Literature DB >> 30530678

Ubiquitin-dependent switch during assembly of the proteasomal ATPases mediated by Not4 ubiquitin ligase.

Xinyi Fu1, Vladyslava Sokolova1, Kristofor J Webb1, William Old1, Soyeon Park2.   

Abstract

In the proteasome holoenzyme, the hexameric ATPases (Rpt1-Rpt6) enable degradation of ubiquitinated proteins by unfolding and translocating them into the proteolytic core particle. During early-stage proteasome assembly, individual Rpt proteins assemble into the hexameric "Rpt ring" through binding to their cognate chaperones: Nas2, Hsm3, Nas6, and Rpn14. Here, we show that Rpt ring assembly employs a specific ubiquitination-mediated control. An E3 ligase, Not4, selectively ubiquitinates Rpt5 during Rpt ring assembly. To access Rpt5, Not4 competes with Nas2 until the penultimate step and then with Hsm3 at the final step of Rpt ring completion. Using the known Rpt-chaperone cocrystal structures, we show that Not4-mediated ubiquitination sites in Rpt5 are obstructed by Nas2 and Hsm3. Thus, Not4 can distinguish a Rpt ring that matures without these chaperones, based on its accessibility to Rpt5. Rpt5 ubiquitination does not destabilize the ring but hinders incorporation of incoming subunits-Rpn1 ubiquitin receptor and Ubp6 deubiquitinase-thereby blocking progression of proteasome assembly and ubiquitin regeneration from proteasome substrates. Our findings reveal an assembly checkpoint where Not4 monitors chaperone actions during hexameric ATPase ring assembly, thereby ensuring the accuracy of proteasome holoenzyme maturation.

Entities:  

Keywords:  AAA+ ATPase; Not4; assembly chaperone; checkpoint; proteasome

Mesh:

Substances:

Year:  2018        PMID: 30530678      PMCID: PMC6310792          DOI: 10.1073/pnas.1805353115

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  44 in total

1.  Dual functions of the Hsm3 protein in chaperoning and scaffolding regulatory particle subunits during the proteasome assembly.

Authors:  Marie-Bénédicte Barrault; Nicolas Richet; Chloe Godard; Brice Murciano; Benoît Le Tallec; Erwann Rousseau; Pierre Legrand; Jean-Baptiste Charbonnier; Marie-Hélène Le Du; Raphaël Guérois; Françoise Ochsenbein; Anne Peyroche
Journal:  Proc Natl Acad Sci U S A       Date:  2012-03-29       Impact factor: 11.205

2.  Structural basis for proteasome formation controlled by an assembly chaperone nas2.

Authors:  Tadashi Satoh; Yasushi Saeki; Takeshi Hiromoto; Ying-Hui Wang; Yoshinori Uekusa; Hirokazu Yagi; Hidehito Yoshihara; Maho Yagi-Utsumi; Tsunehiro Mizushima; Keiji Tanaka; Koichi Kato
Journal:  Structure       Date:  2014-03-27       Impact factor: 5.006

3.  Rpn1 provides adjacent receptor sites for substrate binding and deubiquitination by the proteasome.

Authors:  Yuan Shi; Xiang Chen; Suzanne Elsasser; Bradley B Stocks; Geng Tian; Byung-Hoon Lee; Yanhong Shi; Naixia Zhang; Stefanie A H de Poot; Fabian Tuebing; Shuangwu Sun; Jacob Vannoy; Sergey G Tarasov; John R Engen; Daniel Finley; Kylie J Walters
Journal:  Science       Date:  2016-02-19       Impact factor: 47.728

4.  The catalytic activity of Ubp6 enhances maturation of the proteasomal regulatory particle.

Authors:  Eri Sakata; Florian Stengel; Keisuke Fukunaga; Min Zhou; Yasushi Saeki; Friedrich Förster; Wolfgang Baumeister; Keiji Tanaka; Carol V Robinson
Journal:  Mol Cell       Date:  2011-06-10       Impact factor: 17.970

5.  Multiple associated proteins regulate proteasome structure and function.

Authors:  David S Leggett; John Hanna; Anna Borodovsky; Bernat Crosas; Marion Schmidt; Rohan T Baker; Thomas Walz; Hidde Ploegh; Daniel Finley
Journal:  Mol Cell       Date:  2002-09       Impact factor: 17.970

Review 6.  Structural biology of the proteasome.

Authors:  Erik Kish-Trier; Christopher P Hill
Journal:  Annu Rev Biophys       Date:  2013-02-13       Impact factor: 12.981

7.  Structure of the human 26S proteasome at a resolution of 3.9 Å.

Authors:  Andreas Schweitzer; Antje Aufderheide; Till Rudack; Florian Beck; Günter Pfeifer; Jürgen M Plitzko; Eri Sakata; Klaus Schulten; Friedrich Förster; Wolfgang Baumeister
Journal:  Proc Natl Acad Sci U S A       Date:  2016-06-24       Impact factor: 11.205

8.  Complete subunit architecture of the proteasome regulatory particle.

Authors:  Gabriel C Lander; Eric Estrin; Mary E Matyskiela; Charlene Bashore; Eva Nogales; Andreas Martin
Journal:  Nature       Date:  2012-01-11       Impact factor: 49.962

9.  Proteasome storage granules protect proteasomes from autophagic degradation upon carbon starvation.

Authors:  Richard S Marshall; Richard D Vierstra
Journal:  Elife       Date:  2018-04-06       Impact factor: 8.713

10.  Hexameric assembly of the proteasomal ATPases is templated through their C termini.

Authors:  Soyeon Park; Jeroen Roelofs; Woong Kim; Jessica Robert; Marion Schmidt; Steven P Gygi; Daniel Finley
Journal:  Nature       Date:  2009-06-11       Impact factor: 49.962

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  4 in total

1.  Assembly checkpoint of the proteasome regulatory particle is activated by coordinated actions of proteasomal ATPase chaperones.

Authors:  Asrafun Nahar; Vladyslava Sokolova; Suganya Sekaran; James D Orth; Soyeon Park
Journal:  Cell Rep       Date:  2022-06-07       Impact factor: 9.995

2.  Conserved Proline Residues in the Coiled Coil-OB Domain Linkers of Rpt Proteins Facilitate Eukaryotic Proteasome Base Assembly.

Authors:  Chin Leng Cheng; Michael K Wong; Yanjie Li; Mark Hochstrasser
Journal:  J Biol Chem       Date:  2021-04-13       Impact factor: 5.157

3.  The Ccr4-Not complex regulates TORC1 signaling and mitochondrial metabolism by promoting vacuole V-ATPase activity.

Authors:  Hongfeng Chen; P Winston Miller; Daniel L Johnson; R Nicholas Laribee
Journal:  PLoS Genet       Date:  2020-10-16       Impact factor: 5.917

Review 4.  Ccr4-Not as a mediator of environmental signaling: a jack of all trades and master of all.

Authors:  R Nicholas Laribee
Journal:  Curr Genet       Date:  2021-03-31       Impact factor: 2.695

  4 in total

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