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.

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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