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En Face Detection of Nitric Oxide and Superoxide in Endothelial Layer of Intact Arteries
Published on: February 25, 2016
The correlation of IRE1α oxidation with Nox4 activation in aging-associated vascular dysfunction
Hwa-Young Lee1, Hyun-Kyoung Kim2, The-Hiep Hoang1
1Department of Pharmacology and Institute of New Drug Development, Jeonbuk National University Medical School, Jeonju, Jeonbuk, 54907, Republic of Korea; Non-Clinical Evaluation Center Biomedical Research Institute, Jeonbuk National University Hospital, Jeonju, Jeonbuk, 54907, South Korea.
Abstract:
Oxidative stress attributable to the activation of a Nox4-containing NADPH oxidase is involved in aging-associated vascular dysfunction. However, the Nox4-induced signaling mechanism for the vascular alteration in aging remains unclear. In an aged aorta, the expression of Nox4 mRNA and protein by Nox family of genes was markedly increased compared with a young aorta. Nox4 localization mainly to ER was also established. In the aorta of Nox4 WT mice aged 23-24 months (aged), reactive oxygen species (ROS) and endoplasmic reticulum (ER)/oxidative stress were markedly increased compared with the counter KO mice. Furthermore, endothelial functions including eNOS coupling process and acetylcholine-induced vasodilation were significantly disturbed in the aged WT, slightly affected in the counter KO aorta. Consistently, in d-galactose-induced in vitro aging condition, ER-ROS and its associated ER Nox4 expression and activity were highly increased. Also, in chronic d-galactose-treated condition, IRE1α phosphorylation and XBP-1 splicing and were transiently increased, but IRE1α sulfonation was robustly increased in the aging Nox4 WT condition when compared to the counter KO condition. In vitro D-gal-induced aging study, the phenomenon were abrogated with Nox4 knock-down condition and was significantly decreased in GKT, Nox4 inhibitor and 4-PBA, ER chemical chaperone-treated human umbilical vein endothelial cells. The state of Nox4-based ER redox imbalance/ROS accumulation is suggested to determine the pathway "the UPR; IRE1α phosphorylation and XBP-1 splicing and the UPR failure; IRE1α cysteine-based oxidation, especially sulfonation, finally controlling aging-associated vascular dysfunction.
Insights
Oxidative stress from Nox4 NADPH oxidase contributes to vascular aging. This study reveals Nox4’s role in endoplasmic reticulum stress and endothelial dysfunction, highlighting it as a therapeutic target for aging blood vessels.
Area of Science:
- Vascular Biology
- Oxidative Stress
- Aging Research
Background:
- Aging-associated vascular dysfunction is linked to oxidative stress from Nox4 NADPH oxidase.
- The precise signaling mechanisms by which Nox4 contributes to vascular aging remain incompletely understood.
Purpose of the Study:
- To elucidate the role of Nox4 in aging-related vascular alterations.
- To investigate the signaling pathways involving Nox4, endoplasmic reticulum (ER) stress, and endothelial dysfunction in aging.
Main Methods:
- Comparison of aged (23-24 months) Nox4 wild-type (WT) mice with knockout (KO) controls.
- Assessment of reactive oxygen species (ROS), ER stress markers (IRE1α phosphorylation, XBP-1 splicing, IRE1α sulfonation), and endothelial function (eNOS coupling, vasodilation).
- In vitro aging models using d-galactose treatment and human umbilical vein endothelial cells (HUVECs) with Nox4 knockdown or inhibitors.
Main Results:
- Aged WT mice exhibited significantly increased Nox4 expression, ER localization, ROS levels, and ER/oxidative stress compared to KO mice.
- Endothelial function, including eNOS coupling and acetylcholine-induced vasodilation, was impaired in aged WT mice.
- Nox4 inhibition or knockdown, along with ER chemical chaperones, ameliorated aging-related ER stress and dysfunction in vitro.
Conclusions:
- Nox4-derived oxidative stress and ER redox imbalance are key drivers of aging-associated vascular dysfunction.
- Nox4 influences the unfolded protein response (UPR) pathway, leading to ER stress and endothelial dysfunction through IRE1α oxidation, particularly sulfonation.
- Targeting Nox4 presents a potential therapeutic strategy for mitigating vascular aging.
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