Basic Information

Gene Symbol
ZNF131
Assembly
GCA_963556715.1
Location
OY750816.1:2602928-2623474[-]

Transcription Factor Domain

TF Family
zf-C2H2
Domain
zf-C2H2 domain
PFAM
PF00096
TF Group
Zinc-Coordinating Group
Description
The C2H2 zinc finger is the classical zinc finger domain. The two conserved cysteines and histidines co-ordinate a zinc ion. The following pattern describes the zinc finger. #-X-C-X(1-5)-C-X3-#-X5-#-X2-H-X(3-6)-[H/C] Where X can be any amino acid, and numbers in brackets indicate the number of residues. The positions marked # are those that are important for the stable fold of the zinc finger. The final position can be either his or cys. The C2H2 zinc finger is composed of two short beta strands followed by an alpha helix. The amino terminal part of the helix binds the major groove in DNA binding zinc fingers. The accepted consensus binding sequence for Sp1 is usually defined by the asymmetric hexanucleotide core GGGCGG but this sequence does not include, among others, the GAG (=CTC) repeat that constitutes a high-affinity site for Sp1 binding to the wt1 promoter [1].
Hmmscan Out
# of c-Evalue i-Evalue score bias hmm coord from hmm coord to ali coord from ali coord to env coord from env coord to acc
1 11 0.25 16 7.2 1.0 2 22 257 277 257 279 0.88
2 11 3.1 2e+02 3.8 1.9 1 14 283 296 283 308 0.60
3 11 0.012 0.78 11.3 0.2 3 23 318 339 317 339 0.94
4 11 0.012 0.78 11.3 0.2 3 23 470 491 469 491 0.94
5 11 3.6 2.3e+02 3.5 0.0 2 20 500 518 499 520 0.91
6 11 0.013 0.82 11.3 0.0 3 23 533 553 532 553 0.92
7 11 4.2e-06 0.00027 22.2 0.3 1 23 558 581 558 581 0.97
8 11 1.2e-05 0.00076 20.8 0.9 1 23 605 627 605 627 0.98
9 11 0.079 5.1 8.8 0.1 1 23 633 656 633 656 0.84
10 11 0.012 0.75 11.4 0.7 1 23 662 684 662 684 0.95
11 11 1.2e-06 7.5e-05 24.0 0.8 1 23 690 713 690 713 0.97

