Methionine and Serine Formation in Control and Mutant Human Cultured Fibroblasts: Evidence for Methyl Trapping and Characterization of Remethylation Defects
- 1 January 1997
- journal article
- Published by Springer Nature in Pediatric Research
- Vol. 41 (1) , 145-151
- https://doi.org/10.1203/00006450-199701000-00023
Abstract
The conversion of labeled formate to methionine and serine, as a measure of remethylation of homocysteine to methionine and folate coenzyme cycling, has been studied in control and mutant human fibroblasts. Fibroblasts in monolayer culture were incubated with [14C]formate, and labeled methionine sulfone and serine were determined in hydrolysates of oxidized cell proteins. In control cells, methionine and serine were clearly measurable (n = 21, 1.7-5.5 and 2.4-9.7 nmol/mg protein/16 h, respectively). In contrast, methionine formation was reduced in cells from patients with methylenetetrahydrofolate reductase (MR) deficiency (MR mutant, n = 11, 0.05-0.44), combined methylmalonic aciduria/homocystinuria[cobalamin(cbl)C/D mutant, n = 12, 0.014-0.13), and methionine synthase deficiency (MS mutant, n = 3, 0.04-0.23). Furthermore, serine formation was low in cblC/D mutant (0.08-0.98) and MS mutant(0.17-0.94) cells, but normal or high in MR mutant cells (5.2-11.4). Growth of cblC/D mutant cells in medium supplemented with high concentrations of hydroxo-cbl resulted in significant increases of both methionine and serine formation. Taken together these findings provide clear evidence for the existence of the formate to serine pathway described by W. B. Strong and V. Schirch in cultured fibroblasts and indicate that disturbed MS function due to a specific genetic disorder is associated with reduced serine formation in vitro, which reflects availability of reduced folate coenzymes. The correction of this defect by vitamin B12 alone, in cblC/D mutant cell lines, correlates well with the clinical response in the patients and fits in well with the idea that reduced availability of folate coenzymes occurs in functional MS deficiency, in agreement with the methyl trap hypothesis.Keywords
This publication has 23 references indexed in Scilit:
- Correction of the DNA synthesis defect in vitamin B12 deficiency by tetrahydrofolate: evidence in favour of the methyl‐folate trap hypothesis as the cause of megaloblastic anaemia in vitamin B12 deficiencyBritish Journal of Haematology, 1993
- Biochemical diagnosis and outcome of 2 years treatment in a patient with combined methylmalonic aciduria and homocystinuriaEuropean Journal of Pediatrics, 1992
- Formate metabolism in the cobalamin‐inactivated ratBritish Journal of Haematology, 1990
- In vitro conversion of formate to serine: effect of tetrahydropteroylpolyglutamates and serine hydroxymethyltransferase on the rate of 10-formyltetrahydrofolate synthetaseBiochemistry, 1989
- Comparison of Folic Acid Coenzyme Distribution Patterns in Patients with Methylenetetrahydrofolate Reductase and Methionine Synthetase DeficienciesPediatric Research, 1985
- Cobalamin inactivation decreases purine and methionine synthesis in cultured lymphoblasts.Journal of Clinical Investigation, 1985
- Transsulphuration and methylation of homocysteine in control and mutant human fibroblastsBiochimica et Biophysica Acta (BBA) - Molecular Cell Research, 1982
- Decreased rates of methionine synthesis by methylene tetrahydrofolate reductase-deficient fibroblasts and lymphoblasts.Journal of Clinical Investigation, 1981
- Folate Distribution in Cultured Human CellsJournal of Clinical Investigation, 1979
- A Syndrome of Methylmalonic Aciduria, Homocystinuria, Megaloblastic Anemia and Neurologic Abnormalities in a Vitamin B12-Deficient Breast-Fed Infant of a Strict VegetarianNew England Journal of Medicine, 1978