A novel cause of type 1 von Willebrand disease: impaired exocytosis of Weibel-Palade bodies due to biallelic <i>MADD</i> variants

S Sophie Hordijk (1Department of Hematology, Erasmus University Medical Center, Rotterdam, The Netherlands) S Stijn A. Groten (2Department of Molecular Hematology, Sanquin Research, Amsterdam, The Netherlands) P Petra E. Bürgisser (1Department of Hematology, Erasmus University Medical Center, Rotterdam, The Netherlands) S Sebastiaan N. J. Laan (1Department of Hematology, Erasmus University Medical Center, Rotterdam, The Netherlands) G Georg Christoph Korenke (4Department of Neuropediatrics, Pediatric Center, Oldenburg Hospital, Oldenburg, Germany) T Tomáš Honzík (5Department of Pediatrics and Inherited Metabolic Disorders, First Faculty of Medicine, Charles University and General University Hospital, Prague, Czech Republic) D Diane Beysen (6Department of Paediatric Neurology, University Hospital of Antwerp, Edegem, Belgium) F Frank W. G. Leebeek (1Department of Hematology, Erasmus University Medical Center, Rotterdam, The Netherlands) P Paul A. Skehel (7Department of Biomedical Sciences, Centre for Discovery Brain Sciences, Edinburgh University, Edinburgh, United Kingdom) M Maartje van den Biggelaar (2Department of Molecular Hematology, Sanquin Research, Amsterdam, The Netherlands) T Tom Carter R Ruben Bierings (1Department of Hematology, Erasmus University Medical Center, Rotterdam, The Netherlands)

Abstract

Abstract The regulated secretion of von Willebrand factor (VWF) from Weibel-Palade bodies (WPBs) in endothelial cells is fundamental to hemostasis. This process relies on recruiting Rab GTPases and their effectors to the WPB membrane, with the guanine nucleotide exchange factor MAPK-activating death domain (MADD) playing a central role. Biallelic variants in MADD lead to a pleiotropic neurological and developmental disorder that can include bleeding abnormalities. This study investigates the impact of pathogenic MADD variants on VWF secretion using patient-derived endothelial cells. We isolated endothelial colony-forming cells (ECFCs) from 3 pediatric patients with biallelic MADD variants and unaffected heterozygous family members. All patients exhibited low VWF plasma levels (22-30 IU/dL). Proteomic analysis of patient-derived ECFCs revealed an absence of MADD peptides, reduced VWF, and downregulation of proteins involved in the exocytotic machinery, including Rab3D and the Rab3/27 effector Slp4-a. Functional assays demonstrated diminished Rab27A and Rab3D activity and their failure to localize to WPBs in patient cells. Biochemical and live-imaging studies showed that histamine-induced VWF and VWF propeptide secretion were significantly reduced in patient cells due to delayed and reduced degranulation of WPBs. Our findings demonstrate the critical role of MADD in maintaining the secretion competence of WPBs and the magnitude of VWF secretion by regulating the recruitment of the endothelial exocytotic machinery. This study highlights the in vivo significance of WPB exocytosis in maintaining plasma VWF levels and establishes MADD as the first causal gene for quantitative von Willebrand disease in patients without pathogenic VWF variants.

Article Details

Journal Blood
Volume / Issue Vol. 146, Issue 17
Published October 23, 2025
Pages 2133-2144
ISSN 0006-4971
Publisher Elsevier BV

Journal Info

Blood

Elsevier BV

ISSN: 0006-4971 Health Sciences

Authors (12)

S

Sophie Hordijk

1Department of Hematology, Erasmus University Medical Center, Rotterdam, The Netherlands

S

Stijn A. Groten

2Department of Molecular Hematology, Sanquin Research, Amsterdam, The Netherlands

P

Petra E. Bürgisser

1Department of Hematology, Erasmus University Medical Center, Rotterdam, The Netherlands

S

Sebastiaan N. J. Laan

1Department of Hematology, Erasmus University Medical Center, Rotterdam, The Netherlands

G

Georg Christoph Korenke

4Department of Neuropediatrics, Pediatric Center, Oldenburg Hospital, Oldenburg, Germany

T

Tomáš Honzík

5Department of Pediatrics and Inherited Metabolic Disorders, First Faculty of Medicine, Charles University and General University Hospital, Prague, Czech Republic

D

Diane Beysen

6Department of Paediatric Neurology, University Hospital of Antwerp, Edegem, Belgium

F

Frank W. G. Leebeek

1Department of Hematology, Erasmus University Medical Center, Rotterdam, The Netherlands

P

Paul A. Skehel

7Department of Biomedical Sciences, Centre for Discovery Brain Sciences, Edinburgh University, Edinburgh, United Kingdom

M

Maartje van den Biggelaar

2Department of Molecular Hematology, Sanquin Research, Amsterdam, The Netherlands

T

Tom Carter

R

Ruben Bierings

1Department of Hematology, Erasmus University Medical Center, Rotterdam, The Netherlands