A novel missense variant in ATP11C is associated with reduced red blood cell phosphatidylserine flippase activity and mild hereditary hemolytic anemia.

Jennifer Bos, Richard van Wijk, Eduard J van Beers, Robert S Molday, Lars Kaestner, Stéphane Egée, Donatienne Tyteca, Giulio G Muccioli, Giampaolo Minetti, Anna Bogdanova, Minke A E Rab, Myrthe J van Dijk, Kuntal Dey, Romano Terrasi, Juliette Vanderroost, Anne-Sophie Cloos, Amaury Stommen, Min Qiao, Steffen M Recktenwald, Alexander N Harrison, Brigitte A van Oirschot

Journal: American journal of hematology 2024;98(12):1877-1887

PMID: 37671681

Abstract

Adenosine Triphosphatase (ATPase) Phospholipid Transporting 11C gene (ATP11C) encodes the major phosphatidylserine (PS) flippase in human red blood cells (RBCs). Flippases actively transport phospholipids (e.g., PS) from the outer to the inner leaflet to establish and maintain phospholipid asymmetry of the lipid bilayer of cell membranes. This asymmetry is crucial for survival since externalized PS triggers phagocytosis by splenic macrophages. Here we report on pathophysiological consequences of decreased flippase activity, prompted by a patient with hemolytic anemia and hemizygosity for a novel c.2365C > T p.(Leu789Phe) missense variant in ATP11C. ATP11C protein expression was strongly reduced by 58% in patient-derived RBC ghosts. Furthermore, functional characterization showed only 26% PS flippase activity. These results were confirmed by recombinant mutant ATP11C protein expression in HEK293T cells, which was decreased to 27% compared to wild type, whereas PS-stimulated ATPase activity was decreased by 57%. Patient RBCs showed a mild increase in PS surface exposure when compared to control RBCs, which further increased in the most dense RBCs after RBC storage stress. The increase in PS was not due to higher global membrane content of PS or other phospholipids. In contrast, membrane lipid lateral distribution showed increased abundance of cholesterol-enriched domains in RBC low curvature areas. Finally, more dense RBCs and subtle changes in RBC morphology under flow hint toward alterations in flow behavior of ATP11C-deficient RBCs. Altogether, ATP11C deficiency is the likely cause of hemolytic anemia in our patient, thereby underlining the physiological role and relevance of this flippase in human RBCs.

© 2023 The Authors. American Journal of Hematology published by Wiley Periodicals LLC.

Address: Central Diagnostic Laboratory-Research, University Medical Center Utrecht, Utrecht University, Utrecht, The Netherlands.; Center for Benign Hematology, Thrombosis and Hemostasis-Van Creveldkliniek, University Medical Center Utrecht, Utrecht University, Utrecht, The Netherlands.; Department of Biochemistry and Molecular Biology, University of British Columbia, Vancouver, Canada.; Department of Experimental Physics, Saarland University, Saarbrücken, Germany.; Theoretical Medicine and Biosciences, Saarland University, Homburg, Germany.; CELL Unit and PICT Platform, de Duve Institute, UCLouvain, Brussels, Belgium.; Bioanalysis and Pharmacology of Bioactive Lipids Research Group, Louvain Drug Research Institute, UCLouvain, Brussels, Belgium.; Red Blood Cell Group, Institute of Veterinary Physiology, University of Zurich, Zurich, Switzerland.; Department of Hematology, Erasmus Medical Center Rotterdam, Rotterdam, The Netherlands.; Department of Biology and Biotechnology "L. Spallanzani", Laboratories of Biochemistry, University of Pavia, Pavia, Italy.; UMR 8227 CNRS-Sorbonne Université, Station Biologique de Roscoff, Roscoff, France.

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