Literature DB >> 16873928

Coenzyme Q and the regulation of intracellular steady-state levels of superoxide in HL-60 cells.

David González-Aragón1, María I Burón, Guillermo López-Lluch, María D Hermán, Consuelo Gómez-Díaz, Plácido Navas, José M Villalba.   

Abstract

The present work was set to study how CoQ concentrations affected steady-state levels of superoxide in a cellular model of partial CoQ(10) deficiency in cultured human myeloid leukemia HL-60 cells. Culturing HL-60 cells in the presence of p-aminobenzoate, a competitive inhibitor of polyprenyl-4-hydroxybenzoate transferase (Coq2p), produced a significant decrease of CoQ(10) levels without affecting cell viability. Concomitant decreases in CoQ-dependent electron transport activity and mitochondrial membrane potential were observed under these conditions. Intracellular superoxide was significantly elevated in cells treated with p-aminobenzoate, both under serum-containing and serum-free conditions, and this effect was reversed by exogenous CoQ(10). A slight increase of superoxide was also observed in CoQ(10)-supplemented cells in the absence of serum. Our results support a requirement for CoQ(10) to control superoxide levels in HL-60 cells. The importance of extramitochondrial sources of superoxide in cells with impaired CoQ(10) biosynthesis is discussed.

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Year:  2005        PMID: 16873928     DOI: 10.1002/biof.5520250105

Source DB:  PubMed          Journal:  Biofactors        ISSN: 0951-6433            Impact factor:   6.113


  13 in total

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2.  Calorie restriction modifies ubiquinone and COQ transcript levels in mouse tissues.

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3.  Kaempferol increases levels of coenzyme Q in kidney cells and serves as a biosynthetic ring precursor.

Authors:  Lucía Fernández-Del-Río; Anish Nag; Elena Gutiérrez Casado; Julia Ariza; Agape M Awad; Akil I Joseph; Ohyun Kwon; Eric Verdin; Rafael de Cabo; Claus Schneider; Jorge Z Torres; María I Burón; Catherine F Clarke; José M Villalba
Journal:  Free Radic Biol Med       Date:  2017-06-09       Impact factor: 7.376

4.  Human neuronal coenzyme Q10 deficiency results in global loss of mitochondrial respiratory chain activity, increased mitochondrial oxidative stress and reversal of ATP synthase activity: implications for pathogenesis and treatment.

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5.  Mitochondrial dysfunctions in myalgic encephalomyelitis/chronic fatigue syndrome explained by activated immuno-inflammatory, oxidative and nitrosative stress pathways.

Authors:  Gerwyn Morris; Michael Maes
Journal:  Metab Brain Dis       Date:  2013-09-10       Impact factor: 3.584

6.  Respiratory chain dysfunction and oxidative stress correlate with severity of primary CoQ10 deficiency.

Authors:  Catarina M Quinzii; Luis C López; Jakob Von-Moltke; Ali Naini; Sindu Krishna; Markus Schuelke; Leonardo Salviati; Plácido Navas; Salvatore DiMauro; Michio Hirano
Journal:  FASEB J       Date:  2008-01-29       Impact factor: 5.191

Review 7.  Coenzyme Q10 depletion in medical and neuropsychiatric disorders: potential repercussions and therapeutic implications.

Authors:  Gerwyn Morris; George Anderson; Michael Berk; Michael Maes
Journal:  Mol Neurobiol       Date:  2013-06-13       Impact factor: 5.590

8.  Coq6 is responsible for the C4-deamination reaction in coenzyme Q biosynthesis in Saccharomyces cerevisiae.

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Journal:  J Biol Chem       Date:  2015-08-10       Impact factor: 5.157

9.  Effects of inhibiting CoQ10 biosynthesis with 4-nitrobenzoate in human fibroblasts.

Authors:  Catarina M Quinzii; Saba Tadesse; Ali Naini; Michio Hirano
Journal:  PLoS One       Date:  2012-02-16       Impact factor: 3.240

Review 10.  Impact of Chemical Analogs of 4-Hydroxybenzoic Acid on Coenzyme Q Biosynthesis: From Inhibition to Bypass of Coenzyme Q Deficiency.

Authors:  Fabien Pierrel
Journal:  Front Physiol       Date:  2017-06-22       Impact factor: 4.566

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