4.7 Article

Germline De Novo Mutations in ATP1A1 Cause Renal Hypomagnesemia, Refractory Seizures, and Intellectual Disability

期刊

AMERICAN JOURNAL OF HUMAN GENETICS
卷 103, 期 5, 页码 808-816

出版社

CELL PRESS
DOI: 10.1016/j.ajhg.2018.10.004

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资金

  1. B.C Children's Hospital Foundation [C-II-2]
  2. Genome British Columbia [SOF-195]
  3. Canadian Institutes of Health Research [301221]
  4. Michael Smith Foundation for Health Foundation Research Scholar Award
  5. Lundbeck Foundation [R223-2016-595]
  6. Danish Medical Research Council [7016-00193B]
  7. Kids Kidney Research
  8. Kidney Research UK
  9. St Peter's Trust for Kidney Bladder and Prostate Research
  10. David and Elaine Potter Foundation
  11. European Union, 7th Framework Program [2012-305608]
  12. Deutsche Forschungsgemeinschaft [BA4436/2-1, SFB699]
  13. Hans-Joachim-Bodlee Foundation

向作者/读者索取更多资源

Over the last decades, a growing spectrum of monogenic disorders of human magnesium homeostasis has been clinically characterized, and genetic studies in affected individuals have identified important molecular components of cellular and epithelial magnesium transport. Here, we describe three infants who are from non-consanguineous families and who presented with a disease phenotype consisting of generalized seizures in infancy, severe hypomagnesemia, and renal magnesium wasting. Seizures persisted despite magnesium supplementation and were associated with significant intellectual disability. Whole-exome sequencing and conventional Sanger sequencing identified heterozygous de novo mutations in the catalytic Na+, K+-ATPase alpha 1 subunit (ATP1A1). Functional characterization of mutant Na+, K+-ATPase alpha 1 subunits in heterologous expression systems revealed not only a loss of Na+, K+-ATPase function but also abnormal cation permeabilities, which led to membrane depolarization and possibly aggravated the effect of the loss of physiological pump activity. These findings underline the indispensable role of the alpha 1 isoform of the Na+, K+-ATPase for renal-tubular magnesium handling and cellular ion homeostasis, as well as maintenance of physiologic neuronal activity.

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