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Updated: May 12, 2026

Assays for the Degradation of Misfolded Proteins in Cells
Published on: August 28, 2016
Conformational defects underlie proteasomal degradation of Dent's disease-causing mutants of ClC-5
Christina D'Antonio1, Steven Molinski, Saumel Ahmadi
1Programme in Molecular Structure and Function, Research Institute, Hospital for Sick Children, Toronto, Canada M5G 1X8.
Abstract:
Mutations in the CLCN5 (chloride channel, voltage-sensitive 5) gene cause Dent's disease because they reduce the functional expression of the ClC-5 chloride/proton transporter in the recycling endosomes of proximal tubule epithelial cells. The majority (60%) of these disease-causing mutations in ClC-5 are misprocessed and retained in the ER (endoplasmic reticulum). Importantly, the structural basis for misprocessing and the cellular destiny of such ClC-5 mutants have yet to be defined. A ClC-5 monomer comprises a short N-terminal region, an extensive membrane domain and a large C-terminal domain. The recent crystal structure of a eukaryotic ClC (chloride channel) transporter revealed the intimate interaction between the membrane domain and the C-terminal region. Therefore we hypothesized that intramolecular interactions may be perturbed in certain mutants. In the present study we examined two misprocessed mutants: C221R located in the membrane domain and R718X, which truncates the C-terminal domain. Both mutants exhibited enhanced protease susceptibility relative to the normal protein in limited proteolysis studies, providing direct evidence that they are misfolded. Interestingly, the membrane-localized mutation C221R led to enhanced protease susceptibility of the cytosolic N-terminal region, and the C-terminal truncation mutation R718X led to enhanced protease susceptibility of both the cytosolic C-terminal and the membrane domain. Together, these studies support the idea that certain misprocessing mutations alter intramolecular interactions within the full-length ClC-5 protein. Further, we found that these misfolded mutants are polyubiquitinated and targeted for proteasomal degradation in the OK (opossum kidney) renal epithelial cells, thereby ensuring that they do not elicit the unfolded protein response.
Insights
Mutations in the CLCN5 gene cause Dent's disease by disrupting the ClC-5 chloride/proton transporter. Misfolded mutants are degraded, preventing cellular stress responses.
Area of Science:
- Molecular biology
- Cell biology
- Nephrology
Background:
- Mutations in the CLCN5 gene are linked to Dent's disease, affecting the ClC-5 chloride/proton transporter.
- Most CLCN5 mutations lead to misprocessing and endoplasmic reticulum retention of ClC-5.
- The structural basis and cellular fate of misprocessed ClC-5 mutants remain unclear.
Purpose of the Study:
- To investigate the structural basis of misprocessing for CLCN5 mutants.
- To determine the cellular destiny of misfolded ClC-5 mutants.
- To elucidate the impact of mutations on intramolecular interactions within ClC-5.
Main Methods:
- Limited proteolysis studies to assess protein folding.
- Analysis of two specific CLCN5 mutants (C221R and R718X).
- Polyubiquitination assays and proteasomal degradation studies in OK cells.
Main Results:
- Both C221R and R718X mutants showed enhanced protease susceptibility, indicating misfolding.
- The C221R mutation affected the N-terminal region's susceptibility.
- The R718X mutation impacted both the C-terminal and membrane domains' susceptibility.
- Misfolded ClC-5 mutants were polyubiquitinated and degraded via the proteasome.
Conclusions:
- Certain misprocessing mutations in CLCN5 disrupt intramolecular interactions.
- Misfolded ClC-5 mutants are targeted for proteasomal degradation.
- This degradation pathway prevents the unfolded protein response in renal cells.
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