
    • D3
    • D4
    • D8
    • D9
    • D10
    • D11
    • D12
    • D13
  • GBX1
  • GBX2
  • MNX1
metaHOX
NK-like
  • BARHL1
  • BARHL2
  • BARX1
  • BARX2
  • BSX
  • DBX
    • 1
    • 2
  • DLX
    • 1
    • 2
    • 3
    • 4
    • 5
    • 6
  • EMX
    • 1
    • 2
  • EN
    • 1
    • 2
  • HHEX
  • HLX
  • LBX1
  • LBX2
  • MSX
    • 1
    • 2
  • NANOG
  • NKX
    • 2-1
    • 2-2
    • 2-3
    • 2-5
    • 3-1
    • 3-2
    • HMX1
    • HMX2
    • HMX3
    • 6-1
    • 6-2
  • NOTO
  • TLX1
  • TLX2
  • TLX3
  • VAX1
  • VAX2
other
  • ARX
  • CRX
  • CUTL1
  • FHL
    • 1
    • 2
    • 3
  • HESX1
  • HOPX
  • LMX
    • 1A
    • 1B
  • NOBOX
  • TALE
    • IRX
      • 1
      • 2
      • 3
      • 4
      • 5
      • 6
      • MKX
    • MEIS
      • 1
      • 2
    • PBX
      • 1
      • 2
      • 3
    • PKNOX
      • 1
      • 2
    • SIX
      • 1
      • 2
      • 3
      • 4
      • 5
  • PHF
    • 1
    • 3
    • 6
    • 8
    • 10
    • 16
    • 17
    • 20
    • 21A
  • POU domain
    • PIT-1
    • BRN-3: A
    • B
    • C
    • Octamer transcription factor: 1
    • 2
    • 3/4
    • 6
    • 7
    • 11
  • SATB2
  • ZEB
    • 1
    • 2
(3.2) Paired box
  • PAX
    • 1
    • 2
    • 3
    • 4
    • 5
    • 6
    • 7
    • 8
    • 9
  • PRRX
    • 1
    • 2
  • PROP1
  • PHOX
    • 2A
    • 2B
  • RAX
  • SHOX
  • SHOX2
  • VSX1
  • VSX2
  • Bicoid
    • GSC
    • BICD2
    • OTX
      • 1
      • 2
    • PITX
      • 1
      • 2
      • 3
(3.3) Fork head / winged helix
  • E2F
    • 1
    • 2
    • 3
    • 4
    • 5
  • FOX proteins
    • A1
    • A2
    • A3
    • B1
    • B2
    • C1
    • C2
    • D1
    • D2
    • D3
    • D4
    • D4L1
    • D4L3
    • D4L4
    • D4L5
    • D4L6
    • E1
    • E3
    • F1
    • F2
    • G1
    • H1
    • I1
    • I2
    • I3
    • J1
    • J2
    • J3
    • K1
    • K2
    • L1
    • L2
    • M1
    • N1
    • N2
    • N3
    • N4
    • O1
    • O3
    • O4
    • O6
    • P1
    • P2
    • P3
    • P4
    • Q1
    • R1
    • R2
    • S1
(3.4) Heat shock factors
  • HSF
    • 1
    • 2
    • 4
(3.5) Tryptophan clusters
  • ELF
    • 2
    • 4
    • 5
  • EHF
  • ELK
    • 1
    • 3
    • 4
  • ERF
  • ETS
    • 1
    • 2
    • ERG
    • SPIB
  • ETV
    • 1
    • 4
    • 5
    • 6
  • FLI1
  • Interferon regulatory factors
    • 1
    • 2
    • 3
    • 4
    • 5
    • 6
    • 7
    • 8
  • MYB
  • MYBL2
(3.6) TEA domain
  • transcriptional enhancer factor
    • 1
    • 2
    • 3
    • 4
(4) β-Scaffold factors with minor groove contacts
(4.1) Rel homology region
  • NF-κB
    • NFKB1
    • NFKB2
    • REL
    • RELA
    • RELB
  • NFAT
    • C1
    • C2
    • C3
    • C4
    • 5
(4.2) STAT
  • STAT
    • 1
    • 2
    • 3
    • 4
    • 5
    • 6
(4.3) p53-like
  • p53 p63 p73 family
    • p53
    • TP63
    • p73
  • TBX
    • 1
    • 2
    • 3
    • 5
    • 19
    • 21
    • 22
    • TBR1
    • TBR2
    • TFT
  • MYRF
(4.4) MADS box
  • Mef2
    • A
    • B
    • C
    • D
  • SRF
(4.6) TATA-binding proteins
  • TBP
  • TBPL1
(4.7) High-mobility group
  • BBX
  • HMGB
    • 1
    • 2
    • 3
    • 4
  • HMGN
    • 1
    • 2
    • 3
    • 4
  • HNF
    • 1A
    • 1B
  • SOX
    • 1
    • 2
    • 3
    • 4
    • 5
    • 6
    • 8
    • 9
    • 10
    • 11
    • 12
    • 13
    • 14
    • 15
    • 17
    • 18
    • 21
  • SRY
  • SSRP1
  • TCF/LEF
    • TCF
      • 1
      • 3
      • 4
    • LEF1
  • TOX
    • 1
    • 2
    • 3
    • 4
(4.9) Grainyhead
  • TFCP2
(4.10) Cold-shock domain
  • CSDA
  • YBX1
(4.11) Runt
  • CBF
    • CBFA2T2
    • CBFA2T3
    • RUNX1
    • RUNX2
    • RUNX3
    • RUNX1T1
(0) Other transcription factors
(0.2) HMGI(Y)
  • HMGA
    • 1
    • 2
  • HBP1
(0.3) Pocket domain
  • Rb
  • RBL1
  • RBL2
(0.5) AP-2/EREBP-related factors
  • Apetala 2
  • EREBP
  • B3
(0.6) Miscellaneous
  • ARID
    • 1A
    • 1B
    • 2
    • 3A
    • 3B
    • 4A
  • CAP
  • IFI
    • 16
    • 35
  • MLL
    • 2
    • 3
    • T1
  • MNDA
  • NFY
    • A
    • B
    • C
  • Rho/Sigma
see also transcription factor/coregulator deficiencies
Retrieved from "https://teknopedia.ac.id/w/index.php?title=GTF2I&oldid=1300571614"
Categories:
  • Genes on human chromosome 7
  • Transcription factors
Hidden categories:
  • Articles with short description
  • Short description is different from Wikidata
  • Wikipedia articles incorporating text from the United States National Library of Medicine

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Sunting pranala
url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url url 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