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Park, Sung Ho
Laboratory of Molecular Immunology
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2 '-5 ' oligoadenylate synthetase-like 1 (OASL1) protects against atherosclerosis by maintaining endothelial nitric oxide synthase mRNA stability

Author(s)
Kim, Tae KyeongJeon, SejinPark, SeonjunSonn, Seong-KeunSeo, SeungwoonSuh, JoowonJin, JingKweon, Hyae YonKim, SinaiMoon, Shin HyeKweon, OkheeKoo, Bon-HyeockKim, NayoungLee, Hae-OckKim, Young-MyeongKim, Young-JoonPark, Sung HoOh, Goo Taeg
Issued Date
2022-11
DOI
10.1038/s41467-022-34433-z
URI
https://scholarworks.unist.ac.kr/handle/201301/60471
Citation
NATURE COMMUNICATIONS, v.13, no.1, pp.6647
Abstract
Maintaining optimal eNOS levels is important during cardiovascular events, although little is known regarding the mechanism of eNOS protection. Here, the authors show a regulatory role of endothelial OASL1 in maintaining eNOS mRNA stability and vascular biology under atheroprone conditions. Endothelial nitric oxide synthase (eNOS) decreases following inflammatory stimulation. As a master regulator of endothelial homeostasis, maintaining optimal eNOS levels is important during cardiovascular events. However, little is known regarding the mechanism of eNOS protection. In this study, we demonstrate a regulatory role for endothelial expression of 2 '-5 ' oligoadenylate synthetase-like 1 (OASL1) in maintaining eNOS mRNA stability during athero-prone conditions and consider its clinical implications. A lack of endothelial Oasl1 accelerated plaque progression, which was preceded by endothelial dysfunction, elevated vascular inflammation, and decreased NO bioavailability following impaired eNOS expression. Mechanistically, knockdown of PI3K/Akt signaling-dependent OASL expression increased Erk1/2 and NF-kappa B activation and decreased NOS3 (gene name for eNOS) mRNA expression through upregulation of the negative regulatory, miR-584, whereas a miR-584 inhibitor rescued the effects of OASL knockdown. These results suggest that OASL1/OASL regulates endothelial biology by protecting NOS3 mRNA and targeting miR-584 represents a rational therapeutic strategy for eNOS maintenance in vascular disease.
Publisher
NATURE PORTFOLIO
ISSN
2041-1723
Keyword
OXIDATIVE STRESSGENE-EXPRESSIONDOWN-REGULATIONPATHOGENESISDYSFUNCTIONDEFICIENCYPROMOTESTRANSCRIPTIONPATHWAYDISEASE

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