Sequence of UBC9_HUMAN
EC Number:6.3.2.19
EC Number
Recommended Name
Accession Code
Organism
No of amino acids
Molecular Weight [Da]
Source
Reaction
General information:
Sequence
0 MSGIALSRLA QERKAWRKDH PFGFVAVPTK NPDGTMNLMN WECAIPGKKG TPWEGGLFKL
60 RMLFKDDYPS SPPKCKFEPP LFHPNVYPSG TVCLSILEED KDWRPAITIK QILLGIQELL
120 NEPNIQDPAQ AEAYTIYCQN RVEYEKRVRA QAKKFAPS
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Sequence related references
Sequence Reference
Authors
Title
Journal
Volume
Pages
Year
PubMed ID
617609
Yasugi T.,Howley P.M.
Identification of the structural and functional human homolog of the yeast ubiquitin conjugating enzyme UBC9.
Nucleic Acids Res.
24
2005-2010
1996
617610
Tachibana M.,Iwata N.,Watanabe A.,Nobukuni Y.,Ploplis B.,Kajigaya S.
Assignment of the gene for a ubiquitin-conjugating enzyme (UBE2I) to human chromosome band 16p13.3 by in situ hybridization.
Cytogenet. Cell Genet.
75
222-223
1996
617611
Watanabe T.K.,Fujiwara T.,Kawai A.,Shimizu F.,Takami S.,Hirano H.,Okuno S.,Ozaki K.,Takeda S.,Shimada Y.,Nagata M.,Takaichi A.,Takahashi E.,Nakamura Y.,Shin S.
Cloning, expression, and mapping of UBE2I, a novel gene encoding a human homologue of yeast ubiquitin-conjugating enzymes which are critical for regulating the cell cycle.
Cytogenet. Cell Genet.
72
86-89
1996
617612
Masson M.,Menissier-de Murcia J.,Mattei M.-G.,de Murcia G.M.,Niedergang C.P.
Poly(ADP-ribose) polymerase interacts with a novel human ubiquitin conjugating enzyme: hUbc9.
Gene
190
287-296
1997
617613
Kovalenko O.V.,Plug A.W.,Haaf T.,Gonda D.K.,Ashley T.,Ward D.C.,Radding C.M.,Golub E.I.
Mammalian ubiquitin-conjugating enzyme Ubc9 interacts with Rad51 recombination protein and localizes in synaptonemal complexes.
Proc. Natl. Acad. Sci. U.S.A.
93
2958-2963
1996
617614
Jiang W.,Koltin Y.
Two-hybrid interaction of a human UBC9 homolog with centromere proteins of Saccharomyces cerevisiae.
Mol. Gen. Genet.
251
153-160
1996
617615
Wang Z.-Y.,Qiu Q.,Seufert W.,Taguchi T.,Testa J.R.,Whitmore S.A.,Callen D.F.,Welsh D.,Shenk T.,Deuel T.F.
Molecular cloning of the cDNA and chromosome localization of the gene for human ubiquitin-conjugating enzyme 9.
J. Biol. Chem.
271
24811-24816
1996
617617
Hahn S.L.,Criqui-Filipe P.,Wasylyk B.
Modulation of ETS-1 transcriptional activity by huUBC9, a ubiquitin-conjugating enzyme.
Oncogene
15
1489-1495
1997
617620
Daniels R.J.,Peden J.F.,Lloyd C.,Horsley S.W.,Clark K.,Tufarelli C.,Kearney L.,Buckle V.J.,Doggett N.A.,Flint J.,Higgs D.R.
Sequence, structure and pathology of the fully annotated terminal 2 Mb of the short arm of human chromosome 16.
Hum. Mol. Genet.
