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Microparticles as Potential Mediators of High Glucose-Induced Renal Cell Injury
Sreenithya Ravindran1, Mazhar Pasha1, Abdelali Agouni1
1Department of Pharmaceutical Sciences, College of Pharmacy, QU Health, Qatar University, P.O Box 2713, Doha, Qatar.
Abstract:
Diabetic nephropathy (DN) is the most common cause of chronic kidney disease worldwide. Activation of signaling pathways such as the mammalian target of rapamycin (mTOR), extracellular signal-regulated kinases (ERK), endoplasmic reticulum (ER) stress, transforming growth factor-beta (TGF-β), and epithelial-mesenchymal transition (EMT), are thought to play a significant role in the etiology of DN. Microparticles (MPs), the small membrane vesicles containing bioactive signals shed by cells upon activation or during apoptosis, are elevated in diabetes and were identified as biomarkers in DN. However, their exact role in the pathophysiology of DN remains unclear. Here, we examined the effect of MPs shed from renal proximal tubular cells (RPTCs) exposed to high glucose conditions on naïve RPTCs in vitro. Our results showed significant increases in the levels of phosphorylated forms of 4E-binding protein 1 and ERK1/2 (the downstream targets of mTOR and ERK pathways), phosphorylated-eIF2α (an ER stress marker), alpha smooth muscle actin (an EMT marker), and phosphorylated-SMAD2 and nuclear translocation of SMAD4 (markers of TGF-β signaling). Together, our findings indicate that MPs activate key signaling pathways in RPTCs under high glucose conditions. Pharmacological interventions to inhibit shedding of MPs from RPTCs might serve as an effective strategy to prevent the progression of DN.
Insights
Microparticles shed from high glucose-exposed kidney cells activate harmful signaling pathways in healthy cells. Inhibiting microparticle shedding may prevent diabetic nephropathy progression.
Area of Science:
- Nephrology
- Molecular Biology
- Cell Biology
Background:
- Diabetic nephropathy (DN) is a leading cause of chronic kidney disease.
- Key signaling pathways (mTOR, ERK, ER stress, TGF-β, EMT) are implicated in DN.
- Microparticles (MPs), elevated in diabetes, are potential DN biomarkers, but their role is unclear.
Purpose of the Study:
- To investigate the effect of MPs from high glucose-exposed renal proximal tubular cells (RPTCs) on naïve RPTCs.
- To elucidate the role of MPs in the pathophysiology of diabetic nephropathy.
Main Methods:
- Exposed RPTCs to high glucose conditions to generate MPs.
- Co-cultured these MPs with naïve RPTCs in vitro.
- Assessed levels of phosphorylated proteins and markers for mTOR, ERK, ER stress, TGF-β, and EMT signaling pathways.
Main Results:
- MPs from high glucose-RPTCs significantly increased phosphorylated 4E-binding protein 1 and ERK1/2.
- MPs elevated phosphorylated-eIF2α (ER stress marker) and alpha smooth muscle actin (EMT marker).
- MPs induced phosphorylated-SMAD2 and nuclear translocation of SMAD4, indicating TGF-β pathway activation.
Conclusions:
- MPs shed from RPTCs under high glucose conditions activate key pro-fibrotic and pro-inflammatory signaling pathways in recipient RPTCs.
- Targeting MP shedding from RPTCs presents a potential therapeutic strategy for preventing diabetic nephropathy progression.
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