Literature DB >> 21878652

Structural defects in the regulatory particle-core particle interface of the proteasome induce a novel proteasome stress response.

Soyeon Park1, Woong Kim, Geng Tian, Steven P Gygi, Daniel Finley.   

Abstract

Proteasomes consist of a 19-subunit regulatory particle (RP) and 28-subunit core particle (CP), an α(7)β(7)β(7)α(7) structure. The RP recognizes substrates and translocates them into the CP for degradation. At the RP-CP interface, a heterohexameric Rpt ring joins to a heteroheptameric CP α ring. Rpt C termini insert individually into the α ring pockets to form a salt bridge with a pocket lysine residue. We report that substitutions of α pocket lysine residues produce an unexpected block to CP assembly, arising from a late stage defect in β ring assembly. Substitutions α5(K66A) and α6(K62A) resulted in abundant incorporation of immature CP β subunits, associated with a complete β ring, into proteasome holoenzymes. Incorporation of immature CP into the proteasome depended on a proteasome-associated protein, Ecm29. Using ump1 mutants, we identified Ecm29 as a potent negative regulator of RP assembly and confirmed our previous findings that proper RP assembly requires the CP. Ecm29 was enriched on proteasomes of pocket lysine mutants, as well as those of rpt4-Δ1 and rpt6-Δ1 mutants, in which the C-terminal residue, thought to contact the pocket lysine, is deleted. In both rpt6-Δ1 and α6(K62A) proteasomes, Ecm29 suppressed opening of the CP substrate translocation channel, which is gated through interactions between Rpt C termini and the α pockets. The ubiquitin ligase Hul5 was recruited to these proteasomes together with Ecm29. Proteasome remodeling through the addition of Ecm29 and Hul5 suggests a new layer of the proteasome stress response and may be a common response to structurally aberrant proteasomes or deficient proteasome function.

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Year:  2011        PMID: 21878652      PMCID: PMC3196138          DOI: 10.1074/jbc.M111.285924

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


  68 in total

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2.  The Immunoproteasome Cleans up after Inflammation.

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Review 4.  Proteasomes: machines for all reasons.

Authors:  George N Demartino; Thomas G Gillette
Journal:  Cell       Date:  2007-05-18       Impact factor: 41.582

5.  Crystal structure of a chaperone complex that contributes to the assembly of yeast 20S proteasomes.

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Journal:  Nat Struct Mol Biol       Date:  2008-02-17       Impact factor: 15.369

6.  Deubiquitinating enzyme Ubp6 functions noncatalytically to delay proteasomal degradation.

Authors:  John Hanna; Nathaniel A Hathaway; Yoshiko Tone; Bernat Crosas; Suzanne Elsasser; Donald S Kirkpatrick; David S Leggett; Steven P Gygi; Randall W King; Daniel Finley
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7.  Characterization of mammalian Ecm29, a 26 S proteasome-associated protein that localizes to the nucleus and membrane vesicles.

Authors:  Carlos Gorbea; Geoffrey M Goellner; Ken Teter; Randall K Holmes; Martin Rechsteiner
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Authors:  Maya Bader; Sigi Benjamin; Orly L Wapinski; David M Smith; Alfred L Goldberg; Hermann Steller
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Review 9.  Recognition and processing of ubiquitin-protein conjugates by the proteasome.

Authors:  Daniel Finley
Journal:  Annu Rev Biochem       Date:  2009       Impact factor: 23.643

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Authors:  Byung-Hoon Lee; Min Jae Lee; Soyeon Park; Dong-Chan Oh; Suzanne Elsasser; Ping-Chung Chen; Carlos Gartner; Nevena Dimova; John Hanna; Steven P Gygi; Scott M Wilson; Randall W King; Daniel Finley
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  37 in total

1.  Misfolded proteins driven to destruction by Hul5.

Authors:  Daniel Finley
Journal:  Nat Cell Biol       Date:  2011-10-09       Impact factor: 28.824

2.  Proteasome stress responses in Schistosoma mansoni.

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Journal:  Parasitol Res       Date:  2015-02-10       Impact factor: 2.289

3.  The proteasome-associated protein Ecm29 inhibits proteasomal ATPase activity and in vivo protein degradation by the proteasome.

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Journal:  J Biol Chem       Date:  2013-08-30       Impact factor: 5.157

4.  Two alternative mechanisms regulate the onset of chaperone-mediated assembly of the proteasomal ATPases.

Authors:  Asrafun Nahar; Xinyi Fu; George Polovin; James D Orth; Soyeon Park
Journal:  J Biol Chem       Date:  2019-02-27       Impact factor: 5.157

5.  PI31 Is an Adaptor Protein for Proteasome Transport in Axons and Required for Synaptic Development.

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6.  Probing H2O2-mediated Structural Dynamics of the Human 26S Proteasome Using Quantitative Cross-linking Mass Spectrometry (QXL-MS).

Authors:  Clinton Yu; Xiaorong Wang; Alexander Scott Huszagh; Rosa Viner; Eric Novitsky; Scott D Rychnovsky; Lan Huang
Journal:  Mol Cell Proteomics       Date:  2019-02-05       Impact factor: 5.911

7.  Nucleotide-dependent switch in proteasome assembly mediated by the Nas6 chaperone.

Authors:  Frances Li; Geng Tian; Deanna Langager; Vladyslava Sokolova; Daniel Finley; Soyeon Park
Journal:  Proc Natl Acad Sci U S A       Date:  2017-01-30       Impact factor: 11.205

Review 8.  Proteasome assembly.

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Journal:  Cell Mol Life Sci       Date:  2014-08-09       Impact factor: 9.261

9.  Centrosomes at M phase act as a scaffold for the accumulation of intracellular ubiquitinated proteins.

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Review 10.  Molecular architecture and assembly of the eukaryotic proteasome.

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Journal:  Annu Rev Biochem       Date:  2013-03-13       Impact factor: 23.643

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