Literature DB >> 27284007

Dual Function of Phosphoubiquitin in E3 Activation of Parkin.

Erik Walinda1, Daichi Morimoto2, Kenji Sugase2, Masahiro Shirakawa3.   

Abstract

Mutations in the gene encoding parkin, an auto-inhibited E3 ubiquitin ligase that functions in the clearance of damaged mitochondria, are the most common cause of autosomal recessive juvenile Parkinsonism. The mechanism regulating parkin activation remains poorly understood. Here we show, by using isothermal titration calorimetry, solution NMR, and fluorescence spectroscopy, that parkin can bind ubiquitin and phosphomimetic ubiquitin by recognizing the canonical hydrophobic patch and C terminus of ubiquitin. The affinity of parkin for both phosphomimetic and unmodified ubiquitin is markedly enhanced upon removal of the ubiquitin-like (UBL) domain of parkin. This suggests that the agonistic binding of ubiquitin to parkin in trans is counterbalanced by the antagonistic activity of the parkin UBL domain in cis Intriguingly, UBL binding is enthalpy-driven, whereas ubiquitin binding is driven by an increase in the total entropy of the system. These thermodynamic differences are explained by different chemistry in the ubiquitin- and UBL-binding pockets of parkin and, as shown by molecular dynamics simulations, are not a consequence of changes in protein conformational entropy. Indeed, comparison of conformational fluctuations reveals that the RING1-IBR element becomes considerably more rigid upon complex formation. A model of parkin activation is proposed in which E2∼Ub binding triggers large scale diffusional motion of the RING2 domain toward the ubiquitin-stabilized RING1-IBR assembly to complete formation of the active parkin-E2∼Ub transfer complex. Thus, ubiquitin plays a dual role in parkin activation by competing with the inhibitory UBL domain and stabilizing the active form of parkin.
© 2016 by The American Society for Biochemistry and Molecular Biology, Inc.

Entities:  

Keywords:  Parkinson disease; isothermal titration calorimetry (ITC); molecular dynamics; parkin; protein dynamics; protein-protein interaction; ubiquitin; ubiquitin ligase

Mesh:

Substances:

Year:  2016        PMID: 27284007      PMCID: PMC4974400          DOI: 10.1074/jbc.M116.728600

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


  55 in total

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5.  Ubiquitin is phosphorylated by PINK1 to activate parkin.

Authors:  Fumika Koyano; Kei Okatsu; Hidetaka Kosako; Yasushi Tamura; Etsu Go; Mayumi Kimura; Yoko Kimura; Hikaru Tsuchiya; Hidehito Yoshihara; Takatsugu Hirokawa; Toshiya Endo; Edward A Fon; Jean-François Trempe; Yasushi Saeki; Keiji Tanaka; Noriyuki Matsuda
Journal:  Nature       Date:  2014-06-04       Impact factor: 49.962

6.  Autoregulation of Parkin activity through its ubiquitin-like domain.

Authors:  Viduth K Chaugule; Lynn Burchell; Kathryn R Barber; Ateesh Sidhu; Simon J Leslie; Gary S Shaw; Helen Walden
Journal:  EMBO J       Date:  2011-06-21       Impact factor: 11.598

7.  Structure of the Parkin in-between-ring domain provides insights for E3-ligase dysfunction in autosomal recessive Parkinson's disease.

Authors:  Steven A Beasley; Ventzislava A Hristova; Gary S Shaw
Journal:  Proc Natl Acad Sci U S A       Date:  2007-02-27       Impact factor: 11.205

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Authors:  E Muñoz; E Tolosa; P Pastor; M J Martí; F Valldeoriola; J Campdelacreu; R Oliva
Journal:  J Neurol Neurosurg Psychiatry       Date:  2002-11       Impact factor: 10.154

9.  Improved side-chain torsion potentials for the Amber ff99SB protein force field.

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Journal:  Proteins       Date:  2010-06

10.  Structure of HHARI, a RING-IBR-RING ubiquitin ligase: autoinhibition of an Ariadne-family E3 and insights into ligation mechanism.

Authors:  David M Duda; Jennifer L Olszewski; Jonathan P Schuermann; Igor Kurinov; Darcie J Miller; Amanda Nourse; Arno F Alpi; Brenda A Schulman
Journal:  Structure       Date:  2013-05-23       Impact factor: 5.006

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  7 in total

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2.  Quantitative Middle-Down MS Analysis of Parkin-Mediated Ubiquitin Chain Assembly.

Authors:  Kirandeep K Deol; Stephen J Eyles; Eric R Strieter
Journal:  J Am Soc Mass Spectrom       Date:  2020-04-28       Impact factor: 3.109

Review 3.  Autophagy in Parkinson's Disease.

Authors:  Xu Hou; Jens O Watzlawik; Fabienne C Fiesel; Wolfdieter Springer
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4.  Impact of different ionization states of phosphorylated Serine-65 on ubiquitin structure and interactions.

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Journal:  Sci Rep       Date:  2018-02-08       Impact factor: 4.379

Review 5.  PINK1 and Parkin mitochondrial quality control: a source of regional vulnerability in Parkinson's disease.

Authors:  Preston Ge; Valina L Dawson; Ted M Dawson
Journal:  Mol Neurodegener       Date:  2020-03-13       Impact factor: 14.195

6.  Molecular dynamics simulations of human E3 ubiquitin ligase Parkin.

Authors:  Shi Qiu; Shun Zhu; Shan Xu; Yanyan Han; Wen Liu; Ji Zuo
Journal:  Mol Med Rep       Date:  2017-08-02       Impact factor: 2.952

Review 7.  The Role of Mitophagy in Regulating Cell Death.

Authors:  Sunao Li; Jiaxin Zhang; Chao Liu; Qianliang Wang; Jun Yan; Li Hui; Qiufang Jia; Haiyan Shan; Luyang Tao; Mingyang Zhang
Journal:  Oxid Med Cell Longev       Date:  2021-05-18       Impact factor: 6.543

  7 in total

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