PiZ mouse liver accumulates polyubiquitin conjugates that associate with catalytically active 26S proteasomes.

Accumulation of aggregation-prone human alpha 1 antitrypsin mutant Z (AT-Z) protein in PiZ mouse liver stimulates features of liver injury typical of human alpha 1 antitrypsin type ZZ deficiency, an autosomal recessive genetic disorder. Ubiquitin-mediated proteolysis by the 26S proteasome counteract...

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Main Authors: Christopher J Haddock, Keith Blomenkamp, Madhav Gautam, Jared James, Joanna Mielcarska, Edward Gogol, Jeffrey Teckman, Dorota Skowyra
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4161314?pdf=render
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spelling doaj-c356ed57a93b4f9d97a73488f76df77a2020-11-25T00:43:58ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0199e10637110.1371/journal.pone.0106371PiZ mouse liver accumulates polyubiquitin conjugates that associate with catalytically active 26S proteasomes.Christopher J HaddockKeith BlomenkampMadhav GautamJared JamesJoanna MielcarskaEdward GogolJeffrey TeckmanDorota SkowyraAccumulation of aggregation-prone human alpha 1 antitrypsin mutant Z (AT-Z) protein in PiZ mouse liver stimulates features of liver injury typical of human alpha 1 antitrypsin type ZZ deficiency, an autosomal recessive genetic disorder. Ubiquitin-mediated proteolysis by the 26S proteasome counteracts AT-Z accumulation and plays other roles that, when inhibited, could exacerbate the injury. However, it is unknown how the conditions of AT-Z mediated liver injury affect the 26S proteasome. To address this question, we developed a rapid extraction strategy that preserves polyubiquitin conjugates in the presence of catalytically active 26S proteasomes and allows their separation from deposits of insoluble AT-Z. Compared to WT, PiZ extracts had about 4-fold more polyubiquitin conjugates with no apparent change in the levels of the 26S and 20S proteasomes, and unassembled subunits. The polyubiquitin conjugates had similar affinities to ubiquitin-binding domain of Psmd4 and co-purified with similar amounts of catalytically active 26S complexes. These data show that polyubiquitin conjugates were accumulating despite normal recruitment to catalytically active 26S proteasomes that were available in excess, and suggest that a defect at the 26S proteasome other than compromised binding to polyubiquitin chain or peptidase activity played a role in the accumulation. In support of this idea, PiZ extracts were characterized by high molecular weight, reduction-sensitive forms of selected subunits, including ATPase subunits that unfold substrates and regulate access to proteolytic core. Older WT mice acquired similar alterations, implying that they result from common aspects of oxidative stress. The changes were most pronounced on unassembled subunits, but some subunits were altered even in the 26S proteasomes co-purified with polyubiquitin conjugates. Thus, AT-Z protein aggregates indirectly impair degradation of polyubiquitinated proteins at the level of the 26S proteasome, possibly by inducing oxidative stress-mediated modifications that compromise substrate delivery to proteolytic core.http://europepmc.org/articles/PMC4161314?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Christopher J Haddock
Keith Blomenkamp
Madhav Gautam
Jared James
Joanna Mielcarska
Edward Gogol
Jeffrey Teckman
Dorota Skowyra
spellingShingle Christopher J Haddock
Keith Blomenkamp
Madhav Gautam
Jared James
Joanna Mielcarska
Edward Gogol
Jeffrey Teckman
Dorota Skowyra
PiZ mouse liver accumulates polyubiquitin conjugates that associate with catalytically active 26S proteasomes.
PLoS ONE
author_facet Christopher J Haddock
Keith Blomenkamp
Madhav Gautam
Jared James
Joanna Mielcarska
Edward Gogol
Jeffrey Teckman
Dorota Skowyra
author_sort Christopher J Haddock
title PiZ mouse liver accumulates polyubiquitin conjugates that associate with catalytically active 26S proteasomes.
title_short PiZ mouse liver accumulates polyubiquitin conjugates that associate with catalytically active 26S proteasomes.
title_full PiZ mouse liver accumulates polyubiquitin conjugates that associate with catalytically active 26S proteasomes.
title_fullStr PiZ mouse liver accumulates polyubiquitin conjugates that associate with catalytically active 26S proteasomes.
title_full_unstemmed PiZ mouse liver accumulates polyubiquitin conjugates that associate with catalytically active 26S proteasomes.
title_sort piz mouse liver accumulates polyubiquitin conjugates that associate with catalytically active 26s proteasomes.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Accumulation of aggregation-prone human alpha 1 antitrypsin mutant Z (AT-Z) protein in PiZ mouse liver stimulates features of liver injury typical of human alpha 1 antitrypsin type ZZ deficiency, an autosomal recessive genetic disorder. Ubiquitin-mediated proteolysis by the 26S proteasome counteracts AT-Z accumulation and plays other roles that, when inhibited, could exacerbate the injury. However, it is unknown how the conditions of AT-Z mediated liver injury affect the 26S proteasome. To address this question, we developed a rapid extraction strategy that preserves polyubiquitin conjugates in the presence of catalytically active 26S proteasomes and allows their separation from deposits of insoluble AT-Z. Compared to WT, PiZ extracts had about 4-fold more polyubiquitin conjugates with no apparent change in the levels of the 26S and 20S proteasomes, and unassembled subunits. The polyubiquitin conjugates had similar affinities to ubiquitin-binding domain of Psmd4 and co-purified with similar amounts of catalytically active 26S complexes. These data show that polyubiquitin conjugates were accumulating despite normal recruitment to catalytically active 26S proteasomes that were available in excess, and suggest that a defect at the 26S proteasome other than compromised binding to polyubiquitin chain or peptidase activity played a role in the accumulation. In support of this idea, PiZ extracts were characterized by high molecular weight, reduction-sensitive forms of selected subunits, including ATPase subunits that unfold substrates and regulate access to proteolytic core. Older WT mice acquired similar alterations, implying that they result from common aspects of oxidative stress. The changes were most pronounced on unassembled subunits, but some subunits were altered even in the 26S proteasomes co-purified with polyubiquitin conjugates. Thus, AT-Z protein aggregates indirectly impair degradation of polyubiquitinated proteins at the level of the 26S proteasome, possibly by inducing oxidative stress-mediated modifications that compromise substrate delivery to proteolytic core.
url http://europepmc.org/articles/PMC4161314?pdf=render
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