Literature DB >> 25471371

Differential ubiquitin binding by the acidic loops of Ube2g1 and Ube2r1 enzymes distinguishes their Lys-48-ubiquitylation activities.

Yun-Seok Choi1, Yun-Ju Lee2, Seo-Yeon Lee2, Lei Shi3, Jung-Hye Ha4, Hae-Kap Cheong2, Chaejoon Cheong4, Robert E Cohen5, Kyoung-Seok Ryu6.   

Abstract

The ubiquitin E2 enzymes, Ube2g1 and Ube2r1, are able to synthesize Lys-48-linked polyubiquitins without an E3 ligase but how that is accomplished has been unclear. Although both E2s contain essential acidic loops, only Ube2r1 requires an additional C-terminal extension (184-196) for efficient Lys-48-ubiquitylation activity. The presence of Tyr-102 and Tyr-104 in the Ube2g1 acidic loop enhanced both ubiquitin binding and Lys-48-ubiquitylation and distinguished Ube2g1 from the otherwise similar truncated Ube2r1(1-183) (Ube2r1C). Replacement of Gln-105-Ser-106-Gly-107 in the acidic loop of Ube2r1C (Ube2r1C(YGY)) by the corresponding residues from Ube2g1 (Tyr-102-Gly-103-Tyr-104) increased Lys-48-ubiquitylation activity and ubiquitin binding. Two E2∼UB thioester mimics (oxyester and disulfide) were prepared to characterize the ubiquitin binding activity of the acidic loop. The oxyester but not the disulfide derivative was found to be a functional equivalent of the E2∼UB thioester. The ubiquitin moiety of the Ube2r1C(C93S)-[(15)N]UB(K48R) oxyester displayed two-state conformational exchange, whereas the Ube2r1C(C93S/YGY)-[(15)N]UB(K48R) oxyester showed predominantly one state. Together with NMR studies that compared UB(K48R) oxyesters of the wild-type and the acidic loop mutant (Y102G/Y104G) forms of Ube2g1, in vitro ubiquitylation assays with various mutation forms of the E2s revealed how the intramolecular interaction between the acidic loop and the attached donor ubiquitin regulates Lys-48-ubiquitylation activity.
© 2015 by The American Society for Biochemistry and Molecular Biology, Inc.

Entities:  

Keywords:  Nuclear Magnetic Resonance (NMR); Structural Biology; Ubiquitin; Ubiquitin-conjugating Enzyme (E2 enzyme); Ubiquitylation (ubiquitination)

Mesh:

Substances:

Year:  2014        PMID: 25471371      PMCID: PMC4303676          DOI: 10.1074/jbc.M114.624809

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  38 in total

1.  NMR structure determination and investigation using a reduced proton (REDPRO) labeling strategy for proteins.

Authors:  Alexander Shekhtman; Ranajeet Ghose; Michael Goger; David Cowburn
Journal:  FEBS Lett       Date:  2002-07-31       Impact factor: 4.124

2.  Direct characterization of E2-dependent target specificity and processivity using an artificial p27-linker-E2 ubiquitination system.

Authors:  Kyoung-Seok Ryu; Yun-Seok Choi; Junsang Ko; Seong-Ock Kim; Hyun Jung Kim; Hae-Kap Cheong; Young Ho Jeon; Byong-Seok Choi; Chaejoon Cheong
Journal:  BMB Rep       Date:  2008-12-31       Impact factor: 4.778

3.  60th residues of ubiquitin and Nedd8 are located out of E2-binding surfaces, but are important for K48 ubiquitin-linkage.

Authors:  Yun-Seok Choi; Young Ho Jeon; Kyoung-Seok Ryu; Chaejoon Cheong
Journal:  FEBS Lett       Date:  2009-09-24       Impact factor: 4.124

4.  Priming and extending: a UbcH5/Cdc34 E2 handoff mechanism for polyubiquitination on a SCF substrate.

Authors:  Kenneth Wu; Jordan Kovacev; Zhen-Qiang Pan
Journal:  Mol Cell       Date:  2010-03-26       Impact factor: 17.970

5.  Crystal structure of UbcH5b~ubiquitin intermediate: insight into the formation of the self-assembled E2~Ub conjugates.

