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Updated: Feb 12, 2026

Author Spotlight: Generation of Patient-Derived Podocytes from Skin Biopsies
Published on: May 26, 2023
IL-6 increases podocyte motility via MLC-mediated focal adhesion impairment and cytoskeleton disassembly
Fang-Fang He1, Dian Bao1, Hua Su1
1Department of Nephrology, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, China.
Abstract:
The disturbance of podocyte motility is an essential pathogenic mechanisms of foot process effacement during proteinuric diseases, and myosin light chain (MLC) is a pivotal component in regulating the motility of podocytes. Inflammatory cytokine interleukin-6 (IL-6) has been reported to induce podocyte abnormalities by various mechanisms, however, whether aberrant cell motility contributes to the IL-6-induced podocyte injury remains unknown. Here, by wound healing, transwell, and cell migration assays, we confirmed that IL-6 accelerates the motility of podocyte. Simultaneously, the phosphorylation of MLC is elevated along with perturbed focal adhesion (FAs) and cytoskeleton. Next, via genetic and pharmacologic interruption of MLC or its phosphorylation we revealed that the activation of MLC is implicated in IL-6-mediated podocyte hypermotility as well as the disassembly of FAs and F-actin. By using stattic, an inhibitor for STAT3 phosphorylation, we uncovered that STAT3 activation is the upstream event for MLC phosphorylation and the following aberrant motility of podocytes. Additionally, we found that calcitriol markedly attenuates podocyte hypermotility via blocking STAT3-MLC. In conclusion, our study demonstrated that IL-6 interrupts FAs dynamic, cytoskeleton organization, and eventually leads to podocyte hypermotility via STAT3/MLC, whereas calcitriol exerts its protective role by inhibiting this pathway. These findings enrich the mechanisms accounting for IL-6-mediated podocyte injury from the standpoint of cell motility and provide a novel therapeutic target for podocyte disorders.
Insights
Interleukin-6 (IL-6) accelerates podocyte motility via STAT3 and myosin light chain (MLC) activation, contributing to kidney disease. Calcitriol inhibits this pathway, offering a potential therapeutic strategy for podocyte disorders.
Area of Science:
- Nephrology
- Cell Biology
- Molecular Medicine
Background:
- Podocyte foot process effacement in proteinuric diseases involves disturbed podocyte motility.
- Myosin light chain (MLC) is crucial for podocyte motility.
- The role of aberrant cell motility in interleukin-6 (IL-6)-induced podocyte injury is unclear.
Purpose of the Study:
- To investigate whether IL-6-induced podocyte hypermotility is mediated by the STAT3/MLC pathway.
- To explore the therapeutic potential of calcitriol in mitigating IL-6-induced podocyte injury.
Main Methods:
- Cell migration assays (wound healing, Transwell) to assess podocyte motility.
- Genetic and pharmacologic inhibition of MLC and STAT3.
- Western blotting to evaluate protein phosphorylation.
- Treatment with IL-6 and calcitriol.
Main Results:
- IL-6 significantly accelerated podocyte motility, accompanied by increased MLC phosphorylation, focal adhesion (FA) disassembly, and F-actin disruption.
- STAT3 activation was identified as an upstream event for IL-6-induced MLC phosphorylation and podocyte hypermotility.
- Calcitriol treatment attenuated podocyte hypermotility by inhibiting the STAT3-MLC pathway.
Conclusions:
- IL-6 induces podocyte hypermotility via the STAT3/MLC pathway, disrupting focal adhesions and cytoskeleton organization.
- Calcitriol demonstrates a protective effect by inhibiting this pathway, suggesting it as a novel therapeutic target for podocyte disorders.
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