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In Vivo Hydroxyl Radical Protein Footprinting for the Study of Protein Interactions in Caenorhabditis elegans
Published on: April 1, 2020
Oxidation-induced conformational changes in calcineurin determined by covalent labeling and tandem mass spectrometry
Xiao Zhou1, Caitlin Mester, Paul M Stemmer
1Department of Chemistry, and §Department of Biochemistry and Molecular Biology, Michigan State University , East Lansing, Michigan 48824, United States.
Abstract:
The Ca(2+)/calmodulin activated phosphatase, calcineurin, is inactivated by H2O2 or superoxide-induced oxidation, both in vivo and in vitro. However, the potential for global and/or local conformation changes occurring within calcineurin as a function of oxidative modification, that may play a role in the inactivation process, has not been examined. Here, the susceptibility of calcineurin methionine residues toward H2O2-induced oxidation were determined using a multienzyme digestion strategy coupled with capillary HPLC-electrospray ionization mass spectrometry and tandem mass spectrometry analysis. Then, regions within the protein complex that underwent significant conformational perturbation upon oxidative modification were identified by monitoring changes in the modification rates of accessible lysine residues between native and oxidized forms of calcineurin, using an amine-specific covalent labeling reagent, S,S'-dimethylthiobutanoylhydroxysuccinimide ester (DMBNHS), and tandem mass spectrometry. Importantly, methionine residues found to be highly susceptible toward oxidation, and the lysine residues exhibiting large increases in accessibility upon oxidation, were all located in calcineurin functional domains involved in Ca(2+)/CaM binding regulated calcineurin stimulation. These findings therefore provide initial support for the novel mechanistic hypothesis that oxidation-induced global and/or local conformational changes within calcineurin contribute to inactivation via (i) impairing the interaction between calcineurin A and calcineurin B, (ii) altering the low-affinity Ca(2+) binding site in calcineurin B, (iii) inhibiting calmodulin binding to calcineurin A, and/or (iv) by altering the affinity between the calcineurin A autoinhibitory domain and the catalytic center.
Insights
Oxidative modification of calcineurin by hydrogen peroxide alters its conformation, leading to inactivation. Methionine and lysine residues in key functional domains are affected, impairing calmodulin binding and enzyme activity.
Area of Science:
- Biochemistry
- Molecular Biology
- Enzymology
Background:
- Calcineurin, a calcium/calmodulin-activated phosphatase, is crucial for cellular signaling.
- Oxidative stress, induced by H2O2 or superoxide, inactivates calcineurin both in vivo and in vitro.
- The conformational changes underlying calcineurin inactivation by oxidation remain largely unexamined.
Purpose of the Study:
- To investigate the impact of H2O2-induced oxidation on calcineurin's conformation.
- To identify specific sites of oxidation and conformational changes within calcineurin.
- To elucidate the mechanistic link between oxidation, conformational changes, and calcineurin inactivation.
Main Methods:
- Multienzyme digestion coupled with HPLC-electrospray ionization mass spectrometry and tandem mass spectrometry to identify oxidized methionine residues.
- Amine-specific covalent labeling with DMBNHS followed by mass spectrometry to assess changes in lysine accessibility in native versus oxidized calcineurin.
- Analysis of conformational changes in functional domains involved in Ca(2+)/calmodulin binding.
Main Results:
- Identified methionine residues highly susceptible to H2O2-induced oxidation.
- Detected significant increases in the accessibility of specific lysine residues upon oxidation.
- Localized these oxidation-sensitive and accessibility-altered residues within calcineurin's Ca(2+)/calmodulin binding domains.
Conclusions:
- Oxidation induces global and/or local conformational changes in calcineurin.
- These conformational alterations contribute to calcineurin inactivation by affecting key interactions.
- Mechanisms include impaired calcineurin A/B interaction, altered Ca(2+) binding, inhibited calmodulin binding, and disruption of autoinhibitory domain function.
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