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.

Biochemistry
|February 11, 2010
PubMed

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.

Related Concept Videos

Electron Transport Chain: Complex III and IV01:43

Electron Transport Chain: Complex III and IV

During the electron transport chain, electrons from NADH and FADH2 are first transferred to complexes I and II, respectively. These two complexes then transfer the electrons to ubiquinol, which carries them further to complex III. Complex III passes the electrons across the intermembrane space to Cyt c, which carries them further to complex IV. Complex IV donates electrons to oxygen and reduces it to water. As electrons pass through complexes I, III, and IV, the energy released aids the pumping...
Electron Transport Chain: Complex I and II01:46

Electron Transport Chain: Complex I and II

The mitochondrial electron transport chain (ETC) is the main energy generation system in the eukaryotic cells. However, mitochondria also produce cytotoxic reactive oxygen species (ROS) due to the large electron flow during oxidative phosphorylation. While Complex I is one of the primary sources of superoxide radicals, ROS production by Complex II is uncommon and may only be observed in cancer cells with mutated complexes.
ROS generation is regulated and maintained at moderate levels necessary...
The Supercomplexes in the Crista Membrane01:41

The Supercomplexes in the Crista Membrane

The mitochondrial cristae membrane is the primary site for the oxidative phosphorylation (OXPHOS) process of energy conversion mediated through respiratory complexes I to V. These complexes have been widely studied for decades, and it has been proven that they form supramolecular structures called respiratory supercomplexes (SC). These higher-order complexes may be crucial in maintaining the biochemical structure and improving the physiological activity of the individual complexes while...
The Electron Transport Chain01:30

The Electron Transport Chain

The electron transport chain or oxidative phosphorylation is an exothermic process in which free energy released during electron transfer reactions is coupled to ATP synthesis. This process is a significant source of energy in aerobic cells, and therefore inhibitors of the electron transport chain can be detrimental to the cell's metabolic processes.
Inhibitors of the electron transport chain
Rotenone, a widely used pesticide, prevents electron transfer from Fe-S cluster to ubiquinone or Q in...
Peroxisomes01:24

Peroxisomes

Peroxisomes are specialized organelles present in fungi, plant, and animal cells. It can vary in number, size, morphology, and activity depending on the type of tissue and the nutritional state of the cell. For example, cells with active lipid metabolism, such as adipocytes, neurons, and hepatocytes, have more peroxisomes than other cells in the body. Besides their primary role in breaking down complex organic molecules, peroxisomes can also synthesize specific macromolecules and participate in...
Oxidation of Phenols to Quinones01:17

Oxidation of Phenols to Quinones

In the presence of oxidizing agents, phenols are oxidized to quinones. Quinones can be easily reduced back to phenols using mild reducing agents. The electron-donating hydroxyl group enhances the reactivity of the aromatic ring, enabling oxidation of the ring even in the absence of an α hydrogen.
o-hydroxy phenols are oxidized to o-quinones and p-hydroxy phenols to p-quinones. Such redox reactions involve the transfer of two electrons and two protons. The reversible redox property is crucial in...