Q853W0
Gene name |
206 |
Protein name |
Protein Ku |
Names |
Gp206, Omega-Ku |
Species |
Mycobacterium phage Omega (Mycobacteriophage Omega) |
KEGG Pathway |
vg:1260006 |
EC number |
|
Protein Class |
|
Descriptions
The autoinhibited protein was predicted that may have potential autoinhibitory elements via cis-regPred.
Autoinhibitory domains (AIDs)
Target domain |
|
Relief mechanism |
|
Assay |
cis-regPred |
Accessory elements
No accessory elements
Autoinhibited structure
Activated structure
0 structures for Q853W0
| Entry ID | Method | Resolution | Chain | Position | Source |
|---|
No variants for Q853W0
| Variant ID(s) | Position | Change | Description | Diseaes Association | Provenance |
|---|---|---|---|---|---|
| No variants for Q853W0 | |||||
No associated diseases with Q853W0
1 regional properties for Q853W0
| Type | Name | Position | InterPro Accession |
|---|---|---|---|
| domain | Ku70/Ku80 beta-barrel domain | 11 - 188 | IPR006164 |
No GO annotations of cellular component
| Name | Definition |
|---|---|
| No GO annotations for cellular component |
2 GO annotations of molecular function
| Name | Definition |
|---|---|
| acyltransferase activity | Catalysis of the transfer of an acyl group from one compound (donor) to another (acceptor). |
| double-stranded DNA binding | Binding to double-stranded DNA. |
4 GO annotations of biological process
| Name | Definition |
|---|---|
| double-strand break repair via nonhomologous end joining | The repair of a double-strand break in DNA in which the two broken ends are rejoined with little or no sequence complementarity. Information at the DNA ends may be lost due to the modification of broken DNA ends. This term covers instances of separate pathways, called classical (or canonical) and alternative nonhomologous end joining (C-NHEJ and A-NHEJ). These in turn may further branch into sub-pathways, but evidence is still unclear. |
| evasion by virus of DNA end degradation | A process by which a virus evades and ends degradation of its DNA when free viral-DNA ends are exposed as part of its life-cycle. For example, some bacteriophages encode proteins that bind to free viral DNA ends, protecting them from degradation by host exonucleases. |
| viral entry into host cell | The process that occurs after viral attachment by which a virus, or viral nucleic acid, breaches the plasma membrane or cell envelope and enters the host cell. The process ends when the viral nucleic acid is released into the host cell cytoplasm. |
| viral genome circularization | The circularization of a viral genome following infection of a host cell. This is common amongst bacterial viruses to protect the viral genome ends from nucleases, to convert the linear genome to an integrative precursor or to give rise to the replicative form of the genome. It can be mediated by covalent closure of the DNA sticky ends, recombinaison between redundant terminal sequences or via the binding of a protein at the viral DNA extremities. |
No homologous proteins in AiPD
| UniProt AC | Gene Name | Protein Name | Species | Evidence Code |
|---|---|---|---|---|
| No homologous proteins | ||||
| 10 | 20 | 30 | 40 | 50 | 60 |
| MRAVWTGAVN | FGLVNVPVKM | YAATEEHDLK | GHLAHVQDGG | RIRYHKVCET | CGEQVHTADL |
| 70 | 80 | 90 | 100 | 110 | 120 |
| GKVFEVDGQT | ALLTDEDLAE | LPSENNKVID | VVEFVPAGEV | DPILLDKPYY | LNAEGSVRPY |
| 130 | 140 | 150 | 160 | 170 | 180 |
| ALLARTLSDA | DKVAIVRVTL | RSKEHLAVLR | VTGKNEVLTL | QTLRWPDEVR | EPDFPKLDNK |
| 190 | 200 | 210 | 220 | 230 | 240 |
| PELSEAELKV | AAMLVDELSA | PFNPDKHQDT | YKVELRALVE | SKLEPVEVPE | DVSGLLAKLE |
| 250 | 260 | 270 | 280 | ||
| ASVKPKQAKP | DIRTWAKAQG | FKISARGRIP | KDIVDKYEGA | MA |