Spatial Mechano‐Signaling Regulation of GTPases through Non‐Degradative Ubiquitination

Author:

Sewduth Raj N.12,Carai Paolo3,Ivanisevic Tonci12,Zhang Mingzhen4,Jang Hyunbum4,Lechat Benoit12,Van Haver Delphi567,Impens Francis567,Nussinov Ruth48,Jones Elizabeth39,Sablina Anna12ORCID

Affiliation:

1. VIB‐KU Leuven Center for Cancer Biology VIB Leuven 3000 Belgium

2. Department of Oncology KU Leuven Herestraat 49 Leuven 3000 Belgium

3. Department of Cardiovascular Sciences Centre for Molecular and Vascular Biology KU Leuven Herestraat 49 Leuven 3000 Belgium

4. Computational Structural Biology Section Frederick National Laboratory for Cancer Research in the Laboratory of Cancer ImmunoMetabolism National Cancer Institute Frederick MD 21702 USA

5. VIB‐UGent Center for Medical Biotechnology Technologiepark‐Zwijnaarde 75 Ghent 9052 Belgium

6. Department of Biomolecular Medicine Ghent University Technologiepark‐Zwijnaarde 75 Ghent 9052 Belgium

7. VIB Proteomics Core Technologiepark‐Zwijnaarde 75 Ghent 9052 Belgium

8. Department of Human Molecular Genetics and Biochemistry Sackler School of Medicine Tel Aviv University Tel Aviv 69978 Israel

9. Department of Cardiology CARIM School for Cardiovascular Diseases Maastricht University Universiteitssingel 50 Maastricht 6229 ER The Netherlands

Abstract

AbstractBlood flow produces shear stress exerted on the endothelial layer of the vessels. Spatial characterization of the endothelial proteome is required to uncover the mechanisms of endothelial activation by shear stress, as blood flow varies in the vasculature. An integrative ubiquitinome and proteome analysis of shear‐stressed endothelial cells demonstrated that the non‐degradative ubiquitination of several GTPases is regulated by mechano‐signaling. Spatial analysis reveals increased ubiquitination of the small GTPase RAP1 in the descending aorta, a region exposed to laminar shear stress. The ubiquitin ligase WWP2 is identified as a novel regulator of RAP1 ubiquitination during shear stress response. Non‐degradative ubiquitination fine‐tunes the function of GTPases by modifying their interacting network. Specifically, WWP2‐mediated RAP1 ubiquitination at lysine 31 switches the balance from the RAP1/ Talin 1 (TLN1) toward RAP1/ Afadin (AFDN) or RAP1/ RAS Interacting Protein 1 (RASIP1) complex formation, which is essential to suppress shear stress‐induced reactive oxygen species (ROS) production and maintain endothelial barrier integrity. Increased ROS production in endothelial cells in the descending aorta of endothelial‐specific Wwp2‐knockout mice leads to increased levels of oxidized lipids and inflammation. These results highlight the importance of the spatially regulated non‐degradative ubiquitination of GTPases in endothelial mechano‐activation.

Funder

H2020 European Research Council

Fonds Wetenschappelijk Onderzoek

Onderzoeksraad, KU Leuven

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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