RasGRP4 Exacerbates Diabetic Kidney Fibrosis via Aloxe3-Mediated Oxidative Stress and Scar-Associated Macrophage

Binshan Zhang1, Jian Wang1,2, Ashanjiang Aniwan1,3

  • 1NHC Key Lab of Hormones and Development and Tianjin Key Lab of Metabolic Diseases, Tianjin Medical University Chu Hsien-I Memorial Hospital & Institute of Endocrinology, Tianjin, China.

Insights

Ras guanine nucleotide-releasing protein 4 (RasGRP4) drives kidney fibrosis in diabetic kidney disease by activating scar-associated macrophages. Inhibiting RasGRP4 or its downstream target, Aloxe3, reduces oxidative stress and fibrosis, offering new therapeutic avenues.

Area of Science:

  • Nephrology
  • Immunology
  • Molecular Biology

Background:

  • Diabetic kidney disease (DKD) is characterized by irreversible renal fibrosis.
  • Macrophage phenotype modulation is a potential therapeutic strategy for DKD.
  • Ras guanine nucleotide-releasing protein 4 (RasGRP4) is implicated in immune regulation.

Purpose of the Study:

  • To investigate the role of RasGRP4 in DKD-associated kidney fibrosis.
  • To determine if RasGRP4 regulates scar-associated macrophages (SAM).

Main Methods:

  • Analysis of kidney biopsy tissues and peripheral blood mononuclear cells (PBMCs) from diabetic patients.
  • Construction of a DKD mouse model using RasGRP4 knockout mice.
  • Transcriptomic sequencing of PBMCs.
  • In vitro macrophage experiments.

Main Results:

  • RasGRP4-expressing macrophages were more prevalent in fibrotic kidneys, and RasGRP4 levels correlated with proteinuria.
  • RasGRP4 knockout reduced renal interstitial fibrosis and downregulated the downstream gene Arachidonate lipoxygenase 3 (Aloxe3).
  • Aloxe3 promoted oxidative stress, SAM infiltration (Trem2+SPP1+), and fibrotic mediator release.
  • Silencing RasGRP4 or Aloxe3 in macrophages decreased oxidative stress and SAM-associated fibrosis markers.

Conclusions:

  • RasGRP4 is a key mediator in diabetic kidney fibrosis.
  • RasGRP4 facilitates SAM activation via Aloxe3-mediated oxidative stress.
  • Targeting RasGRP4 or Aloxe3 presents a novel therapeutic strategy for DKD.

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