Endothelial ERK1/2 signaling maintains integrity of the quiescent endothelium

Author:

Ricard Nicolas1,Scott Rizaldy P.2ORCID,Booth Carmen J.3,Velazquez Heino4,Cilfone Nicholas A.56,Baylon Javier L.56,Gulcher Jeffrey R.7,Quaggin Susan E.2ORCID,Chittenden Thomas W.568,Simons Michael19ORCID

Affiliation:

1. Yale Cardiovascular Research Center, Department of Internal Medicine, Yale University School of Medicine, New Haven, CT

2. Feinberg Cardiovascular and Renal Research Institute, Division of Nephrology/Hypertension, Feinberg School of Medicine, Northwestern University, Chicago, IL

3. Department of Comparative Medicine, Yale University School of Medicine, New Haven, CT

4. Department of Medicine, Veterans Affairs Connecticut Healthcare System, Yale University, New Haven, CT

5. Computational Statistics and Bioinformatics Group, Advanced Artificial Intelligence Research Laboratory, WuXi NextCODE, Cambridge, MA

6. Complex Biological Systems Alliance, Medford, MA

7. Cancer Genetics Group, WuXi NextCODE, Cambridge, MA

8. Division of Genetics and Genomics, Boston Children’s Hospital, Harvard Medical School, Boston, MA

9. Department of Cell Biology, Yale University School of Medicine, New Haven, CT

Abstract

To define the role of ERK1/2 signaling in the quiescent endothelium, we induced endothelial Erk2 knockout in adult Erk1−/− mice. This resulted in a rapid onset of hypertension, a decrease in eNOS expression, and an increase in endothelin-1 plasma levels, with all mice dying within 5 wk. Immunostaining and endothelial fate mapping showed a robust increase in TGFβ signaling leading to widespread endothelial-to-mesenchymal transition (EndMT). Fibrosis affecting the cardiac conduction system was responsible for the universal lethality in these mice. Other findings included renal endotheliosis, loss of fenestrated endothelia in endocrine organs, and hemorrhages. An ensemble computational intelligence strategy, comprising deep learning and probabilistic programing of RNA-seq data, causally linked the loss of ERK1/2 in HUVECs in vitro to activation of TGFβ signaling, EndMT, suppression of eNOS, and induction of endothelin-1 expression. All in silico predictions were verified in vitro and in vivo. In summary, these data establish the key role played by ERK1/2 signaling in the maintenance of vascular normalcy.

Funder

George M. O’Brien Kidney Center at Yale University School of Medicine

National Institutes of Health

Publisher

Rockefeller University Press

Subject

Immunology,Immunology and Allergy

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