AI Article Synopsis

  • Coenzyme Q (CoQ) is crucial for cellular respiration and is made in mitochondria by various proteins, including COQ9, whose role is not well understood.
  • A mutation in COQ9 disrupts the CoQ protein biosynthetic complex in mice and reveals that COQ9 interacts with COQ7 through specific conserved residues.
  • The crystal structure of COQ9 shows it resembles bacterial transcriptional regulators, contains a lipid-binding site, and may help present lipids to COQ7, highlighting its importance in CoQ biosynthesis.

Article Abstract

Coenzyme Q (CoQ) is an isoprenylated quinone that is essential for cellular respiration and is synthesized in mitochondria by the combined action of at least nine proteins (COQ1-9). Although most COQ proteins are known to catalyze modifications to CoQ precursors, the biochemical role of COQ9 remains unclear. Here, we report that a disease-related COQ9 mutation leads to extensive disruption of the CoQ protein biosynthetic complex in a mouse model, and that COQ9 specifically interacts with COQ7 through a series of conserved residues. Toward understanding how COQ9 can perform these functions, we solved the crystal structure of Homo sapiens COQ9 at 2.4 Å. Unexpectedly, our structure reveals that COQ9 has structural homology to the TFR family of bacterial transcriptional regulators, but that it adopts an atypical TFR dimer orientation and is not predicted to bind DNA. Our structure also reveals a lipid-binding site, and mass spectrometry-based analyses of purified COQ9 demonstrate that it associates with multiple lipid species, including CoQ itself. The conserved COQ9 residues necessary for its interaction with COQ7 comprise a surface patch around the lipid-binding site, suggesting that COQ9 might serve to present its bound lipid to COQ7. Collectively, our data define COQ9 as the first, to our knowledge, mammalian TFR structural homolog and suggest that its lipid-binding capacity and association with COQ7 are key features for enabling CoQ biosynthesis.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4226113PMC
http://dx.doi.org/10.1073/pnas.1413128111DOI Listing

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