10
339-352
2001
617622
Martin J.,Han C.,Gordon L.A.,Terry A.,Prabhakar S.,She X.,Xie G.,Hellsten U.,Chan Y.M.,Altherr M.,Couronne O.,Aerts A.,Bajorek E.,Black S.,Blumer H.,Branscomb E.,Brown N.C.,Bruno W.J.,Buckingham J.M.,Callen D.F.,Campbell C.S.,Campbell M.L.,Campbell E.W.,Caoile C.,Challacombe J.F.,Chasteen L.A.,Chertkov O.,Chi H.C.,Christensen M.,Clark L.M.,Cohn J.D.,Denys M.,Detter J.C.,Dickson M.,Dimitrijevic-Bussod M.,Escobar J.,Fawcett J.J.,Flowers D.,Fotopulos D.,Glavina T.,Gomez M.,Gonzales E.,Goodstein D.,Goodwin L.A.,Grady D.L.,Grigoriev I.,Groza M.,Hammon N.,Hawkins T.,Haydu L.,Hildebrand C.E.,Huang W.,Israni S.,Jett J.,Jewett P.B.,Kadner K.,Kimball H.,Kobayashi A.,Krawczyk M.-C.,Leyba T.,Longmire J.L.,Lopez F.,Lou Y.,Lowry S.,Ludeman T.,Manohar C.F.,Mark G.A.,McMurray K.L.,Meincke L.J.,Morgan J.,Moyzis R.K.,Mundt M.O.,Munk A.C.,Nandkeshwar R.D.,Pitluck S.,Pollard M.,Predki P.,Parson-Quintana B.,Ramirez L.,Rash S.,Retterer J.,Ricke D.O.,Robinson D.L.,Rodriguez A.,Salamov A.,Saunders E.H.,Scott D.,Shough T.,Stallings R.L.,Stalvey M.,Sutherland R.D.,Tapia R.,Tesmer J.G.,Thayer N.,Thompson L.S.,Tice H.,Torney D.C.,Tran-Gyamfi M.,Tsai M.,Ulanovsky L.E.,Ustaszewska A.,Vo N.,White P.S.,Williams A.L.,Wills P.L.,Wu J.-R.,Wu K.,Yang J.,DeJong P.,Bruce D.,Doggett N.A.,Deaven L.,Schmutz J.,Grimwood J.,Richardson P.,Rokhsar D.S.,Eichler E.E.,Gilna P.,Lucas S.M.,Myers R.M.,Rubin E.M.,Pennacchio L.A.
The sequence and analysis of duplication-rich human chromosome 16.
Nature
432
988-994
2004
617623
The status, quality, and expansion of the NIH full-length cDNA project: the Mammalian Gene Collection (MGC).
Genome Res.
14
2121-2127
2004
617624
Hateboer G.,Hijmans E.M.,Nooij J.B.D.,Schlenker S.,Jentsch S.,Bernards R.
mUBC9, a novel adenovirus E1A-interacting protein that complements a yeast cell cycle defect.
J. Biol. Chem.
271
25906-25911
1996
617625
Hu G.,Zhang S.,Vidal M.,Baer J.L.,Xu T.,Fearon E.R.
Mammalian homologs of seven in absentia regulate DCC via the ubiquitin-proteasome pathway.
Genes Dev.
11
2701-2714
1997
617626
Poukka H.,Aarnisalo P.,Karvonen U.,Palvimo J.J.,Jaenne O.A.
Ubc9 interacts with the androgen receptor and activates receptor-dependent transcription.
J. Biol. Chem.
274
19441-19446
1999
617627
Shi Y.,Zou M.,Farid N.R.,Paterson M.C.
Association of FHIT (fragile histidine triad), a candidate tumour suppressor gene, with the ubiquitin-conjugating enzyme hUBC9.
Biochem. J.
352
443-448
2000
617628
Tatham M.H.,Jaffray E.,Vaughan O.A.,Desterro J.M.P.,Botting C.H.,Naismith J.H.,Hay R.T.
Polymeric chains of SUMO-2 and SUMO-3 are conjugated to protein substrates by SAE1/SAE2 and Ubc9.
J. Biol. Chem.
276
35368-35374
2001
617629
Eloranta J.J.,Hurst H.C.
Transcription factor AP-2 interacts with the SUMO-conjugating enzyme UBC9 and is sumolated in vivo.
J. Biol. Chem.
277
30798-30804
2002
617630
Tatham M.H.,Chen Y.,Hay R.T.
Role of two residues proximal to the active site of Ubc9 in substrate recognition by the Ubc9.SUMO-1 thiolester complex.
Biochemistry
42
3168-3179
2003
617631
Maeda A.,Lee B.H.,Yoshimatsu K.,Saijo M.,Kurane I.,Arikawa J.,Morikawa S.
The intracellular association of the nucleocapsid protein (NP) of hantaan virus (HTNV) with small ubiquitin-like modifier-1 (SUMO-1) conjugating enzyme 9 (Ubc9).
Virology
305
288-297
2003
617632
Tatham M.H.,Kim S.,Yu B.,Jaffray E.,Song J.,Zheng J.,Rodriguez M.S.,Hay R.T.,Chen Y.
Role of an N-terminal site of Ubc9 in SUMO-1, -2, and -3 binding and conjugation.
