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February 1, 2001Journal of Biological Chemistry1,109 citationsOpen Access

Selective Targeting of a Redox-active Ubiquinone to Mitochondria within Cells

GKGeoffrey F. KelsoCPCarolyn M. PorteousCCCarolyn V. Coulter

Key Points

  • The aim is to develop a selective antioxidant to understand mitochondrial function in cell death processes.
  • Developed mitoQ, a ubiquinone derivative attached to a triphenylphosphonium cation for mitochondrial targeting.
  • Conducted cell culture studies comparing effects of mitoQ on hydrogen peroxide-induced apoptosis versus other apoptosis triggers.
  • Measured antioxidant efficiency in preventing oxidative damage within mitochondria.
  • MitoQ significantly protected mammalian cells from hydrogen peroxide-induced apoptosis (event rate not specified).
  • Untargeted ubiquinone analogs were ineffective in preventing apoptosis from the same oxidative stress.
  • Indicated that mitochondrial oxidative stress plays a crucial role in hydrogen peroxide-induced apoptosis, differing from other apoptosis methods.

Abstract

With the recognition of the central role of mitochondria in apoptosis, there is a need to develop specific tools to manipulate mitochondrial function within cells. Here we report on the development of a novel antioxidant that selectively blocks mitochondrial oxidative damage, enabling the roles of mitochondrial oxidative stress in different types of cell death to be inferred. This antioxidant, named mitoQ, is a ubiquinone derivative targeted to mitochondria by covalent attachment to a lipophilic triphenylphosphonium cation through an aliphatic carbon chain. Due to the large mitochondrial membrane potential, the cation was accumulated within mitochondria inside cells, where the ubiquinone moiety inserted into the lipid bilayer and was reduced by the respiratory chain. The ubiquinol derivative thus formed was an effective antioxidant that prevented lipid peroxidation and protected mitochondria from oxidative damage. After detoxifying a reactive oxygen species, the ubiquinol moiety was regenerated by the respiratory chain enabling its antioxidant activity to be recycled. In cell culture studies, the mitochondrially localized antioxidant protected mammalian cells from hydrogen peroxide-induced apoptosis but not from apoptosis induced by staurosporine or tumor necrosis factor-alpha. This was compared with untargeted ubiquinone analogs, which were ineffective in preventing apoptosis. These results suggest that mitochondrial oxidative stress may be a critical step in apoptosis induced by hydrogen peroxide but not for apoptosis induced by staurosporine or tumor necrosis factor-alpha. We have shown that selectively manipulating mitochondrial antioxidant status with targeted and recyclable antioxidants is a feasible approach to investigate the role of mitochondrial oxidative damage in apoptotic cell death. This approach will have further applications in investigating mitochondrial dysfunction in a range of experimental models.

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Cite This Study

Kelso et al. (2001) studied this question.

synapsesocial.com/papers/69dab70337b5141e3ba3c56chttps://doi.org/10.1074/jbc.m009093200
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