Sequence Information

Coding Sequence
ATGGGACGGGAGCAGCATCTGTGCGGCTCCTGCGGTGTGCTGCTGCTGAAGAGCAGCGCGCTGCGCCGCCGCTGCCGTCGCGCTGAGCTGCTACTGCGTCAGTACACGCACACGATCACAACAGACTTCATCCGAACCATAGACAGAGTAGCCAACAAGCTTTCCCTCCATCTCTCCATCACTAAAATTAACTCCGACACAGACACTAAACCCGACAGCATTGACACCAAACTCGACACAGAAACGAAACTCGACACAGACTTGAAACTCGACACAGATTTGAAACTCGACGATGATAAACAGGACAGTGATGAAAACGACTCCCAATCGGTGTCAGTTTTTTGCGAACCCGAAATATTTGTAAGCGATGTTAAATATTCACAAGTTATAGCCACTGATATAGACATATCAAACCGTATGACGTTACGGAAACGGGTTAAAACTGAAAAGAGGAAAAAAAATAAagtgaaagtgaaggaagcacagaagaaaataaataaagtgaaagtgaaggaagctaaaaaacaaaagaagGGTTTCAAATGGTTTTTCAGCACGGAGGAGGATTATGTGAAATTTGAGAATAAGTATAACATTAGGGTGGTGAAGTTGAATGAGGAGGAACAGAGACGGGAAATGGAGGGGAGGAGAGAGTCGGAGAATTATAGGCACGCGCATGTGCGGTGCGAGAAGTGCTGTAAAGGGTTCTTGTCTATGATTACGTTTGAGAATCATAACAAGATCCATGACCCGAGTACAGGCGCGAACGAGTGCCCGCTGTGTTTCTCGCGTTACAAGTTCCCGACGCACCTGCGCCAGCACGTGGTGGAGAGCCACGCGCATAAATATGTGTGCAAGGTGTGCGACCAGGTCATACGGCGGCGGAAATCTTCAACCCGCTACACACACATGCGCATCCAGCACCCCGGGGAGAACGCGTCCGGGGGCGCCTGCGACGTGTGCGGGGAGACCTTCACCGGAGCCCTGGGGCTGCAGCAGCACAAGACGAGGAAACACAACAAGGTGAGCCCTGCAGGCTGGTGTGGGCGGCcatgtacacacacacacacacacacacacacagcacCCCGGGGAGAACGCGTCCGGGGGCGCCTGCGACGTGTGCGGGGAGACCTTCACCGGGGCCCTGGGGCTGCAGCAGCACAAGACGAGGAAACACAACAAGGTGAGCCCTGCAGGCGGGTGTGGGCGGCcatgtacacacacacacacacacagcacCCCGGGGAGAACGCGTCCGGGGGCGCCTGCGACGTGTACGGGGAGACCTTCACCGGGGCCCTGGGGCTGCAGCAGCACAAGACGAGGAAACACAACAAGGCTGGTGTGGGCGGCcatgtacacacacacacacagcacCCCGGGGAGAACGCGTCCGGGGGCGCCTGCGACGTGTGCGGGGAGACCTTCACCGGCGCCCTGGGGCTGCAGCAGCACAAGACGAGGAAACACAACAAGCCCGCAGTGCCAGAGTTGAAGTGCAGTACCTGCCTGGTCCAGTTTGCGAGCTTGGACGCCGTTGCCAGACACACAGACACCACCCCCGACAACACCTGCGATCCTAGTCTCAAGGCGTGCTCCGTGTGTGGAGAGACGTTTCCCGACGAGGCCGGGCTCGCCGCGCACGGCTCCGCCCACGCCGACACGCGCTACAAGTGTGATGACTGTAACCAGCCATTCGCAACCAAGTCCTCTCTCAGCACGCATATCGACCGCGTTCACCTGAAGATCAAACCGCGGTACAAGCTCATATACAAGTACAGTGCGGCGAGACGAGCGCAGCTAGACGAATACATGTGCGAGACTTGCGGGAAGGGGTATACGAGCTTCGCAAACCTGAAGACACACCAGCTGCGTCACACGGGGGAGCGGCCCTTCCCGTGCCCGCAGTGCCCTAAGAGTTTCCTCACCGCCGCACAAGCCAAAGGTCACAAGGAGCGAGTGCACGCGGGGATAAAGAAGTACCAGTGCGCGCAGTGCCCCAAGACTTTCCTGGACAAGAGCTCCGTGTACAAACACAAAGTGGTACACACAGGTGAGAAACCCTACGAGTGCCAAATCTGCAACAAAACCTTCACCCAATCCGGTTCCTTGTCTACACACATCAAGTACGTTCACATGAAGGTCAAGCCGCCGccccggcgccggcgcgggctCGCAGCCAGCGGAGTATAG
Protein Sequence
MGREQHLCGSCGVLLLKSSALRRRCRRAELLLRQYTHTITTDFIRTIDRVANKLSLHLSITKINSDTDTKPDSIDTKLDTETKLDTDLKLDTDLKLDDDKQDSDENDSQSVSVFCEPEIFVSDVKYSQVIATDIDISNRMTLRKRVKTEKRKKNKVKVKEAQKKINKVKVKEAKKQKKGFKWFFSTEEDYVKFENKYNIRVVKLNEEEQRREMEGRRESENYRHAHVRCEKCCKGFLSMITFENHNKIHDPSTGANECPLCFSRYKFPTHLRQHVVESHAHKYVCKVCDQVIRRRKSSTRYTHMRIQHPGENASGGACDVCGETFTGALGLQQHKTRKHNKVSPAGWCGRPCTHTHTHTHTAPRGERVRGRLRRVRGDLHRGPGAAAAQDEETQQGEPCRRVWAAMYTHTHTQHPGENASGGACDVYGETFTGALGLQQHKTRKHNKAGVGGHVHTHTQHPGENASGGACDVCGETFTGALGLQQHKTRKHNKPAVPELKCSTCLVQFASLDAVARHTDTTPDNTCDPSLKACSVCGETFPDEAGLAAHGSAHADTRYKCDDCNQPFATKSSLSTHIDRVHLKIKPRYKLIYKYSAARRAQLDEYMCETCGKGYTSFANLKTHQLRHTGERPFPCPQCPKSFLTAAQAKGHKERVHAGIKKYQCAQCPKTFLDKSSVYKHKVVHTGEKPYECQICNKTFTQSGSLSTHIKYVHMKVKPPPRRRRGLAASGV

Similar Transcription Factors

Sequence clustering based on sequence similarity using MMseqs2

100% Identity
-
90% Identity
-
80% Identity
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