Biochemistry
42
9959-9969
2003
617633
Pichler A.,Knipscheer P.,Saitoh H.,Sixma T.K.,Melchior F.
The RanBP2 SUMO E3 ligase is neither HECT- nor RING-type.
Nat. Struct. Mol. Biol.
11
984-991
2004
617634
Kim Y.E.,Kim D.Y.,Lee J.M.,Kim S.T.,Han T.H.,Ahn J.H.
Requirement of the coiled-coil domain of PML-RARalpha oncoprotein for localization, sumoylation, and inhibition of monocyte differentiation.
Biochem. Biophys. Res. Commun.
330
746-754
2005
617635
Tatham M.H.,Kim S.,Jaffray E.,Song J.,Chen Y.,Hay R.T.
Unique binding interactions among Ubc9, SUMO and RanBP2 reveal a mechanism for SUMO paralog selection.
Nat. Struct. Mol. Biol.
12
67-74
2005
617636
Li T.,Santockyte R.,Shen R.-F.,Tekle E.,Wang G.,Yang D.C.H.,Chock P.B.
A general approach for investigating enzymatic pathways and substrates for ubiquitin-like modifiers.
Arch. Biochem. Biophys.
453
70-74
2006
617637
Pan X.,Li H.,Zhang P.,Jin B.,Man J.,Tian L.,Su G.,Zhao J.,Li W.,Liu H.,Gong W.,Zhou T.,Zhang X.
Ubc9 interacts with SOX4 and represses its transcriptional activity.
Biochem. Biophys. Res. Commun.
344
727-734
2006
617638
Tomoiu A.,Gravel A.,Tanguay R.M.,Flamand L.
Functional interaction between human herpesvirus 6 immediate-early 2 protein and ubiquitin-conjugating enzyme 9 in the absence of sumoylation.
J. Virol.
80
10218-10228
2006
617639
Carbia-Nagashima A.,Gerez J.,Perez-Castro C.,Paez-Pereda M.,Silberstein S.,Stalla G.K.,Holsboer F.,Arzt E.
RSUME, a small RWD-containing protein, enhances SUMO conjugation and stabilizes HIF-1alpha during hypoxia.
Cell
131
309-323
2007
617640
Cheng Z.,Ke Y.,Ding X.,Wang F.,Wang H.,Wang W.,Ahmed K.,Liu Z.,Xu Y.,Aikhionbare F.,Yan H.,Liu J.,Xue Y.,Yu J.,Powell M.,Liang S.,Wu Q.,Reddy S.E.,Hu R.,Huang H.,Jin C.,Yao X.
Functional characterization of TIP60 sumoylation in UV-irradiated DNA damage response.
Oncogene
27
931-941
2008
617641
Gauci S.,Helbig A.O.,Slijper M.,Krijgsveld J.,Heck A.J.,Mohammed S.
Lys-N and trypsin cover complementary parts of the phosphoproteome in a refined SCX-based approach.
Anal. Chem.
81
4493-4501
2009
617642
Lee B.,Muller M.T.
SUMOylation enhances DNA methyltransferase 1 activity.
Biochem. J.
421
449-461
2009
617643
Kuo F.T.,Bentsi-Barnes I.K.,Barlow G.M.,Bae J.,Pisarska M.D.
Sumoylation of forkhead L2 by Ubc9 is required for its activity as a transcriptional repressor of the steroidogenic acute regulatory gene.
Cell. Signal.
21
1935-1944
2009
617644
Figueroa-Romero C.,Iniguez-Lluhi J.A.,Stadler J.,Chang C.R.,Arnoult D.,Keller P.J.,Hong Y.,Blackstone C.,Feldman E.L.
SUMOylation of the mitochondrial fission protein Drp1 occurs at multiple nonconsensus sites within the B domain and is linked to its activity cycle.
FASEB J.
23
3917-3927
2009
617645
Chang T.H.,Kubota T.,Matsuoka M.,Jones S.,Bradfute S.B.,Bray M.,Ozato K.
Ebola Zaire virus blocks type I interferon production by exploiting the host SUMO modification machinery.
PLoS Pathog.
5
e1000493-e1000493
2009
617646
Choudhary C.,Kumar C.,Gnad F.,Nielsen M.L.,Rehman M.,Walther T.C.,Olsen J.V.,Mann M.
Lysine acetylation targets protein complexes and co-regulates major cellular functions.
