Dominant Isolated Renal Magnesium Loss Is Caused by Misrouting of the Na+,K+‐ATPase γ‐Subunit
- 1 April 2003
- journal article
- Published by Wiley in Annals of the New York Academy of Sciences
- Vol. 986 (1) , 437-443
- https://doi.org/10.1111/j.1749-6632.2003.tb07226.x
Abstract
Hereditary primary hypomagnesemia comprises a clinically and genetically heterogeneous group of disorders in which hypomagnesemia is due to either renal or intestinal Mg(2+) wasting. These disorders share the general symptoms of hypomagnesemia, tetany and epileptiformic convulsions, and often include secondary or associated disturbances in calcium excretion. In a large Dutch family with autosomal dominant renal hypomagnesemia, associated with hypocalciuria, we mapped the disease locus to a 5.6-cM region on chromosome 11q23. After candidate screening, we identified a heterozygous mutation in the FXYD2 gene, encoding the Na(+),K(+)-ATPase gamma-subunit, cosegregating with the patients of this family, which was not found in 132 control chromosomes. The mutation leads to a G41R substitution, introducing a charged amino acid residue in the predicted transmembrane region of the gamma-subunit protein. Expression studies in insect Sf9 and COS-1 cells showed that the mutant gamma-subunit protein was incorrectly routed and accumulated in perinuclear structures. In addition to disturbed routing of the G41R mutant, Western blot analysis of Xenopus oocytes expressing wild-type or mutant gamma-subunit showed mutant gamma-subunit lacking a posttranslational modification. Finally, we investigated two individuals lacking one copy of the FXYD2 gene and found their serum Mg(2+) levels to be within the normal range. We conclude that the arrest of mutant gamma-subunit in distinct intracellular structures is associated with aberrant posttranslational processing and that the G41R mutation causes dominant renal hypomagnesemia associated with hypocalciuria through a dominant negative mechanism.Keywords
This publication has 23 references indexed in Scilit:
- A functional interaction between CHIF and Na-K-ATPase: implication for regulation by FXYD proteinsAmerican Journal of Physiology-Renal Physiology, 2002
- Distinct Regulatory Effects of the Na,K-ATPase γ SubunitJournal of Biological Chemistry, 2002
- Differential Regulation of Renal Na,K-ATPase by Splice Variants of the γ SubunitPublished by Elsevier ,2002
- Functional Role and Immunocytochemical Localization of the γa and γb Forms of the Na,K-ATPase γ SubunitJournal of Biological Chemistry, 2001
- Expression and Functional Role of the γ Subunit of the Na,K-ATPase in Mammalian CellsPublished by Elsevier ,1999
- Hereditary Isolated Renal Magnesium Loss Maps to Chromosome 11q23American Journal of Human Genetics, 1999
- Tissue-specific Distribution and Modulatory Role of the γ Subunit of the Na,K-ATPaseJournal of Biological Chemistry, 1997
- Molecular cloning and immunological characterization of the gamma polypeptide, a small protein associated with the Na,K-ATPase.The Journal of cell biology, 1993
- Renal magnesium wasting in two families with autosomal dominant inheritanceKidney International, 1987
- Characterization of a new photoaffinity derivative of ouabain: labeling of the large polypeptide and of a proteolipid component of the (sodium-potassium ion)-dependent ATPaseBiochemistry, 1978