A nanobody against the VWF A3 domain detects ADAMTS13-induced proteolysis in congenital and acquired VWD

Author:

Kizlik-Masson Claire1,Peyron Ivan1ORCID,Gangnard Stéphane1,Le Goff Gaelle2,Lenoir Solen M2,Damodaran Sandra2,Clavel Marie3,Roullet Stéphanie1ORCID,Regnault Véronique4,Rauch Antoine5ORCID,Vincent Flavien5,Jeanpierre Emmanuelle5,Dupont Annabelle5,Ternisien Catherine6,Donnet Thibault2,Christophe Olivier D.1ORCID,van Belle Eric5,Denis Cécile V.1ORCID,Casari Caterina1ORCID,Susen Sophie56ORCID,Lenting Peter J.1ORCID

Affiliation:

1. 1Laboratory for Hemostasis, Inflammation & Thrombosis, Unité Mixte de Recherche 1176, Institut National de la Santé et de la Recherche Médicale, Université Paris-Saclay, Le Kremlin-Bicêtre, France

2. 2Diagnostica Stago, Unités de recherche & développement, Gennevilliers, France

3. 3Inovarion, Paris, France

4. 4Université de Lorraine, Laboratory for Acute and Chronic Cardiovascular Deficiency (DCAC), Institut National de la Santé et de la Recherche Médicale Unité 1116, Nancy, France

5. 5Université de Lille, Centre Hospitalier Universitaire Lille, Institut Pasteur de Lille, Institut National de la Santé et de la Recherche Médicale Unité 1011, Lille, France

6. 6French Reference Center for von Willebrand Disease (CRMW), Lille, France

Abstract

Abstract von Willebrand factor (VWF) is a multimeric protein, the size of which is regulated via ADAMTS13-mediated proteolysis within the A2 domain. We aimed to isolate nanobodies distinguishing between proteolyzed and non-proteolyzed VWF, leading to the identification of a nanobody (designated KB-VWF-D3.1) targeting the A3 domain, the epitope of which overlaps the collagen-binding site. Although KB-VWF-D3.1 binds with similar efficiency to dimeric and multimeric derivatives of VWF, binding to VWF was lost upon proteolysis by ADAMTS13, suggesting that proteolysis in the A2 domain modulates exposure of its epitope in the A3 domain. We therefore used KB-VWF-D3.1 to monitor VWF degradation in plasma samples. Spiking experiments showed that a loss of 10% intact VWF could be detected using this nanobody. By comparing plasma from volunteers to that from congenital von Willebrand disease (VWD) patients, intact-VWF levels were significantly reduced for all VWD types, and most severely in VWD type 2A–group 2, in which mutations promote ADAMTS13-mediated proteolysis. Unexpectedly, we also observed increased proteolysis in some patients with VWD type 1 and VWD type 2M. A significant correlation (r = 0.51, P < .0001) between the relative amount of high–molecular weight multimers and levels of intact VWF was observed. Reduced levels of intact VWF were further found in plasmas from patients with severe aortic stenosis and patients receiving mechanical circulatory support. KB-VWF-D3.1 is thus a nanobody that detects changes in the exposure of its epitope within the collagen-binding site of the A3 domain. In view of its unique characteristics, it has the potential to be used as a diagnostic tool to investigate whether a loss of larger multimers is due to ADAMTS13-mediated proteolysis.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

Reference36 articles.

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