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Related Concept Videos

The Proteasome Structure01:17

The Proteasome Structure

The ubiquitin-proteasome pathway is a well-known mechanism utilized by eukaryotic cells to remove cytoplasmic proteins that are misfolded, damaged, or no longer needed. In this pathway, the protein that needs to be eliminated undergoes a process called ubiquitination, where a chain of ubiquitin molecules is attached to the 48th lysine residue of the target protein. This ubiquitin modification helps the proteasome distinguish between a target protein and a healthy protein.
The proteasome is an...
The Proteasome01:13

The Proteasome

Eukaryotic cells can degrade proteins through several pathways. One of the most important among these is the ubiquitin-proteasome pathway. It helps the cell eliminate the misfolded, damaged, or unwarranted cytoplasmic proteins in a highly specific manner.
In this pathway, the target proteins are first tagged with small proteins called ubiquitin. This involves participation of a series of enzymes including— E1 (ubiquitin-activating enzyme), E2 (ubiquitin-conjugating enzyme), and E3 (ubiquitin...
The Proteasome02:18

The Proteasome

Eukaryotic cells can degrade proteins through several pathways. One of the most important amongst these is the ubiquitin-proteasome pathway. It helps the cell eliminate the misfolded, damaged, or unwarranted cytoplasmic proteins in a highly specific manner.
In this pathway, the target proteins are first tagged with small proteins called ubiquitin. A series of enzymes carry out the ubiquitination of the target proteins - E1 (ubiquitin-activating enzyme), E2 (ubiquitin-conjugating enzyme), and E3...
The Proteasome02:18

The Proteasome

Eukaryotic cells can degrade proteins through several pathways. One of the most important amongst these is the ubiquitin-proteasome pathway. It helps the cell eliminate the misfolded, damaged, or unwarranted cytoplasmic proteins in a highly specific manner.
In this pathway, the target proteins are first tagged with small proteins called ubiquitin. A series of enzymes carry out the ubiquitination of the target proteins - E1 (ubiquitin-activating enzyme), E2 (ubiquitin-conjugating enzyme), and E3...
Molecular Chaperones and Protein Folding03:00

Molecular Chaperones and Protein Folding

The native conformation of a protein is formed by interactions between the side chains of its constituent amino acids. When the amino acids cannot form these interactions, the protein cannot fold by itself and needs chaperones. Notably, chaperones do not relay any additional information required for the folding of polypeptides; the native conformation of a protein is determined solely by its amino acid sequence. Chaperones catalyze protein folding without being a part of the folded protein.
The...
Regulated Protein Degradation02:58

Regulated Protein Degradation

It is vital to regulate the activity of enzymatic as well as non-enzymatic proteins inside the cell. This can be achieved either through creating a balance between their rate of synthesis and degradation or regulating the intrinsic activity of the protein. Both these regulation mechanisms play an essential role in the normal functioning of cells.
Protein degradation plays two important roles in the cells. It helps to protect cells from misfolded or damaged proteins before they lead to a...

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Related Experiment Video

Updated: Jun 3, 2026

Examining Proteasome Assembly with Recombinant Archaeal Proteasomes and Nondenaturing PAGE: The Case for a Combined Approach
09:57

Examining Proteasome Assembly with Recombinant Archaeal Proteasomes and Nondenaturing PAGE: The Case for a Combined Approach

Published on: December 17, 2016

Dependence of proteasome processing rate on substrate unfolding.

Allen Henderson1, Jenny Erales, Martin A Hoyt

  • 1Department of Microbiology & Immunology, University of California, San Francisco, San Francisco, California 94127, USA.

The Journal of Biological Chemistry
|April 2, 2011
PubMed
Summary

Protein stability directly impacts proteasome degradation rates. More stable proteins require longer degradation times, revealing ATP hydrolysis as a potential rate-limiting step in proteasome function.

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Last Updated: Jun 3, 2026

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Area of Science:

  • Molecular Biology
  • Biochemistry
  • Cell Biology

Background:

  • Protein degradation is crucial for cellular function, primarily mediated by the proteasome.
  • Previous research has focused on substrate recognition and the final proteolysis steps.
  • The role of substrate stability in the degradation process remains less understood.

Purpose of the Study:

  • To investigate the relationship between protein domain stability and its degradation rate by the proteasome.
  • To determine if substrate stability influences the kinetics of proteasome-mediated protein turnover.
  • To explore the involvement of ATP hydrolysis in the degradation of stable, folded protein substrates.

Main Methods:

  • Proteins were directly tethered to the proteasome, bypassing ubiquitination for targeted degradation.
  • Degradation kinetics were compared for protein variants with altered stability (point mutations or ligand binding).
  • Experiments were conducted in both intact cells and with purified proteasomes and substrates.

Main Results:

  • Increased protein substrate stability correlated with a longer substrate turnover time for proteasomal degradation.
  • Degradation times varied, with dihydrofolate reductase degrading in ~5 minutes and the I27 domain of titin in ~40 minutes.
  • ATP turnover by the proteasome was rapid (~110/min) and not significantly affected by substrate stability.

Conclusions:

  • The stability of a folded protein domain is a key determinant of its proteasomal degradation rate.
  • Proteasomes engage stable substrates through multiple cycles of ATP hydrolysis, which can become the rate-limiting step.
  • This finding highlights the importance of substrate unfolding and translocation in the overall proteasome-mediated protein turnover pathway.