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Association between coenzyme Q10 and glucose transporter (GLUT1) deficiency
Delia Yubero1, Mar O'Callaghan2, Raquel Montero3
1Clinical Biochemistry, Pediatric Neurology, Histopathology, Gastroenterology-Nutrition and Neuromuscular Unit Departments. Hospital Sant Joan de Déu and Centre For research in rare diseases (CIBERER), Instituto de Salud Carlos III, Passeig Sant Joan de Déu, 2, 08950, Esplugues, Barcelona, Spain. dyubero@fsjd.org.
Insights
Glucose transporter type 1 (GLUT1) deficiency may cause coenzyme Q10 deficiency in pediatric patients. This finding suggests a potential new therapeutic target for GLUT1 deficiency, possibly through ketogenic diets or CoQ supplementation.
Area of Science:
- Neurology
- Biochemistry
- Genetics
Background:
- Glucose transporter type 1 (GLUT1) deficiency is linked to reduced cerebral lipid synthesis in mouse models.
- This impaired lipid biosynthesis may precipitate secondary coenzyme Q10 (CoQ) deficiency.
- This study investigates the association between GLUT1 deficiency and CoQ deficiency in a pediatric patient.
Observation:
- A 15-year-old female presented with truncal ataxia, nystagmus, dysarthria, and myoclonic epilepsy.
- Elevated blood lactate and alanine levels, alongside deficient CoQ in muscle and fibroblasts, were noted.
- Cerebrospinal fluid analysis revealed diminished glucose concentrations, confirming GLUT1 deficiency.
Findings:
- Coenzyme Q10 supplementation partially improved ataxia and nystagmus.
- A ketogenic diet led to an excellent clinical outcome, suggesting its efficacy in managing GLUT1 deficiency.
- Functional studies indicated that CoQ deficiency may be pathogenic in GLUT1-mutant cells.
Implications:
- Coenzyme Q10 deficiency may represent a novel pathogenic factor in Glucose Transporter Type 1 Deficiency (G1D).
- Further research in larger patient cohorts and animal models is warranted to confirm these findings.
- Adjuvant CoQ therapy could be explored alongside ketogenic diets for G1D management.
Background:
It has been demonstrated that glucose transporter (GLUT1) deficiency in a mouse model causes a diminished cerebral lipid synthesis. This deficient lipid biosynthesis could contribute to secondary CoQ deficiency. We report here, for the first time an association between GLUT1 and coenzyme Q10 deficiency in a pediatric patient.
Case Presentation:
We report a 15 year-old girl with truncal ataxia, nystagmus, dysarthria and myoclonic epilepsy as the main clinical features. Blood lactate and alanine values were increased, and coenzyme Q10 was deficient both in muscle and fibroblasts. Coenzyme Q10 supplementation was initiated, improving ataxia and nystagmus. Since dysarthria and myoclonic epilepsy persisted, a lumbar puncture was performed at 12 years of age disclosing diminished cerebrospinal glucose concentrations. Diagnosis of GLUT1 deficiency was confirmed by the presence of a de novo heterozygous variant (c.18+2T>G) in the SLC2A1 gene. No mutations were found in coenzyme Q10 biosynthesis related genes. A ketogenic diet was initiated with an excellent clinical outcome. Functional studies in fibroblasts supported the potential pathogenicity of coenzyme Q10 deficiency in GLUT1 mutant cells when compared with controls.
Conclusion:
Our results suggest that coenzyme Q10 deficiency might be a new factor in the pathogenesis of G1D, although this deficiency needs to be confirmed in a larger group of G1D patients as well as in animal models. Although ketogenic diet seems to correct the clinical consequences of CoQ deficiency, adjuvant treatment with CoQ could be trialled in this condition if our findings are confirmed in further G1D patients.
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