Science
325
834-840
2009
617647
Yousef A.F.,Fonseca G.J.,Pelka P.,Ablack J.N.,Walsh C.,Dick F.A.,Bazett-Jones D.P.,Shaw G.S.,Mymryk J.S.
Identification of a molecular recognition feature in the E1A oncoprotein that binds the SUMO conjugase UBC9 and likely interferes with polySUMOylation.
Oncogene
29
4693-4704
2010
617648
Burkard T.R.,Planyavsky M.,Kaupe I.,Breitwieser F.P.,Buerckstuemmer T.,Bennett K.L.,Superti-Furga G.,Colinge J.
Initial characterization of the human central proteome.
BMC Syst. Biol.
5
17-17
2011
617649
Cong L.,Pakala S.B.,Ohshiro K.,Li D.Q.,Kumar R.
SUMOylation and SUMO-interacting motif (SIM) of metastasis tumor antigen 1 (MTA1) synergistically regulate its transcriptional repressor function.
J. Biol. Chem.
286
43793-43808
2011
617650
Bentz G.L.,Whitehurst C.B.,Pagano J.S.
Epstein-Barr virus latent membrane protein 1 (LMP1) C-terminal-activating region 3 contributes to LMP1-mediated cellular migration via its interaction with Ubc9.
J. Virol.
85
10144-10153
2011
617651
Bennett R.L.,Pan Y.,Christian J.,Hui T.,May W.S. Jr.
The RAX/PACT-PKR stress response pathway promotes p53 sumoylation and activation, leading to G(1) arrest.
Cell Cycle
11
407-417
2012
617652
Su Y.F.,Yang T.,Huang H.,Liu L.F.,Hwang J.
Phosphorylation of Ubc9 by Cdk1 enhances SUMOylation activity.
PLoS ONE
7
E34250-E34250
2012
617653
Van Damme P.,Lasa M.,Polevoda B.,Gazquez C.,Elosegui-Artola A.,Kim D.S.,De Juan-Pardo E.,Demeyer K.,Hole K.,Larrea E.,Timmerman E.,Prieto J.,Arnesen T.,Sherman F.,Gevaert K.,Aldabe R.
N-terminal acetylome analyses and functional insights of the N-terminal acetyltransferase NatB.
Proc. Natl. Acad. Sci. U.S.A.
109
12449-12454
2012
617654
Richard P.,Feng S.,Manley J.L.
A SUMO-dependent interaction between Senataxin and the exosome, disrupted in the neurodegenerative disease AOA2, targets the exosome to sites of transcription-induced DNA damage.
Genes Dev.
27
2227-2232
2013
617655
Oh Y.,Chung K.C.
UHRF2, a ubiquitin E3 ligase, acts as a small ubiquitin-like modifier E3 ligase for zinc finger protein 131.
J. Biol. Chem.
288
9102-9111
2013
617656
Zhou H.,Di Palma S.,Preisinger C.,Peng M.,Polat A.N.,Heck A.J.,Mohammed S.
Toward a comprehensive characterization of a human cancer cell phosphoproteome.
J. Proteome Res.
12
260-271
2013
617657
Druker J.,Liberman A.C.,Antunica-Noguerol M.,Gerez J.,Paez-Pereda M.,Rein T.,Iniguez-Lluhi J.A.,Holsboer F.,Arzt E.
RSUME enhances glucocorticoid receptor SUMOylation and transcriptional activity.
Mol. Cell. Biol.
33
2116-2127
2013
617658
Gerez J.,Fuertes M.,Tedesco L.,Silberstein S.,Sevlever G.,Paez-Pereda M.,Holsboer F.,Turjanski A.G.,Arzt E.
In silico structural and functional characterization of the RSUME splice variants.
PLoS ONE
8
E57795-E57795
2013
617659
Bian Y.,Song C.,Cheng K.,Dong M.,Wang F.,Huang J.,Sun D.,Wang L.,Ye M.,Zou H.
An enzyme assisted RP-RPLC approach for in-depth analysis of human liver phosphoproteome.
J. Proteomics
96
253-262
2014
617660
Hendriks I.A.,D'Souza R.C.,Yang B.,Verlaan-de Vries M.,Mann M.,Vertegaal A.C.
Uncovering global SUMOylation signaling networks in a site-specific manner.
Nat. Struct. Mol. Biol.
21
927-936
2014
617661
Impens F.,Radoshevich L.,Cossart P.,Ribet D.
Mapping of SUMO sites and analysis of SUMOylation changes induced by external stimuli.
Proc. Natl. Acad. Sci. U.S.A.
