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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.
Abstract:
The selectivity underlying the recognition of oxidized calmodulin (CaM) by the 20S proteasome in complex with Hsp90 was identified using mass spectrometry. We find that degradation of oxidized CaM (CaMox) occurs in a multistep process, which involves an initial cleavage that releases a large N-terminal fragment (A1-F92) as well as multiple smaller carboxyl-terminus peptides ranging from 17 to 26 amino acids in length. These latter small peptides are enriched in methionine sulfoxides (MetO), suggesting a preferential degradation around MetO within the carboxyl-terminal domain. To confirm the specificity of CaMox degradation and to identify the structural signals underlying the preferential recognition and degradation by the proteasome/Hsp90, we have investigated how the oxidation of individual methionines affect the degradation of CaM using mutants in which all but selected methionines in CaM were substituted with leucines. Substitution of all methionines with leucines except Met144 and Met145 has no detectable effect on the structure of CaM, permitting a determination of how site-specific substitutions and the oxidation of Met144 and Met145 affects the recognition and degradation of CaM by the proteasome/Hsp90. Comparable rates of degradation are observed upon the selective oxidation of Met144 and Met145 in CaM-L7 relative to that observed upon oxidation of all nine methionines in wild-type CaM. Substitution of leucines for either Met144 or Met145 promotes a limited recognition and degradation by the proteasome that correlates with decreases in the helical content of CaM. The specific oxidation of Met144 has little effect on rates of proteolytic degradation by the proteasome/Hsp90 or the structure of CaM. In contrast, the specific oxidation of Met145 results in both large increases in the rate of degradation by the proteasome/Hsp90 and significant circular dichroic spectral shape changes that are indicative of changes in tertiary rather than secondary structure. Thus, tertiary structural changes resulting from the site-specific oxidation of a single methionine (i.e., Met145) promote the degradation of CaM by the proteasome/Hsp90, suggesting a mechanism to regulate cellular metabolism through the targeted modulation of CaM abundance in response to oxidative stress.
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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