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Peroxynitrite-mediated oxidative modifications of complex II: relevance in myocardial infarction
Liwen Zhang1, Chwen-Lih Chen, Patrick T Kang
1Campus Chemical Instrument Center, Proteomics and Mass Spectrometry Facility, The Ohio State University, Columbus, Ohio 43210, USA.
Abstract:
Increased O(2)(*-) and NO production is a key mechanism of mitochondrial dysfunction in myocardial ischemia/reperfusion injury. In complex II, oxidative impairment and enhanced tyrosine nitration of the 70 kDa FAD-binding protein occur in the post-ischemic myocardium and are thought to be mediated by peroxynitrite (OONO(-)) in vivo [Chen, Y.-R., et al. (2008) J. Biol. Chem. 283, 27991-28003]. To gain deeper insights into the redox protein thiols involved in OONO(-)-mediated oxidative post-translational modifications relevant in myocardial infarction, we subjected isolated myocardial complex II to in vitro protein nitration with OONO(-). This resulted in site-specific nitration at the 70 kDa polypeptide and impairment of complex II-derived electron transfer activity. Under reducing conditions, the gel band of the 70 kDa polypeptide was subjected to in-gel trypsin/chymotrypsin digestion and then LC-MS/MS analysis. Nitration of Y(56) and Y(142) was previously reported. Further analysis revealed that C(267), C(476), and C(537) are involved in OONO(-)-mediated S-sulfonation. To identify the disulfide formation mediated by OONO(-), nitrated complex II was alkylated with iodoacetamide. In-gel proteolytic digestion and LC-MS/MS analysis were conducted under nonreducing conditions. The MS/MS data were examined with MassMatrix, indicating that three cysteine pairs, C(306)-C(312), C(439)-C(444), and C(288)-C(575), were involved in OONO(-)-mediated disulfide formation. Immuno-spin trapping with an anti-DMPO antibody and subsequent MS was used to define oxidative modification with protein radical formation. An OONO(-)-dependent DMPO adduct was detected, and further LC-MS/MS analysis indicated C(288) and C(655) were involved in DMPO binding. These results offered a complete profile of OONO(-)-mediated oxidative modifications that may be relevant in the disease model of myocardial infarction.
Insights
Mitochondrial dysfunction in heart attack involves peroxynitrite (OONO(-)) damaging complex II proteins. This study reveals specific cysteine and tyrosine modifications by OONO(-) in complex II, impacting heart function.
Area of Science:
- Biochemistry
- Cardiovascular Biology
- Mitochondrial Research
Background:
- Mitochondrial dysfunction, characterized by increased superoxide (O(2)(*-)) and nitric oxide (NO) production, is central to myocardial ischemia/reperfusion injury.
- Oxidative impairment and tyrosine nitration of a 70 kDa protein in complex II are observed in post-ischemic hearts, likely mediated by peroxynitrite (OONO(-)).
Purpose of the Study:
- To investigate redox protein thiol modifications in complex II induced by peroxynitrite (OONO(-)) under conditions relevant to myocardial infarction.
- To elucidate the specific sites and types of oxidative post-translational modifications occurring in complex II upon OONO(-) exposure.
Main Methods:
- Isolated myocardial complex II was subjected to in vitro nitration using peroxynitrite (OONO(-)).
- Site-specific modifications were analyzed using liquid chromatography-tandem mass spectrometry (LC-MS/MS) after in-gel digestion under reducing and nonreducing conditions.
- Immuno-spin trapping with anti-DMPO antibody and mass spectrometry identified protein radical formation sites.
Main Results:
- Peroxynitrite (OONO(-)) caused site-specific nitration of the 70 kDa polypeptide, impairing complex II electron transfer activity.
- S-sulfonation occurred at cysteines C(267), C(476), and C(537), while disulfide bonds formed between C(306)-C(312), C(439)-C(444), and C(288)-C(575).
- DMPO adducts indicated radical formation at C(288) and C(655), demonstrating peroxynitrite-mediated oxidative damage.
Conclusions:
- This study provides a comprehensive profile of peroxynitrite (OONO(-))-mediated oxidative modifications in myocardial complex II.
- Identified modifications, including nitration, S-sulfonation, disulfide bond formation, and radical adducts, offer insights into mechanisms of mitochondrial dysfunction in myocardial infarction.
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