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Severe vascular calcification and tumoral calcinosis in a family with hyperphosphatemia: a fibroblast growth factor 23 mutation identified by exome sequencing

Anuja Shah, Clinton Miller, Cynthia C. Nast, Mark D. Adams, Barbara Truitt, John A. Tayek, Lili Tong, Parag Mehtani, Francisco Monteón, John R. Sedor, Erica L. Clinkenbeard, Kenneth E. White, Rajnish Mehrotra, Janine LaPage, Patricia Dickson, Sharon G. Adler, Sudha K. Iyengar

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Abstract

BackgroundTumoral calcinosis is an autosomal recessive disorder characterized by ectopic calcification and hyperphosphatemia.MethodsWe describe a family with tumoral calcinosis requiring amputations. The predominant metabolic anomaly identified in three affected family members was hyperphosphatemia. Biochemical and phenotypic analysis of 13 kindred members, together with exome analysis of 6 members, was performed.ResultsWe identified a novel Q67K mutation in fibroblast growth factor 23 (FGF23), segregating with a null (deletion) allele on the other FGF23 homologue in three affected members. Affected siblings had high circulating plasma C-terminal FGF23 levels, but undetectable intact FGF23 or N-terminal FGF23, leading to loss of FGF23 function.ConclusionsThis suggests that in human, as in experimental models, severe prolonged hyperphosphatemia may be sufficient to produce bone differentiation proteins in vascular cells, and vascular calcification severe enough to require amputation. Genetic modifiers may contribute to the phenotypic variation within and between families.

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BackgroundTumoral calcinosis is an autosomal recessive disorder characterized by ectopic calcification and hyperphosphatemia.MethodsWe describe a family with tumoral calcinosis requiring amputations. The predominant metabolic anomaly identified in three affected family members was hyperphosphatemia. Biochemical and phenotypic analysis of 13 kindred members, together with exome analysis of 6 members, was performed.ResultsWe identified a novel Q67K mutation in fibroblast growth factor 23 (FGF23), segregating with a null (deletion) allele on the other FGF23 homologue in three affected members. Affected siblings had high circulating plasma C-terminal FGF23 levels, but undetectable intact FGF23 or N-terminal FGF23, leading to loss of FGF23 function.ConclusionsThis suggests that in human, as in experimental models, severe prolonged hyperphosphatemia may be sufficient to produce bone differentiation proteins in vascular cells, and vascular calcification severe enough to require amputation. Genetic modifiers may contribute to the phenotypic variation within and between families.

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Available abstract

BackgroundTumoral calcinosis is an autosomal recessive disorder characterized by ectopic calcification and hyperphosphatemia.MethodsWe describe a family with tumoral calcinosis requiring amputations. The predominant metabolic anomaly identified in three affected family members was hyperphosphatemia. Biochemical and phenotypic analysis of 13 kindred members, together with exome analysis of 6 members, was performed.ResultsWe identified a novel Q67K mutation in fibroblast growth factor 23 (FGF23), segregating with a null (deletion) allele on the other FGF23 homologue in three affected members. Affected siblings had high circulating plasma C-terminal FGF23 levels, but undetectable intact FGF23 or N-terminal FGF23, leading to loss of FGF23 function.ConclusionsThis suggests that in human, as in experimental models, severe prolonged hyperphosphatemia may be sufficient to produce bone differentiation proteins in vascular cells, and vascular calcification severe enough to require amputation. Genetic modifiers may contribute to the phenotypic variation within and between families.

Key concepts: Hyperphosphatemia, Tumoral calcinosis, Exome sequencing, Ectopic calcification, Fibroblast growth factor 23, Calcinosis, Calcification, Medicine

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