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Native and modified LDL activate extracellular signal-regulated kinases in mesangial cells
A J Jenkins1, V Velarde, R L Klein
1Department of Medicine, Medical University of South Carolina, Charleston 29425, USA.
Abstract:
Glycation and/or oxidation of LDL may promote diabetic nephropathy. The mitogen-activated protein kinase (MAPK) cascade, which includes extracellular signal-regulated protein kinases (ERKs), modulates cell function. Therefore, we examined the effects of LDL on ERK phosphorylation in cultured rat mesangial cells. In cells exposed to 100 microg/ml native LDL or LDL modified by glycation, and/or mild or marked (copper-mediated) oxidation, ERK activation peaked at 5 min. Five minutes of exposure to 10-100 microg/ml native or modified LDL produced a concentration-dependent (up to sevenfold) increase in ERK activity. Also, 10 microg/ml native LDL and mildly modified LDL (glycated and/or mildly oxidized) produced significantly greater ERK activation than that induced by copper-oxidized LDL +/- glycation (P < 0.05). Pretreatment of cells with Src kinase and MAPK kinase inhibitors blocked ERK activation by 50-80% (P < 0.05). Native and mildly modified LDL, which are recognized by the native LDL receptor, induced a transient spike of intracellular calcium. Copper-oxidized (+/- glycation) LDL, recognized by the scavenger receptor, induced a sustained rise in intracellular calcium. The intracellular calcium chelator (EGTA/AM) further increased ERK activation by native and mildly modified LDL (P < 0.05). These findings demonstrate that native and modified LDL activate ERKs 1 and 2, an early mitogenic signal, in mesangial cells and provide evidence for a potential link between modified LDL and the development of glomerular injury in diabetes.
Insights
Modified LDL activates extracellular signal-regulated kinases (ERKs) in kidney cells, potentially linking to diabetic kidney disease. This early mitogenic signal involves intracellular calcium changes and receptor interactions.
Area of Science:
- Nephrology
- Cell Biology
- Diabetology
Background:
- Diabetic nephropathy is a potential complication of LDL modification.
- Mitogen-activated protein kinase (MAPK) cascades, including extracellular signal-regulated protein kinases (ERKs), regulate cellular functions.
- The role of LDL in modulating mesangial cell ERK activity in diabetes is not fully understood.
Purpose of the Study:
- To investigate the effects of native and modified low-density lipoprotein (LDL) on ERK phosphorylation in cultured rat mesangial cells.
- To explore the mechanisms underlying LDL-induced ERK activation, including the role of intracellular calcium and specific receptors.
Main Methods:
- Cultured rat mesangial cells were exposed to native LDL and LDL modified by glycation and/or oxidation.
- ERK activation was measured via phosphorylation.
- Inhibitors of Src kinase and MAPK kinase were used to block ERK activation.
- Intracellular calcium levels were monitored using calcium chelators.
Main Results:
- Native and modified LDL induced a concentration- and time-dependent increase in ERK activation.
- Mildly modified LDL showed greater ERK activation compared to heavily oxidized LDL.
- Inhibitors significantly blocked LDL-induced ERK activation.
- Different LDL modifications led to distinct patterns of intracellular calcium changes.
- Calcium chelation enhanced ERK activation by native and mildly modified LDL.
Conclusions:
- Native and modified LDL activate ERKs 1 and 2 in mesangial cells, representing an early mitogenic signal.
- These findings suggest a potential link between modified LDL and the pathogenesis of glomerular injury in diabetic nephropathy.
- The study highlights the differential roles of LDL receptors and intracellular calcium signaling in mediating these effects.
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