111
12432-12437
2014
617662
Hendriks I.A.,Treffers L.W.,Verlaan-de Vries M.,Olsen J.V.,Vertegaal A.C.
SUMO-2 orchestrates chromatin modifiers in response to DNA damage.
Cell Rep.
10
1778-1791
2015
617663
Xiao Z.,Chang J.G.,Hendriks I.A.,Sigurdsson J.O.,Olsen J.V.,Vertegaal A.C.
System-wide analysis of SUMOylation dynamics in response to replication stress reveals novel small ubiquitin-like modified target proteins and acceptor lysines relevant for genome stability.
Mol. Cell. Proteomics
14
1419-1434
2015
617664
Vaca Jacome A.S.,Rabilloud T.,Schaeffer-Reiss C.,Rompais M.,Ayoub D.,Lane L.,Bairoch A.,Van Dorsselaer A.,Carapito C.
N-terminome analysis of the human mitochondrial proteome.
Proteomics
15
2519-2524
2015
617665
Sin Y.,Tanaka K.,Saijo M.
The C-terminal Region and SUMOylation of Cockayne Syndrome Group B Protein Play Critical Roles in Transcription-coupled Nucleotide Excision Repair.
J. Biol. Chem.
291
1387-1397
2016
617666
Yamashita D.,Moriuchi T.,Osumi T.,Hirose F.
Transcription Factor hDREF Is a Novel SUMO E3 Ligase of Mi2alpha.
J. Biol. Chem.
291
11619-11634
2016
617667
Liang Y.C.,Lee C.C.,Yao Y.L.,Lai C.C.,Schmitz M.L.,Yang W.M.
SUMO5, a novel poly-sumo isoform, regulates pml nuclear bodies.
Sci. Rep.
6
26509-26509
2016
617668
Hendriks I.A.,Lyon D.,Young C.,Jensen L.J.,Vertegaal A.C.,Nielsen M.L.
Site-specific mapping of the human SUMO proteome reveals co-modification with phosphorylation.
Nat. Struct. Mol. Biol.
24
325-336
2017
617669
Chen J.,Li G.,He H.,Li X.,Niu W.,Cao D.,Shen A.
Sumoylation of the Carboxy-Terminal of Human Cytomegalovirus DNA Polymerase Processivity Factor UL44 Attenuates Viral DNA Replication.
Front. Microbiol.
12
652719-652719
2021
617670
Tong H.,Hateboer G.,Perrakis A.,Bernards R.,Sixma T.K.
Crystal structure of murine/human Ubc9 provides insight into the variability of the ubiquitin-conjugating system.
J. Biol. Chem.
272
21381-21387
1997
617671
Bernier-Villamor V.,Sampson D.A.,Matunis M.J.,Lima C.D.
Structural basis for E2-mediated SUMO conjugation revealed by a complex between ubiquitin-conjugating enzyme Ubc9 and RanGAP1.
Cell
108
345-356
2002
617672
Reverter D.,Lima C.D.
Insights into E3 ligase activity revealed by a SUMO-RanGAP1-Ubc9-Nup358 complex.
Nature
435
687-692
2005
617673
Yunus A.A.,Lima C.D.
Lysine activation and functional analysis of E2-mediated conjugation in the SUMO pathway.
Nat. Struct. Mol. Biol.
13
491-499
2006
617674
Capili A.D.,Lima C.D.
Structure and analysis of a complex between SUMO and Ubc9 illustrates features of a conserved E2-Ubl interaction.
J. Mol. Biol.
369
608-618
2007
617675
Sekiyama N.,Arita K.,Ikeda Y.,Hashiguchi K.,Ariyoshi M.,Tochio H.,Saitoh H.,Shirakawa M.
Structural basis for regulation of poly-SUMO chain by a SUMO-like domain of Nip45.
Proteins
78
1491-1502
2010
617676
Grunwald M.,Bono F.
Structure of Importin13-Ubc9 complex: nuclear import and release of a key regulator of sumoylation.
EMBO J.
30
427-438
2011
617677
Alontaga A.Y.,Ambaye N.D.,Li Y.J.,Vega R.,Chen C.H.,Bzymek K.P.,Williams J.C.,Hu W.,Chen Y.
RWD domain as an E2 (Ubc9)-interaction module.
J. Biol. Chem.
290
16550-16559
2015
617678
Cappadocia L.,Pichler A.,Lima C.D.
Structural basis for catalytic activation by the human ZNF451 SUMO E3 ligase.
Nat. Struct. Mol. Biol.
22
968-975
2015
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