Ubc9: Difference between revisions
From Proteopedia
Jump to navigationJump to search
No edit summary |
No edit summary |
||
| Line 1: | Line 1: | ||
<StructureSection load='1U9A' size='350' side='right' caption='Human Ubiquitin Conjugating Protein Ubc9 ' scene=''> | <StructureSection load='1U9A' size='350' side='right' caption='Human Ubiquitin Conjugating Protein Ubc9 ' scene=''> | ||
Ubc9 is a [[ubiquitin conjugating enzyme]] (E2) whose function involves the transfer of [[ubiquitin]] or [[small ubiquitin-like modifier]] (SUMO) from [[ubiquitin activating enzyme]] (E1) to its designated substrate. <scene name='69/694804/Ubc9_rainbow/1'>Ubc9</scene> is the only E2 enzyme specifically involved in SUMO transfer <ref name="crystal">PMID:9261152</ref><ref name="n terminal amino acids">PMID:25637535</ref>. | |||
== Structure == | == Structure == | ||
Murine/human | Murine/human Ubc9 exhibits a single domain structure consisting of both alpha helices and beta-pleated sheets (PDB: 1U9A). <scene name='69/694804/Cys93/6'>Cys93</scene> has been identified as the active residue and is located on a loop of amino acids (78-108) between beta sheet four and alpha helix two <ref name="crystal"/>. Amino acids surrounding the active site have been shown to play a role in catalysis of SUMO transfer to substrate via the suppression the the substrate lysine side chain pKa, which serves the purpose of nucleophile activation <ref name="lysine activation">PMID:16732283</ref>. | ||
A crystal structure has shown that Ubc9 is the central protein in the <font color='green'>SUMO</font>-<font color='F090A0'>RanGAP1</font>-<font color='blue'>Ubc9</font>-<font color='FFCC00'>Nup358</font> <scene name='69/694804/Rangap1-sumo-ubc9-nup538/1'>quaternary complex</scene> (PDB: 1Z5S), which forms in such a way as to enhance conjugation and transfer of the SUMO to substrate <ref name="quaternarycomplex">PMID:15931224</ref>. | A crystal structure has shown that Ubc9 is the central protein in the <font color='green'>SUMO</font>-<font color='F090A0'>RanGAP1</font>-<font color='blue'>Ubc9</font>-<font color='FFCC00'>Nup358</font> <scene name='69/694804/Rangap1-sumo-ubc9-nup538/1'>quaternary complex</scene> (PDB: 1Z5S), which forms in such a way as to enhance conjugation and transfer of the SUMO to substrate <ref name="quaternarycomplex">PMID:15931224</ref>. | ||
| Line 12: | Line 12: | ||
== Function == | == Function == | ||
Ubc9 is enzymatically involved in the SUMOylation process, as it is responsible for ligating the SUMO to the protein. If the reaction occurs ''in vitro'', Ubc9 will ligate the SUMO directly to the substrate, while if the reaction occurs ''in vivo'', the SUMO will be ligated to the conjugating enzyme (E3) and then ligated onto the substrate <ref name="protein control">PMID:25097219</ref>. Initially in the SUMOylation pathway, a thioester bond is formed between the SUMO and the E1 enzyme via an ATP-dependent reaction. Next, the SUMO is transferred to the active cysteine of the E2, in this case, Ubc9. Finally, the SUMO is ligated to a lysine side chain amino group of the substrate, during which an E3 enzyme may or may not be recruited. The use of E3 mediated transfer serves functions such as increasing the specificity for the substrate to be SUMOylated <ref name="ubcsumocomplex"/>. | |||
Ubc9 has been found to be predominantly nuclear, with its N-terminal amino acids being integral to its localization. Ubc9 nuclear accumulation is vital for normal SUMOylation rates <ref name="n terminal amino acids"/>. | Ubc9 has been found to be predominantly nuclear, with its N-terminal amino acids being integral to its localization. Ubc9 nuclear accumulation is vital for normal SUMOylation rates <ref name="n terminal amino acids"/>. | ||
| Line 20: | Line 20: | ||
SUMOylation has been shown to enhance processes such as DNA methyltransferse 1 enzymatic activity, which has a major regulatory effect on gene transcription <ref name="DNMT1 activity">PMID:19450230</ref>. The transcription factor AP-2 is SUMOylated by Ubc9, a process which decreases the transcription activation potential of AP-2, thus having an effect on gene transcription, and therefore likely having an effect on gene expression as well <ref name="factor AP2">PMID:12072432</ref>. | SUMOylation has been shown to enhance processes such as DNA methyltransferse 1 enzymatic activity, which has a major regulatory effect on gene transcription <ref name="DNMT1 activity">PMID:19450230</ref>. The transcription factor AP-2 is SUMOylated by Ubc9, a process which decreases the transcription activation potential of AP-2, thus having an effect on gene transcription, and therefore likely having an effect on gene expression as well <ref name="factor AP2">PMID:12072432</ref>. | ||
Noncovalent interactions between Ubc9 and SUMO distant from the active site have been shown to be critical in the formation of SUMO chains, upon which ''in vivo'' functions such as metabolic regulation and signaling are dependent. Mutagenesis studies on the noncovalent | Noncovalent interactions between Ubc9 and SUMO distant from the active site have been shown to be critical in the formation of SUMO chains, upon which ''in vivo'' functions such as metabolic regulation and signaling are dependent. Mutagenesis studies on the noncovalent Ubc9-SUMO1 complex have shown that ''Ubc9H20D'' and ''SUMO1E67R'' mutations cause inhibition of noncovalent interaction between the two, and thus inhibit complex formation. A similar interaction is seen in the ''Ubc9''-SUMO2 complex <ref name="ubcsumocomplex"/>. Lack of noncovalent interaction between ''Ubc9'' and SUMO2 has been shown to inhibit SUMO2 chain formation <ref name="ubcsumocomplex"/>. NMR studies of Ubc9 have demonstrated that noncovalent interactions between SUMO-1 and Ubc9 play a critical role in the transfer of SUMO-1 from the activating enzyme (E1) to the conjugating enzyme (E2) <ref name="noncovalent Nterminal">PMID:12924945</ref>. | ||
== Disease == | == Disease == | ||
Revision as of 01:58, 26 February 2015
| ||||||||||||