Basic Information

Gene Symbol
Unr
Assembly
GCA_000475195.1
Location
CP125325.1:9259530-9271210[-]

Transcription Factor Domain

TF Family
CSD
Domain
CSD domain
PFAM
PF00313
TF Group
Beta-Scaffold Factors
Description
In molecular biology, the cold-shock domain (CSD) is a protein domain of about 70 amino acids which has been found in prokaryotic and eukaryotic DNA-binding proteins. When Escherichia coli is exposed to a temperature drop from 37 to 10 degrees Celsius, a 4–5 hour lag phase occurs, after which growth is resumed at a reduced rate.During the lag phase, the expression of around 13 proteins, which contain cold shock domains is increased 2–10 fold. These so-called 'cold shock' proteins are thought to help the cell to survive in temperatures lower than optimum growth temperature, by contrast with heat shock proteins, which help the cell to survive in temperatures greater than the optimum, possibly by condensation of the chromosome and organisation of the prokaryotic nucleoid.
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 8 0.0017 4.5 8.6 0.0 17 58 46 87 41 95 0.75
2 8 3.8e-18 9.9e-15 55.6 0.2 2 64 105 165 104 167 0.96
3 8 0.15 4e+02 2.4 0.0 40 55 231 246 219 258 0.77
4 8 2.4e-06 0.0061 17.8 0.0 2 54 272 324 271 331 0.95
5 8 0.064 1.7e+02 3.6 0.0 44 65 425 448 422 449 0.85
6 8 5.6e-15 1.4e-11 45.4 0.1 2 64 536 599 535 601 0.85
7 8 0.24 6.3e+02 1.7 0.0 40 57 666 683 658 691 0.80
8 8 1e-11 2.7e-08 35.0 0.2 4 65 696 756 693 757 0.85

