SGK1 contributes to ferroptosis in coronary heart disease through the NEDD4L/NF-κB pathway

Yong Peng1, Yu Jiang1, Qingfeng Zhou1

  • 1Department of Cardiovascular Surgery, Key Laboratory for Cardiovascular Disease of Yunnan Province, Clinical Medicine Center for Cardiovascular Disease of Yunnan Province, Yan'an Hospital Affiliated to Kunming Medical University, Kunming 650051, China.

Insights

This study reveals that SGK1 promotes ferroptosis in coronary heart disease (CHD) by regulating the NEDD4L-NF-κB pathway. Targeting SGK1 may offer a new therapeutic strategy for treating ferroptosis in CHD.

Area of Science:

  • Cardiovascular Biology
  • Cellular Mechanisms
  • Biomedical Research

Background:

  • Coronary heart disease (CHD) prevalence is rising globally with aging populations.
  • The role of ferroptosis, a regulated cell death pathway, in CHD pathogenesis remains unclear.
  • Investigating ferroptosis mechanisms in CHD is crucial for developing novel therapeutic targets.

Purpose of the Study:

  • To investigate the potential mechanisms of ferroptosis in coronary heart disease (CHD).
  • To identify key genes and pathways involved in ferroptosis during CHD progression.
  • To evaluate SGK1 as a potential therapeutic target for ferroptosis in CHD.

Main Methods:

  • Bioinformatics analysis of CHD gene expression datasets (GSE21610, GSE66360) to identify differentially expressed genes (DEGs).
  • In vitro experiments using mouse aortic endothelial cells (MAECs) to assess the role of SGK1 in ferroptosis.
  • In vivo studies using CHD animal models to validate the therapeutic potential of SGK1 inhibition.

Main Results:

  • Bioinformatics identified intersecting DEGs, including SGK1, predominantly linked to immune and inflammatory responses.
  • SGK1 knockdown in MAECs alleviated ferroptosis markers (e.g., reduced SLC7A11, GPX4 downregulation; decreased lipid peroxidation and Fe accumulation).
  • SGK1 promoted ferroptosis via the NEDD4L-NF-κB pathway, and SGK1 knockdown improved CHD animal model outcomes and reduced aortic Fe accumulation.

Conclusions:

  • SGK1 plays a significant role in promoting endothelial cell ferroptosis in the context of CHD.
  • The SGK1-NEDD4L-NF-κB signaling axis is a key mechanism driving ferroptosis in CHD.
  • SGK1 inhibition represents a promising therapeutic strategy for managing ferroptosis in coronary heart disease.

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