Tertiary structural rearrangements upon oxidation of Methionine145 in calmodulin promotes targeted proteasomal

Colette A Sacksteder1, Jennifer E Whittier, Yijia Xiong

  • 1Cell Biology and Biochemistry Group, Biological Sciences Division, Pacific Northwest National Laboratory, Richland, Washington, USA.

Biophysical Journal
|June 6, 2006
PubMed

Insights

Oxidized calmodulin (CaMox) degradation by the proteasome/Hsp90 is triggered by tertiary structural changes, particularly at Met145. This process regulates cellular metabolism during oxidative stress.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cellular Metabolism

Background:

  • Calmodulin (CaM) is a crucial calcium-binding protein involved in numerous cellular processes.
  • Oxidative stress can lead to protein oxidation, affecting protein function and stability.
  • The 20S proteasome, in complex with Hsp90, degrades damaged or misfolded proteins.

Purpose of the Study:

  • To identify the selectivity of oxidized calmodulin (CaMox) recognition by the 20S proteasome/Hsp90 complex.
  • To elucidate the structural signals responsible for the preferential degradation of CaMox.
  • To understand how site-specific methionine oxidation impacts CaM degradation and cellular regulation.

Main Methods:

  • Mass spectrometry was used to identify the selectivity of CaMox recognition.
  • Site-directed mutagenesis was employed to create CaM mutants with specific methionine residues substituted with leucines.
  • Circular dichroism spectroscopy was used to analyze structural changes in CaM upon oxidation.

Main Results:

  • Oxidized CaM (CaMox) degradation involves initial cleavage and release of peptides enriched in methionine sulfoxides (MetO).
  • Specific oxidation of Met145, but not Met144, in CaM leads to significant tertiary structural changes and a marked increase in degradation rate by the proteasome/Hsp90.
  • Oxidation of Met144 or Met145 individually resulted in limited proteasomal degradation and decreased helical content.

Conclusions:

  • Tertiary structural alterations, specifically from Met145 oxidation, are key signals for CaM degradation by the proteasome/Hsp90.
  • This mechanism allows for the targeted modulation of CaM levels in response to oxidative stress, thereby regulating cellular metabolism.
  • The findings provide insights into protein quality control and metabolic regulation under oxidative stress conditions.

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