Sequence Information

Coding Sequence
atggcgccgactatcgatagttctcctcctctagttcAAGGAGGTCGGATTGTGTTGAGTGAGGAGCGGGTCACAGGCACGGTCACCACCGAGATCCGAGCTGAGGGCAGTACAGTGGGCGATactcagggccggattagctaCGAGAACAGGGGCGAGTGTTTCTTCTTGCCCTACACGAAGGATGATGTAGAGGGCAATGTAACACTGCGCTCTGGGGATAAAGTGAGCTTCCAGATTGCCACCAATCCACGTGGTAATTTGGGAGCGAGCCACGTGCGCCTGGAGAACCCTGTTCACCCGGTCAAATATCAGGGAGTTGTGTGTTCCATGAAGGAGAGTTTTGGATTTATCGAGCGGGCCGATGTGgtgaaggaaattttcttccacttctcgGAATCGAAGCCGAGTACCGAGGAGCAGCTGCAACTGGGCGACGATGTTGAGTTTAACATTCAGACGAGAAACGGCAAAGAAGTGGCCGTCAACCTGTCTCTTCTCCCGCGCGGCTCCGTGGTATTCGAGGACATCACGGAAGACATAGTCAAGGGCCAAGTGCTCAAGCCCCTGGAGCGTGGTCTGCCCCGGCACCCGAATACAGACCCTTTGCCCGGCCGAATCCGGTACCGGGCCCCCGACCATTCCGAAGTGGAGATCCCGTTCGGCGAGAAGGACCAGCGCGGGGATTTCACACTCAAaCACGGAgactgggttcaattccaggtgGCGACGGACCGACGGGATTCTCTACGTCGCGCCACACGCATCTCCCTTCTCCACGAGTCCTTTCTCGTCTCCGGGGAGAGACGTGAACAAGGCGTGGTCACGTCGCTATCCCCCAGTGAGGGGTATGGCTGGGTTCGCAGTGCGGAGCGAGAGCCGCGCCTGGCCTTCAAACTGGGCGAGGTGCTGGATCGAAGCGAGAGGGAGCTGAAGGTCAATGACGAGGTGGAGTTTACCACGGTACAGGACACTACATTGTCAGCGGGCGGTGCCCGTGGTCAGACCCAATACTCAGCTATACGTATGATTCGACTTAGTCCAGGCACGGTCCAGTTTGAGGCCATCATAGAGCGGAATGTACTCGGATTTGTCACCAAGGAGGCTTCCTTCTCGTGGAACAACCGCAGTCCTGCCAACATGTCACCATCGGGCCAGGATAAATCTCAGGAGAGCGGAGTTATAGCGTACAACAATGTGGATGGAGCGTTTACCAAATCCATCATATACTTCACCAAGGATTGCTGTGATCCCAAGTCCATACCTAGCCTAGGGGACAAGGTTGAATTCAACGTGTGTCAAGTGAAGAGCAACAAGCAGCTGGTAGCCGTCGAGATTCGCAAGTTAGACCTGGTCCCTGCCGCAAgtcaacaacaaaaccaacaacaacagtacaacaccaacaacatgaTGCCCCAAGTCAGTTCCGCTTCAGCGCCTTCCTATAAATTCTATGGCAACACAGACAAACTAAAACTCGCATCTGACAACATGGGCAATGGGTTATCGCCCAGTAACGGCAACAGCGCCTACCTGACTGCCAATGGCGGCAATGTGGCTACTAGCGGCTCAAACGGTACGGGTCAAGGGTTTGGGACGCTGGCCCAGGGATTCATTGCGGCCCTGAAAGATGGGTTTGGCTTTATTGAGACTGACAAACATGACCGCGAGGTGTTCTTTCATTttagCAATTTTGACGGCGACGTCAACTCGCTGGAGCTTGGTCTCGAGGTCGAGTACACACTGGGCTCTCGTAATTCGACCGGGGGCTCGTGCCTGTCCGCCGAAAACGTCCGACCTCTCCCGAAGGGCACGATTCCCCACCAGGCCTCGGTGTCTAGTGACGCCCCTGTGTATGAGGGCATTGTGATGAGGCCCCTGCGCTCCGTGAACCCGGATCAGGCCCAGTATTCGGGCCTCGTTAAGGAGGGCACACCAGATGATGAAGGCAAAGAATACGAGTTCGGTATCCTGAGTTTGGTTCACAAGCGAGATCTGCTCCAAATAGGCGACCCTGTACAATTCCAAGTGGACTCTAACAATAGGGCTGCCAACCTAGTGGCCGTACGACAGAAGTTCAAGTCTACTGTCAACGCTATCAAAGGATTATTCGGATTCCTCAACTACGAGctggaagaggggaagaagttGTTCTTCCACACATCAGAAGTGAAGGATGGTGCCTCATTGGGTCCTGGAGATCAGGTTGAGTTTGTACTGGTAACCAATCACAGGACTGGAAAGAGTTCTGCCTGCAATGTCGTCAAAATCAATGAGAATCAGGTGCGACCAGAGCGCCTGATTTCGCGCCTGCGCACCACGTCACTCGAAGACAACGGCCCCAAGATGACGGTCACCCGACAGCCCCGCGGCCCTGATGGCAGTCGGGGCTTTGGTATGGCCCTCCGCGCTAAGCACACCCCGGGCGTAGTTTAA
Protein Sequence
MAPTIDSSPPLVQGGRIVLSEERVTGTVTTEIRAEGSTVGDTQGRISYENRGECFFLPYTKDDVEGNVTLRSGDKVSFQIATNPRGNLGASHVRLENPVHPVKYQGVVCSMKESFGFIERADVVKEIFFHFSESKPSTEEQLQLGDDVEFNIQTRNGKEVAVNLSLLPRGSVVFEDITEDIVKGQVLKPLERGLPRHPNTDPLPGRIRYRAPDHSEVEIPFGEKDQRGDFTLKHGDWVQFQVATDRRDSLRRATRISLLHESFLVSGERREQGVVTSLSPSEGYGWVRSAEREPRLAFKLGEVLDRSERELKVNDEVEFTTVQDTTLSAGGARGQTQYSAIRMIRLSPGTVQFEAIIERNVLGFVTKEASFSWNNRSPANMSPSGQDKSQESGVIAYNNVDGAFTKSIIYFTKDCCDPKSIPSLGDKVEFNVCQVKSNKQLVAVEIRKLDLVPAASQQQNQQQQYNTNNMMPQVSSASAPSYKFYGNTDKLKLASDNMGNGLSPSNGNSAYLTANGGNVATSGSNGTGQGFGTLAQGFIAALKDGFGFIETDKHDREVFFHFSNFDGDVNSLELGLEVEYTLGSRNSTGGSCLSAENVRPLPKGTIPHQASVSSDAPVYEGIVMRPLRSVNPDQAQYSGLVKEGTPDDEGKEYEFGILSLVHKRDLLQIGDPVQFQVDSNNRAANLVAVRQKFKSTVNAIKGLFGFLNYELEEGKKLFFHTSEVKDGASLGPGDQVEFVLVTNHRTGKSSACNVVKINENQVRPERLISRLRTTSLEDNGPKMTVTRQPRGPDGSRGFGMALRAKHTPGVV

Similar Transcription Factors

Sequence clustering based on sequence similarity using MMseqs2

100% Identity
-
90% Identity
-
80% Identity
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