Authors:  Eri Sakata; Tadashi Satoh; Shunsuke Yamamoto; Yoshiki Yamaguchi; Maho Yagi-Utsumi; Eiji Kurimoto; Keiji Tanaka; Soichi Wakatsuki; Koichi Kato
Journal:  Structure       Date:  2010-01-13       Impact factor: 5.006

6.  Structure of a conjugating enzyme-ubiquitin thiolester intermediate reveals a novel role for the ubiquitin tail.

Authors:  K S Hamilton; M J Ellison; K R Barber; R S Williams; J T Huzil; S McKenna; C Ptak; M Glover; G S Shaw
Journal:  Structure       Date:  2001-10       Impact factor: 5.006

7.  Solution structure and dynamics of human ubiquitin conjugating enzyme Ube2g2.

Authors:  Tingting Ju; William Bocik; Ananya Majumdar; Joel R Tolman
Journal:  Proteins       Date:  2010-04

8.  A proteomics approach to understanding protein ubiquitination.

Authors:  Junmin Peng; Daniel Schwartz; Joshua E Elias; Carson C Thoreen; Dongmei Cheng; Gerald Marsischky; Jeroen Roelofs; Daniel Finley; Steven P Gygi
Journal:  Nat Biotechnol       Date:  2003-07-20       Impact factor: 54.908

9.  Insights into ubiquitin transfer cascades from a structure of a UbcH5B approximately ubiquitin-HECT(NEDD4L) complex.

Authors:  Hari B Kamadurai; Judith Souphron; Daniel C Scott; David M Duda; Darcie J Miller; Daniel Stringer; Robert C Piper; Brenda A Schulman
Journal:  Mol Cell       Date:  2009-12-25       Impact factor: 17.970

10.  Rapid E2-E3 assembly and disassembly enable processive ubiquitylation of cullin-RING ubiquitin ligase substrates.

Authors:  Gary Kleiger; Anjanabha Saha; Steven Lewis; Brian Kuhlman; Raymond J Deshaies
Journal:  Cell       Date:  2009-11-25       Impact factor: 41.582

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  13 in total

1.  The RING domain of mitochondrial E3 ubiquitin ligase 1 and its complex with Ube2D2: crystallization and X-ray diffraction.

Authors:  Sang Ok Lee; Chong Kil Lee; Kyoung Seok Ryu; Seung Wook Chi
Journal:  Acta Crystallogr F Struct Biol Commun       Date:  2020-01-01       Impact factor: 1.056

2.  Structural and Functional Analysis of Ubiquitin-based Inhibitors That Target the Backsides of E2 Enzymes.

Authors:  Pankaj Garg; Derek F Ceccarelli; Alexander F A Keszei; Igor Kurinov; Frank Sicheri; Sachdev S Sidhu
Journal:  J Mol Biol       Date:  2019-10-19       Impact factor: 5.469

3.  Mechanism of Lysine 48 Selectivity during Polyubiquitin Chain Formation by the Ube2R1/2 Ubiquitin-Conjugating Enzyme.

Authors:  Spencer Hill; Joseph S Harrison; Steven M Lewis; Brian Kuhlman; Gary Kleiger
Journal:  Mol Cell Biol       Date:  2016-05-16       Impact factor: 4.272

4.  Dynamic changes in the mouse skeletal muscle proteome during denervation-induced atrophy.

Authors:  Franziska Lang; Sriram Aravamudhan; Hendrik Nolte; Clara Türk; Soraya Hölper; Stefan Müller; Stefan Günther; Bert Blaauw; Thomas Braun; Marcus Krüger
Journal:  Dis Model Mech       Date:  2017-05-25       Impact factor: 5.758

Review 5.  Ubiquitin-like Protein Conjugation: Structures, Chemistry, and Mechanism.

Authors:  Laurent Cappadocia; Christopher D Lima
Journal:  Chem Rev       Date:  2017-02-24       Impact factor: 60.622

6.  UBE2G1 governs the destruction of cereblon neomorphic substrates.

Authors:  Stephanie Weng; Mary Matyskiela; Gang Lu; Xinde Zheng; Wei Fang; Scott Wood; Christine Surka; Reina Mizukoshi; Chin-Chun Lu; Derek Mendy; In Sock Jang; Kai Wang; Mathieu Marella; Suzana Couto; Brian Cathers; James Carmichael; Philip Chamberlain; Mark Rolfe
Journal:  Elife       Date:  2018-09-20       Impact factor: 8.140

7.  The molecular basis of lysine 48 ubiquitin chain synthesis by Ube2K.

Authors:  Adam J Middleton; Catherine L Day
Journal:  Sci Rep       Date:  2015-11-23       Impact factor: 4.379

Review 8.  E2 enzymes: more than just middle men.

Authors:  Mikaela D Stewart; Tobias Ritterhoff; Rachel E Klevit; Peter S Brzovic
Journal:  Cell Res       Date:  2016-03-22       Impact factor: 25.617

9.  Who with whom: functional coordination of E2 enzymes by RING E3 ligases during poly-ubiquitylation.

Authors:  Christian Lips; Tobias Ritterhoff; Annika Weber; Maria K Janowska; Mandy Mustroph; Thomas Sommer; Rachel E Klevit
Journal:  EMBO J       Date:  2020-10-05       Impact factor: 11.598

Review 10.  Ubiquitination in the ERAD Process.

Authors:  Anna Lopata; Andreas Kniss; Frank Löhr; Vladimir V Rogov; Volker Dötsch
Journal:  Int J Mol Sci       Date:  2020-07-28       Impact factor: 5.923

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