A Role for the Long Noncoding RNA SENCR in Commitment and Function of Endothelial Cells
Author(s)
Type
Journal Article
Abstract
Despite the increasing importance of long noncoding RNA in physiology and disease, their role in endothelial biology remains poorly understood. Growing evidence has highlighted them to be essential regulators of human embryonic stem cell differentiation. SENCR, a vascular-enriched long noncoding RNA, overlaps the Friend Leukemia Integration virus 1 (FLI1) gene, a regulator of endothelial development. Therefore, we wanted to test the hypothesis that SENCR may contribute to mesodermal and endothelial commitment as well as in endothelial function. We thus developed new differentiation protocols allowing generation of endothelial cells from human embryonic stem cells using both directed and hemogenic routes. The expression of SENCR was markedly regulated during endothelial commitment using both protocols. SENCR did not control the pluripotency of pluripotent cells; however its overexpression significantly potentiated early mesodermal and endothelial commitment. In human umbilical endothelial cell (HUVEC), SENCR induced proliferation, migration, and angiogenesis. SENCR expression was altered in vascular tissue and cells derived from patients with critical limb ischemia and premature coronary artery disease compared to controls. Here, we showed that SENCR contributes to the regulation of endothelial differentiation from pluripotent cells and controls the angiogenic capacity of HUVEC. These data give novel insight into the regulatory processes involved in endothelial development and function.
Date Issued
2016-04-05
Date Acceptance
2015-12-14
Citation
Molecular Therapy, 2016, 24 (5), pp.978-990
ISSN
1525-0024
Publisher
Nature Publishing Group
Start Page
978
End Page
990
Journal / Book Title
Molecular Therapy
Volume
24
Issue
5
Copyright Statement
This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
License URL
Subjects
Science & Technology
Life Sciences & Biomedicine
Biotechnology & Applied Microbiology
Genetics & Heredity
Medicine, Research & Experimental
Research & Experimental Medicine
EMBRYONIC STEM-CELLS
CORONARY-ARTERY-DISEASE
MOLECULAR-MECHANISMS
BODY FORMATION
MOUSE EMBRYO
FLI1 ACTS
IN-VIVO
ANGIOGENESIS
LINEAGE
DIFFERENTIATION
Biotechnology
06 Biological Sciences
10 Technology
11 Medical And Health Sciences
Publication Status
Published