Related Experiment Video
Updated: Jul 7, 2026

Phenotypic Characterization of Macrophages from Rat Kidney by Flow Cytometry
Published on: October 18, 2016
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.
Abstract:
Renal fibrosis is an irreversible pathological feature of diabetic kidney disease (DKD), and targeting macrophage phenotype is a promising strategy to prolong it. Ras guanine nucleotide-releasing protein 4 (RasGRP4) is a signaling protein involved in immune regulation. This study aimed to investigate how RasGRP4 contributes to kidney fibrosis by regulating scar-associated macrophages (SAM). Kidney biopsy tissues and peripheral blood mononuclear cells (PBMCs) were collected from diabetic patients. Findings indicated that RasGRP4-expressing macrophages infiltrated the kidneys more extensively, and RasGRP4 levels in PBMCs rose with the progression of proteinuria. The DKD model was constructed using RasGRP4 knockout mice to assess the impact of RasGRP4 on renal interstitial fibrosis. Transcriptomic sequencing of PBMCs revealed that RasGRP4-/- reduced the expression of the downstream gene Arachidonate lipoxygenase 3 (Aloxe3), which colocalized with RasGRP4 in macrophages. Aloxe3 was found to enhance oxidative stress, promoting the infiltration of Trem2+SPP1+SAM and the release of fibrotic mediators. In vitro experiments showed that silencing RasGRP4 or Aloxe3 in macrophages downregulated oxidative stress and fibrosis markers associated with SAM. This study is the first to identify RasGRP4 as a key mediator in diabetic kidney fibrosis, acting through Aloxe3-mediated oxidative stress and facilitating SAM activation, thus offering new therapeutic insights for DKD.
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.
Related Concept Videos
Diabetic Retinopathy
Diabetic Nephropathy
Diabetic Neuropathy

