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Genetic Analysis of Hereditary Transthyretin Ala97Ser Related Amyloidosis
Published on: June 9, 2018
Clinical variability of ATP11C-related hemolytic anemia: expanding the phenotypic and diagnostic spectrum
Vanessa D'Onofrio1,2, Federica Maria Esposito1,2, Roberta Marra2
1Department of Molecular Medicine and Medical Biotechnology, University of Naples Federico II, Naples, Italy.
Abstract:
The ATP11C gene, localized on the X chromosome, encodes the major phosphatidylserine flippase in human red blood cells (RBCs). Flippases actively transport phospholipids from the outer to the inner leaflet of the lipid bilayer, establishing and maintaining phospholipid asymmetry crucial for cell survival. Variants in ATP11C have been recently associated with a novel form of X-linked congenital hemolytic anemia. In this study, we identified 10 individuals from 7 unrelated families harboring 6 rare, novel variants in the ATP11C gene. Three of the variants were further characterized and functionally validated. Of note, the first variant, p.R467C, was identified in a male neonate presenting with mild hemolytic anemia. The second variant, c.2226-1G>C, was found in a male aged 53 years who was originally suspected of hereditary hemochromatosis. The third variant, p.D609V, was detected in a female aged 68 years with mild anemia. Functional studies revealed reduced ATP11C protein expression, as well as decreased flippase activity both in vitro and in ex vivo RBCs supporting a loss-of-function mechanism. Additionally, in the female patient, we identified skewed X-chromosome inactivation, because of which the pathogenic effect of the heterozygous ATP11C variant became clinically evident. Our study expands the clinical spectrum of ATP11C-related hemolytic anemia, highlighting its association with adult-onset disease and hepatic iron overload. We emphasize the importance of including ATP11C in genetic testing for the diagnosis of hereditary hemolytic anemia and iron metabolism alterations. These findings enhance our understanding of RBCs membrane homeostasis and elucidate the critical role of ATP11C in erythropoiesis and systemic iron regulation.
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