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.

Redox Biology
|October 3, 2020
PubMed

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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