Literature DB >> 29624167

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

Richard S Marshall1, Richard D Vierstra1.   

Abstract

26S proteasome abundance is tightly regulated at multiple levels, including the elimination of excess or inactive particles by autophagy. In yeast, this proteaphagy occurs upon nitrogen starvation but not carbon starvation, which instead stimulates the rapid sequestration of proteasomes into cytoplasmic puncta termed proteasome storage granules (PSGs). Here, we show that PSGs help protect proteasomes from autophagic degradation. Both the core protease and regulatory particle sub-complexes are sequestered separately into PSGs via pathways dependent on the accessory proteins Blm10 and Spg5, respectively. Modulating PSG formation, either by perturbing cellular energy status or pH, or by genetically eliminating factors required for granule assembly, not only influences the rate of proteasome degradation, but also impacts cell viability upon recovery from carbon starvation. PSG formation and concomitant protection against proteaphagy also occurs in Arabidopsis, suggesting that PSGs represent an evolutionarily conserved cache of proteasomes that can be rapidly re-mobilized based on energy availability.
© 2018, Marshall et al.

Entities:  

Keywords:  A. thaliana; S. cerevisiae; autophagy; biochemistry; cell biology; chemical biology; proteaphagy; proteasome; proteasome storage granules; starvation; ubiquitin

Mesh:

Substances:

Year:  2018        PMID: 29624167      PMCID: PMC5947986          DOI: 10.7554/eLife.34532

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.713


  103 in total

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Authors:  B Polevoda; J Norbeck; H Takakura; A Blomberg; F Sherman
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Authors:  Monika Bajorek; Daniel Finley; Michael H Glickman
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Authors:  David S Leggett; John Hanna; Anna Borodovsky; Bernat Crosas; Marion Schmidt; Rohan T Baker; Thomas Walz; Hidde Ploegh; Daniel Finley
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Review 5.  There Is an Inclusion for That: Material Properties of Protein Granules Provide a Platform for Building Diverse Cellular Functions.

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Authors:  Marion Schmidt; Wilhelm Haas; Bernat Crosas; Patricia G Santamaria; Steven P Gygi; Thomas Walz; Daniel Finley
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Review 7.  Storage reserve mobilization in germinating oilseeds: Arabidopsis as a model system.

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8.  Synthetic quantitative array technology identifies the Ubp3-Bre5 deubiquitinase complex as a negative regulator of mitophagy.

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Authors:  Teresa Rinaldi; Line Hofmann; Alessia Gambadoro; Raynald Cossard; Nurit Livnat-Levanon; Michael H Glickman; Laura Frontali; Agnès Delahodde
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2.  Genetic Analyses of the Arabidopsis ATG1 Kinase Complex Reveal Both Kinase-Dependent and Independent Autophagic Routes during Fixed-Carbon Starvation.

Authors:  Xiao Huang; Chunyan Zheng; Fen Liu; Chao Yang; Ping Zheng; Xing Lu; Jiang Tian; Taijoon Chung; Marisa S Otegui; Shi Xiao; Caiji Gao; Richard D Vierstra; Faqiang Li
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Review 3.  Microautophagy regulates proteasome homeostasis.

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Review 6.  Cellular quiescence in budding yeast.

Authors:  Siyu Sun; David Gresham
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7.  HSP101 Interacts with the Proteasome and Promotes the Clearance of Ubiquitylated Protein Aggregates.

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9.  Autophagy Plays Prominent Roles in Amino Acid, Nucleotide, and Carbohydrate Metabolism during Fixed-Carbon Starvation in Maize.

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Review 10.  The Proteasome and Its Network: Engineering for Adaptability.

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