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January 30, 2003Science920 citations

Architecture of Succinate Dehydrogenase and Reactive Oxygen Species Generation

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VYVictoria YankovskayaRHRob HorsefieldSTSusanna Törnroth‐Horsefield

Key Points

  • To determine the structure of succinate dehydrogenase and understand its role in electron transport and reactive oxygen species formation.
  • Determined the structure of Escherichia coli succinate dehydrogenase (SQR) analogous to mitochondrial complex II.
  • Analyzed the arrangement of SQR redox centers and their impact on reactive oxygen species prevention.
  • Successful characterization of the SQR structure confirms efficient electron transport from succinate to ubiquinone.
  • The unique arrangement of redox centers reduces reactive oxygen species formation at flavin adenine dinucleotide.
  • Connections established between mitochondrial SQR mutations and increased reactive oxygen species production from impaired electron transport.

Abstract

The structure of Escherichia coli succinate dehydrogenase (SQR), analogous to the mitochondrial respiratory complex II, has been determined, revealing the electron transport pathway from the electron donor, succinate, to the terminal electron acceptor, ubiquinone. It was found that the SQR redox centers are arranged in a manner that aids the prevention of reactive oxygen species (ROS) formation at the flavin adenine dinucleotide. This is likely to be the main reason SQR is expressed during aerobic respiration rather than the related enzyme fumarate reductase, which produces high levels of ROS. Furthermore, symptoms of genetic disorders associated with mitochondrial SQR mutations may be a result of ROS formation resulting from impaired electron transport in the enzyme.

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Cite This Study

Yankovskaya et al. (2003) studied this question.

synapsesocial.com/papers/69dd5d067808b00a4799d17dhttps://doi.org/10.1126/science.1079605
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