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Galactose Supplementation in Patients With TMEM165-CDG Rescues the Glycosylation Defects
Willy Morelle1, Sven Potelle1, Peter Witters2
1Université Lille, Centre National de la Recherche Française, UMR 8576-Unité de Glycobiologie Structurale et Fonctionnelle-Unité de Glycobiologie Structurale et Fonctionnelle, F-59000 Lille, France.
Context:
TMEM165 deficiency is a severe multisystem disease that manifests with metabolic, endocrine, and skeletal involvement. It leads to one type of congenital disorders of glycosylation (CDG), a rapidly growing group of inherited diseases in which the glycosylation process is altered. Patients have decreased galactosylation by serum glycan analysis. There are >100 CDGs, but only specific types are treatable.
Objective:
Galactose has been shown to be beneficial in other CDG types with abnormal galactosylation. The aim of this study was to characterize the effects of galactose supplementation on Golgi glycosylation in TMEM165-depleted HEK293 cells, as well as in 2 patients with TMEM165-CDG and in their cultured skin fibroblast cells.
Design And Setting:
Glycosylation was assessed by mass spectrometry, western blot analysis, and transferrin isoelectrofocusing.
Patients And Interventions:
Both unrelated patients with TMEM165-CDG with the same deep intronic homozygous mutation (c.792+182G>A) were allocated to receive d-galactose in a daily dose of 1 g/kg.
Results:
We analyzed N-linked glycans and glycolipids in knockout TMEM165 HEK293 cells, revealing severe hypogalactosylation and GalNAc transfer defects. Although these defects were completely corrected by the addition of Mn2+, we demonstrated that the observed N-glycosylation defect could also be overcome by galactose supplementation. We then demonstrated that oral galactose supplementation in patients with TMEM165-deficient CDG improved biochemical and clinical parameters, including a substantial increase in the negatively charged transferrin isoforms, and a decrease in hypogalactosylated total N-glycan structures, endocrine function, and coagulation parameters.
Conclusion:
To our knowledge, this is the first description of abnormal glycosylation of lipids in the TMEM165 defect and the first report of successful dietary treatment in TMEM165 deficiency. We recommend the use of oral d-galactose therapy in TMEM165-CDG.
Insights
Oral d-galactose therapy effectively corrects glycosylation defects in TMEM165 deficiency, a severe congenital disorder of glycosylation (CDG). This treatment improved biochemical and clinical parameters in patients, offering a new therapeutic approach for TMEM165-CDG.
Area of Science:
- Biochemistry
- Genetics
- Metabolic Disorders
Background:
- TMEM165 deficiency causes a severe multisystem disorder, a type of congenital disorder of glycosylation (CDG), characterized by impaired galactosylation.
- Over 100 CDGs exist, but only a subset are treatable, highlighting the need for targeted therapies.
Observation:
- Galactose supplementation has shown promise in other CDG types with defective galactosylation.
- This study investigated galactose's effects on Golgi glycosylation in TMEM165-depleted cells and patients with TMEM165-CDG.
Findings:
- TMEM165 deficiency in cells showed severe hypogalactosylation and GalNAc transfer defects, which were reversed by galactose supplementation.
- Oral d-galactose therapy in TMEM165-CDG patients significantly improved biochemical markers and clinical symptoms, including endocrine and coagulation functions.
Implications:
- This research presents the first evidence of abnormal lipid glycosylation in TMEM165 defects.
- The study establishes oral d-galactose as a successful dietary treatment for TMEM165-CDG, recommending its clinical use.
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