Publication: Coenzyme Q10 modulates sulfide metabolism and links the mitochondrial respiratory chain to pathways associated to one carbon metabolism.
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Identifiers
Date
2020-09-25
Authors
Gonzalez-GarcIa, Pilar
Hidalgo-Gutierrez, Agustin
Mascaraque, Cristina
Barriocanal-Casado, Eliana
Bakkali, Mohammed
Ziosi, Marcello
Abdihankyzy, Ussipbek Botagoz
Sanchez-Hernandez, Sabina
Escames, Germaine
Prokisch, Holger
Advisors
Journal Title
Journal ISSN
Volume Title
Publisher
Oxford University Press
Abstract
Abnormalities of one carbon, glutathione and sulfide metabolisms have recently emerged as novel pathomechanisms in diseases with mitochondrial dysfunction. However, the mechanisms underlying these abnormalities are not clear. Also, we recently showed that sulfide oxidation is impaired in Coenzyme Q10 (CoQ10) deficiency. This finding leads us to hypothesize that the therapeutic effects of CoQ10, frequently administered to patients with primary or secondary mitochondrial dysfunction, might be due to its function as cofactor for sulfide:quinone oxidoreductase (SQOR), the first enzyme in the sulfide oxidation pathway. Here, using biased and unbiased approaches, we show that supraphysiological levels of CoQ10 induces an increase in the expression of SQOR in skin fibroblasts from control subjects and patients with mutations in Complex I subunits genes or CoQ biosynthetic genes. This increase of SQOR induces the downregulation of the cystathionine β-synthase and cystathionine γ-lyase, two enzymes of the transsulfuration pathway, the subsequent downregulation of serine biosynthesis and the adaptation of other sulfide linked pathways, such as folate cycle, nucleotides metabolism and glutathione system. These metabolic changes are independent of the presence of sulfur aminoacids, are confirmed in mouse models, and are recapitulated by overexpression of SQOR, further proving that the metabolic effects of CoQ10 supplementation are mediated by the overexpression of SQOR. Our results contribute to a better understanding of how sulfide metabolism is integrated in one carbon metabolism and may explain some of the benefits of CoQ10 supplementation observed in mitochondrial diseases.
Description
MeSH Terms
Animals
Ataxia
Carbon
Electron Transport
Electron Transport Complex I
Fibroblasts
Glutathione
Humans
Mice
Mice, Inbred C57BL
Mitochondria
Mitochondrial Diseases
Muscle Weakness
Oxidoreductases Acting on Sulfur Group Donors
Skin
Sulfides
Transcriptome
Ubiquinone
Vitamins
Ataxia
Carbon
Electron Transport
Electron Transport Complex I
Fibroblasts
Glutathione
Humans
Mice
Mice, Inbred C57BL
Mitochondria
Mitochondrial Diseases
Muscle Weakness
Oxidoreductases Acting on Sulfur Group Donors
Skin
Sulfides
Transcriptome
Ubiquinone
Vitamins
DeCS Terms
Sulfuros
Metabolismo
Glutatión
Enzimas
Cistationina
Oxidación
Nucleótidos
Fibroblastos
Coenzimas
Oxidorreductasas
Metabolismo
Glutatión
Enzimas
Cistationina
Oxidación
Nucleótidos
Fibroblastos
Coenzimas
Oxidorreductasas
CIE Terms
Keywords
Citation
González-García P, Hidalgo-Gutiérrez A, Mascaraque C, Barriocanal-Casado E, Bakkali M, Ziosi M, et al. Coenzyme Q10 modulates sulfide metabolism and links the mitochondrial respiratory chain to pathways associated to one carbon metabolism. Hum Mol Genet. 2020 Nov 25;29(19):3296-3311.