Endothelial HIF signaling regulates pulmonary fibrosis-associated pulmonary hypertension

Author:

Bryant Andrew J.12,Carrick Ryan P.1,McConaha Melinda E.1,Jones Brittany R.1,Shay Sheila D.1,Moore Christy S.1,Blackwell Thomas R.1,Gladson Santhi1,Penner Niki L.1,Burman Ankita1,Tanjore Harikrishna1,Hemnes Anna R.1,Karwandyar Ayub K.1,Polosukhin Vasiliy V.1,Talati Megha A.1,Dong Hui-Jia2,Gleaves Linda A.1,Carrier Erica J.1,Gaskill Christa1,Scott Edward W.3,Majka Susan M.1,Fessel Joshua P.1,Haase Volker H.4ORCID,West James D.1,Blackwell Timothy S.1567,Lawson William E.17

Affiliation:

1. Department of Medicine, Division of Allergy, Pulmonary and Critical Care Medicine, Vanderbilt University School of Medicine, Nashville, Tennessee;

2. Department of Medicine, Division of Pulmonary, Critical Care and Sleep Medicine, University of Florida College of Medicine, Gainesville, Florida

3. Department of Molecular Genetics & Microbiology, University of Florida College of Medicine, Gainesville, Florida; and

4. Department of Medicine, Division of Nephrology and Hypertension, Vanderbilt University School of Medicine, Nashville, Tennessee;

5. Department of Cell and Developmental Biology, Vanderbilt University School of Medicine, Nashville, Tennessee;

6. Department of Cancer Biology, Vanderbilt University School of Medicine, Nashville, Tennessee; and

7. Department of Veterans Affairs Medical Center, Nashville, Tennessee; and

Abstract

Pulmonary hypertension (PH) complicating chronic parenchymal lung disease, such as idiopathic pulmonary fibrosis, results in significant morbidity and mortality. Since the hypoxia-inducible factor (HIF) signaling pathway is important for development of pulmonary hypertension in chronic hypoxia, we investigated whether HIF signaling in vascular endothelium regulates development of PH related to pulmonary fibrosis. We generated a transgenic model in which HIF is deleted within vascular endothelial cells and then exposed these mice to chronic intraperitoneal bleomycin to induce PH associated with lung fibrosis. Although no differences in the degree of fibrotic remodeling were observed, we found that endothelial HIF-deficient mice were protected against development of PH, including right ventricle and pulmonary vessel remodeling. Similarly, endothelial HIF-deficient mice were protected from PH after a 4-wk exposure to normobaric hypoxia. In vitro studies of pulmonary vascular endothelial cells isolated from the HIF-targeted mice and controls revealed that endothelial HIF signaling increases endothelial cell expression of connective tissue growth factor, enhances vascular permeability, and promotes pulmonary artery smooth muscle cell proliferation and wound healing ability, all of which have the potential to impact the development of PH in vivo. Taken together, these studies demonstrate that vascular endothelial cell HIF signaling is necessary for development of hypoxia and pulmonary fibrosis associated PH. As such, HIF and HIF-regulated targets represent a therapeutic target in these conditions.

Funder

NIH NHLBI

NIH Training Grant

ATS/PHA Fellowship Research Grant

University of Florida Gatorade Fund

NIH NCCR

Department of Veterans Affairs

University of Florida CTSI KL2

University of Florida Pepper Institute

Publisher

American Physiological Society

Subject

Cell Biology,Physiology (medical),Pulmonary and Respiratory Medicine,Physiology

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