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Examining Proteasome Assembly with Recombinant Archaeal Proteasomes and Nondenaturing PAGE: The Case for a Combined Approach
Published on: December 17, 2016
Functional asymmetries of proteasome translocase pore
Jenny Erales1, Martin A Hoyt, Fabian Troll
1Department of Microbiology and Immunology, University of California, San Francisco, California 94127, USA.
Abstract:
Degradation by proteasomes involves coupled translocation and unfolding of its protein substrates. Six distinct but paralogous proteasome ATPase proteins, Rpt1 to -6, form a heterohexameric ring that acts on substrates. An axially positioned loop (Ar-Φ loop) moves in concert with ATP hydrolysis, engages substrate, and propels it into a proteolytic chamber. The aromatic (Ar) residue of the Ar-Φ loop in all six Rpts of S. cerevisiae is tyrosine; this amino acid is thought to have important functional contacts with substrate. Six yeast strains were constructed and characterized in which Tyr was individually mutated to Ala. The mutant cells were viable and had distinct phenotypes. rpt3, rpt4, and rpt5 Tyr/Ala mutants, which cluster on one side of the ATPase hexamer, were substantially impaired in their capacity to degrade substrates. In contrast, rpt1, rpt2, and rpt6 mutants equaled or exceeded wild type in degradation activity. However, rpt1 and rpt6 mutants had defects that limited cell growth or viability under conditions that stressed the ubiquitin proteasome system. In contrast, the rpt3 mutant grew faster than wild type and to a smaller size, a defect that has previously been associated with misregulation of G1 cyclins. This rpt3 phenotype probably results from altered degradation of cell cycle regulatory proteins. Finally, mutation of five of the Rpt subunits increased proteasome ATPase activity, implying bidirectional coupling between the Ar-Φ loop and the ATP hydrolysis site. The present observations assign specific functions to individual Rpt proteins and provide insights into the diverse roles of the axial loops of individual proteasome ATPases.
Insights
Mutations in yeast proteasome ATPase (Rpt) proteins reveal distinct roles for individual subunits in substrate degradation and cell growth. Some Rpt mutations impair degradation, while others enhance it but cause growth defects, highlighting functional specialization.
Area of Science:
- Molecular Biology
- Biochemistry
- Cell Biology
Background:
- Proteasome-mediated protein degradation is essential for cellular function.
- The proteasome ATPase ring (Rpt1-6) utilizes ATP hydrolysis to unfold and translocate substrates.
- An axial Ar-Φ loop in Rpts interacts with substrates.
Purpose of the Study:
- To investigate the function of individual Rpt subunits in proteasome activity.
- To determine the role of the aromatic residue in the Ar-Φ loop of Rpt proteins.
- To elucidate the impact of specific Rpt mutations on substrate degradation and cellular phenotypes.
Main Methods:
- Site-directed mutagenesis of tyrosine (Tyr) to alanine (Ala) in six Rpt subunits of Saccharomyces cerevisiae.
- Construction and characterization of six yeast mutant strains.
- Assessment of proteasome-dependent substrate degradation rates.
- Analysis of cell growth and viability phenotypes.
Main Results:
- Mutations in Rpt3, Rpt4, and Rpt5 impaired substrate degradation.
- Mutations in Rpt1, Rpt2, and Rpt6 showed equal or enhanced degradation activity compared to wild type.
- Rpt1 and Rpt6 mutants exhibited growth or viability defects under stress.
- The rpt3 mutant displayed accelerated growth and smaller cell size, linked to cell cycle misregulation.
- Mutation of five Rpt subunits increased proteasome ATPase activity.
Conclusions:
- Individual Rpt subunits possess specific functions within the proteasome.
- The Ar-Φ loop plays a critical role in substrate engagement and translocation.
- Bidirectional coupling exists between the Ar-Φ loop and ATP hydrolysis.
- These findings provide insights into the functional diversity of proteasome ATPases.
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