Identification of atheroprone shear stress responsive regulatory elements in endothelial cells

Author:

Bondareva Olga12,Tsaryk Roman23,Bojovic Vesna1,Odenthal-Schnittler Maria14,Siekmann Arndt F235,Schnittler Hans-J12

Affiliation:

1. Institute of Anatomy and Vascular Biology, Faculty of Medicine, Westfälische Wilhelms-Universität Münster, Vesaliusweg 2-4, Münster, Germany

2. Cells-in-Motion Cluster of Excellence (EXC 1003 – CiM), Westfälische Wilhelms University of Münster, Waldeyerstrasse 15, Münster, Germany

3. Max Planck Institute for Molecular Biomedicine, Röntgenstrasse 20, 48149 Münster, Germany

4. Department of Ophthalmology, Westfälische Wilhelms University of Münster, Faculty of Medicine, Domagkstrasse 15, Muenster, Germany

5. Department of Cell and Developmental Biology and Cardiovascular Institute, Perelman School of Medicine at the University of Pennsylvania, 421 Curie Boulevard, Philadelphia, Pennsylvania, USA

Abstract

Abstract Aims Oscillatory shear stress (OSS) is an atheroprone haemodynamic force that occurs in areas of vessel irregularities and is implicated in the pathogenesis of atherosclerosis. Changes in signalling and transcriptional programme in response to OSS have been vigorously studied; however, the underlying changes in the chromatin landscape controlling transcription remain to be elucidated. Here, we investigated the changes in the regulatory element (RE) landscape of endothelial cells under atheroprone OSS conditions in an in vitro model. Methods and results Analyses of H3K27ac chromatin immunoprecipitation-Seq enrichment and RNA-Seq in primary human umbilical vein endothelial cells 6 h after onset of OSS identified 2806 differential responsive REs and 33 differentially expressed genes compared with control cells kept under static conditions. Furthermore, gene ontology analyses of putative RE-associated genes uncovered enrichment of WNT/HIPPO pathway and cytoskeleton reorganization signatures. Transcription factor (TF) binding motif analysis within RE sequences identified over-representation of ETS, Zinc finger, and activator protein 1 TF families that regulate cell cycle, proliferation, and apoptosis, implicating them in the development of atherosclerosis. Importantly, we confirmed the activation of EGR1 as well as the YAP/TAZ complex early (6 h) after onset of OSS in both cultured human vein and artery endothelial cells and, by undertaking luciferase assays, functionally verified their role in RE activation in response to OSS. Conclusions Based on the identification and verification of specific responsive REs early upon OSS exposure, we propose an expanded mechanism of how OSS might contribute to the development of atherosclerosis.

Funder

Graduate School of the Cells-in-Motion Cluster of Excellence

Westfälische Wilhelms University of Münster

International Max Planck Research School – Molecular Biomedicine

German Research Council

DFG

Federal Ministry of Education and Research

SCHN

DFG INST

BMBF

Excellence Cluster Cells-in-Motion (CiM) flexible fund

Publisher

Oxford University Press (OUP)

Subject

Physiology (medical),Cardiology and Cardiovascular Medicine,Physiology

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