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Updated: May 12, 2026

Comparative Proteomic Analysis of Whole Kidney, Medulla, and Cortical Tubules in Diabetic Pathogenesis of Kidney Injury in Mice
Published on: May 2, 2025
Fractalkine and its receptor mediate extracellular matrix accumulation in diabetic nephropathy in mice
1Department of Bioinspired Science, Division of Life and Pharmaceutical Sciences, College of Pharmacy, Ewha Womans University, 52 Ewhayeodae-gil, Seodaemun-gu, Seoul, 120-752, Korea.
Aims/Hypothesis:
Fractalkine (FKN) is a unique chemokine that works as a chemoattractant and an adhesion molecule. Previous studies have demonstrated that FKN plays a role in ischaemic and protein-overload renal injury via its cognate receptor chemokine (C-X3-C motif) receptor 1 (CX3CR1). However, involvement of the FKN/CX3CR1 system in diabetic nephropathy remains unclear. We examined the role of FKN/CX3CR1 in diabetic mice and mouse mesangial cells (MMCs).
Methods:
Streptozotocin (50 mg kg(-1) day(-1)) was intraperitoneally administered for 5 days to male Cx3cr1-knockout (KO) mice and wild-type (WT) mice. MMCs transfected with Fkn (also known as Cx3cl1) or Cx3cr1 siRNA, respectively, were used to elucidate the role of FKN/CX3CR1 in extracellular matrix (ECM) synthesis.
Results:
At 12 weeks, diabetic Cx3cr1 KO mice showed no significant changes in plasma glucose, but markers of renal inflammation, fibrosis and ECM, such as the fractional mesangial area, fibronectin and collagen, were significantly lower in diabetic Cx3cr1 KO mice compared with diabetic WT mice. High glucose, oleic acid and TGF-β1 stimulated FKN and CX3CR1 expression, together with the expression of ECM proteins in MMCs, but the effects were significantly attenuated by Fkn or Cx3cr1 siRNA. More importantly, FKN itself increased mesangial ECM through CX3CR1 and subsequent activation of reactive oxygen species and mitogen-activated protein kinases. A neutralising TGF-β antibody inhibited FKN/CX3CR1 in MMCs treated with diabetic stimuli and decreased FKN-induced ECM accumulation.
Conclusions/Interpretation:
These results demonstrate that FKN/CX3CR1 may play an important role in diabetic renal injury through upregulation of ECM synthesis and could therefore be a therapeutic target for preventing diabetic nephropathy.
Insights
The fractalkine (FKN)/chemokine (C-X3-C motif) receptor 1 (CX3CR1) system drives diabetic kidney injury by increasing extracellular matrix. Targeting FKN/CX3CR1 may prevent diabetic nephropathy.
Area of Science:
- Nephrology and Immunology
- Molecular and Cellular Biology
Background:
- Fractalkine (FKN) is a chemokine involved in renal injury.
- The role of the FKN/chemokine (C-X3-C motif) receptor 1 (CX3CR1) system in diabetic nephropathy is not well understood.
Purpose of the Study:
- To investigate the role of the FKN/CX3CR1 system in diabetic kidney disease.
- To examine the effects of FKN/CX3CR1 on extracellular matrix (ECM) synthesis in mouse mesangial cells (MMCs).
Main Methods:
- Diabetic mouse models were created using streptozotocin in wild-type (WT) and Cx3cr1-knockout (KO) mice.
- Mouse mesangial cells (MMCs) were treated with stimuli mimicking diabetic conditions and transfected with Fkn or Cx3cr1 siRNA.
- Expression levels of renal inflammation, fibrosis, ECM markers, and signaling pathway components were analyzed.
Main Results:
- Diabetic Cx3cr1 KO mice exhibited significantly reduced renal inflammation, fibrosis, and ECM accumulation compared to diabetic WT mice.
- High glucose, oleic acid, and TGF-β1 stimulated FKN and CX3CR1 expression and ECM production in MMCs, effects attenuated by siRNA.
- FKN administration increased mesangial ECM via CX3CR1, activating reactive oxygen species and mitogen-activated protein kinases.
Conclusions:
- The FKN/CX3CR1 system significantly contributes to diabetic renal injury by upregulating ECM synthesis.
- Targeting the FKN/CX3CR1 pathway presents a potential therapeutic strategy for preventing diabetic nephropathy.
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