Literature DB >> 33033180

An evolutionarily distinct chaperone promotes 20S proteasome α-ring assembly in plants.

Richard S Marshall1,2, David C Gemperline2, Fionn McLoughlin1, Adam J Book2, Kay Hofmann3, Richard D Vierstra4,2.   

Abstract

The core protease (CP) subcomplex of the 26S proteasome houses the proteolytic active sites and assumes a barrel shape comprised of four co-axially stacked heptameric rings formed by structurally related α- and β-subunits. CP biogenesis typically begins with the assembly of the α-ring, which then provides a template for β-subunit integration. In eukaryotes, α-ring assembly is partially mediated by two hetero-dimeric chaperones, termed Pba1-Pba2 (Add66) and Pba3-Pba4 (also known as Irc25-Poc4) in yeast. Pba1-Pba2 initially promotes orderly recruitment of the α-subunits through interactions between their C-terminal HbYX or HbF motifs and pockets at the α5-α6 and α6-α7 interfaces. Here, we identified PBAC5 as a fifth α-ring assembly chaperone in Arabidopsis that directly binds the Pba1 homolog PBAC1 to form a trimeric PBAC5-PBAC1-PBAC2 complex. PBAC5 harbors a HbYX motif that docks with a pocket between the α4 and α5 subunits during α-ring construction. Arabidopsis lacking PBAC5, PBAC1 and/or PBAC2 are hypersensitive to proteotoxic, salt and osmotic stresses, and display proteasome assembly defects. Remarkably, whereas PBAC5 is evolutionarily conserved among plants, sequence relatives are also dispersed within other kingdoms, including a scattered array of fungal, metazoan and oomycete species.
© 2020. Published by The Company of Biologists Ltd.

Entities:  

Keywords:  Arabidopsis; Chaperone; Core protease; Degradation; Evolution; Proteasome; Proteolysis; Proteostasis; Regulatory particle; Ubiquitin

Mesh:

Substances:

Year:  2020        PMID: 33033180      PMCID: PMC7657472          DOI: 10.1242/jcs.249862

Source DB:  PubMed          Journal:  J Cell Sci        ISSN: 0021-9533            Impact factor:   5.235


  81 in total

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