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Coenzyme Q(1) depletes NAD(P)H and impairs recycling of ascorbate in astrocytes.
Dragan, Magdalena; Dixon, S Jeffrey; Jaworski, Ewa; Chan, Tom S; O'brien, Peter J; Wilson, John X.
Affiliation
  • Dragan M; Department of Physiology and Pharmacology, Faculty of Medicine and Dentistry, University of Western Ontario, London, Ontario, Canada N6A 5C1.
Brain Res ; 1078(1): 9-18, 2006 Mar 17.
Article in En | MEDLINE | ID: mdl-16499885
Ascorbate is an important antioxidant in the brain. Astrocytes are capable of recycling ascorbate by taking up and then reducing its oxidation product dehydroascorbic acid (DHAA) using reducing equivalents derived from NAD(P)H. Astrocytes also contain NAD(P)H-dependent quinone reductases, such as NAD(P)H:quinone oxidoreductase (NQO1), which are capable of reducing coenzyme Q and its analogs. Short-chain coenzyme Q analogs have been proposed as therapeutic agents for neurodegenerative illnesses, but they may cause oxidative stress by non-enzymatic redox cycling or enzyme-dependent depletion of NAD(P)H. Therefore, we tested the hypothesis that the short-chain coenzyme Q analog coenzyme Q(1) (CoQ(1), ubiquinone-5) decreases intracellular NAD(P)H levels in astrocytes and impairs the ability of these cells to replace extracellular DHAA with ascorbate (i.e., ascorbate recycling). We observed that CoQ(1) inhibited the production of intra- and extracellular ascorbate by primary rat astrocytes incubated with DHAA in glucose-free medium. Reduction of CoQ(1) to CoQ(1)H(2) by astrocytes was partially blocked by the NQO1 inhibitor dicumarol but was not affected by DHAA. The inhibition of ascorbate recycling by CoQ(1) was attenuated by dicumarol and was abolished by glucose. CoQ(1) lowered intracellular levels of reactive oxygen species, as measured by oxidation of 2',7'-dichlorofluorescin but also produced marked decreases in the concentrations of NADH and NADPH. We conclude that in astrocytes CoQ(1) recycling depletes NAD(P)H and inhibits ascorbate recycling when glucose metabolism is limited. Because DHAA can cause cell-lethal oxidative stress in neurons and ascorbate produced by astrocytes may be neuroprotective, coenzyme Q analogs may adversely affect brain function through this novel mechanism.
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Collection: 01-internacional Database: MEDLINE Main subject: Ascorbic Acid / Astrocytes / Ubiquinone / NADP Limits: Animals Language: En Journal: Brain Res Year: 2006 Type: Article
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Collection: 01-internacional Database: MEDLINE Main subject: Ascorbic Acid / Astrocytes / Ubiquinone / NADP Limits: Animals Language: En Journal: Brain Res Year: 2006 Type: Article