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Erk5 is a mediator to TGFβ1-induced loss of phenotype and function in human podocytes
Irbaz I Badshah1, Deborah L Baines2, Mark E Dockrell3
1South West Thames Institute for Renal Research Surrey, UK ; St. George's, University of London London, UK.
Background:
Podocytes are highly specialized cells integral to the normal functioning kidney, however, in diabetic nephropathy injury occurs leading to a compromised phenotype and podocyte dysfunction which critically produces podocyte loss with subsequent renal impairment. TGFβ1 holds a major role in the development of diabetic nephropathy. Erk5 is an atypical mitogen-activated protein (MAP) kinase involved in pathways modulating cell survival, proliferation, differentiation, and motility. Accordingly, the role of Erk5 in mediating TGFβ1-induced podocyte damage was investigated.
Methods:
Conditionally immortalized human podocytes were stimulated with TGFβ1 (2.5 ng/ml); inhibition of Erk5 activation was conducted with the chemical inhibitor BIX02188 (10 microM) directed to the upstream Mek5; inhibition of Alk5 was performed with SB431542 (10 microM); Ras signaling was inhibited with farnesylthiosalicylic acid (10 microM). Intracellular signaling proteins were investigated by western blotting; phenotype was explored by immunofluorescence; proliferation was assessed with a MTS assay; motility was examined with a scratch assay; barrier function was studied using electric cell-substrate impedance sensing; apoptosis was studied with annexin V-FITC flow cytometry.
Results:
Podocytes expressed Erk5 which was phosphorylated by TGFβ1 via Mek5, whilst not involving Ras. TGFβ1 altered podocyte phenotype by decreasing P-cadherin staining and increasing α-SMA, as well as reducing podocyte barrier function; both were prevented by inhibiting Erk5 phosphorylation with BIX02188. TGFβ1-induced podocyte proliferation was prevented by BIX02188, whereas the induced apoptosis was not. Podocyte motility was reduced by BIX02188 alone and further diminished with TGFβ1 co-incubation.
Conclusion:
These results describe for the first time the expression of Erk5 in podocytes and identify it as a potential target for the treatment of diabetic renal disease.
Insights
Erk5 signaling in podocytes is activated by TGFβ1, contributing to diabetic kidney disease. Inhibiting Erk5 preserves podocyte function and phenotype, suggesting Erk5 as a therapeutic target for diabetic nephropathy.
Area of Science:
- Nephrology
- Molecular Biology
- Cell Biology
Background:
- Diabetic nephropathy leads to podocyte injury, dysfunction, and loss, causing renal impairment.
- Transforming growth factor beta 1 (TGFβ1) plays a key role in diabetic nephropathy pathogenesis.
- Extracellular signal-regulated kinase 5 (Erk5) is a MAP kinase involved in cell survival, proliferation, differentiation, and motility.
Purpose of the Study:
- To investigate the role of Erk5 in mediating TGFβ1-induced podocyte damage.
- To explore Erk5 as a potential therapeutic target for diabetic renal disease.
Main Methods:
- Human podocytes were treated with TGFβ1 and inhibitors of Erk5 (BIX02188), Alk5 (SB431542), and Ras (farnesylthiosalicylic acid).
- Techniques included western blotting, immunofluorescence, MTS assay, scratch assay, electric cell-substrate impedance sensing, and flow cytometry.
- Analyzed intracellular signaling, cell phenotype, proliferation, motility, barrier function, and apoptosis.
Main Results:
- TGFβ1 phosphorylated Erk5 in podocytes via Mek5, independent of Ras signaling.
- TGFβ1-induced alterations in podocyte phenotype (decreased P-cadherin, increased α-SMA) and reduced barrier function were prevented by Erk5 inhibition.
- Erk5 inhibition prevented TGFβ1-induced proliferation but not apoptosis; it reduced podocyte motility.
Conclusions:
- Erk5 is expressed in podocytes and activated by TGFβ1.
- Erk5 signaling mediates TGFβ1-induced podocyte dysfunction, including altered phenotype, reduced barrier function, and impaired motility.
- Erk5 represents a potential therapeutic target for treating diabetic renal disease.
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