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Updated: Jul 5, 2025

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Published on: June 3, 2018
Role of ZIP kinase in development of myofibroblast differentiation from HPMCs
Young-Yeon Choo1, Tsuyoshi Sakai1, Reiko Ikebe1
1Department of Cellular and Molecular Biology, The University of Texas at Tyler Health Science Center, Tyler, Texas, United States.
Abstract:
During the development of pleural fibrosis, pleural mesothelial cells (PMCs) undergo phenotypic switching from differentiated mesothelial cells to mesenchymal cells (MesoMT). Here, we investigated how external stimuli such as TGF-β induce HPMC-derived myofibroblast differentiation to facilitate the development of pleural fibrosis. TGF-β significantly increased di-phosphorylation but not mono-phosphorylation of myosin II regulatory light chain (RLC) in HPMCs. An increase in RLC di-phosphorylation was also found at the pleural layer of our carbon black bleomycin (CBB) pleural fibrosis mouse model, where it showed filamentous localization that coincided with alpha smooth muscle actin (αSMA) in the cells in the pleura. Among the protein kinases that can phosphorylate myosin II RLC, ZIPK (zipper-interacting kinase) protein expression was significantly augmented after TGF-β stimulation. Furthermore, ZIPK gene silencing attenuated RLC di-phosphorylation, suggesting that ZIPK is responsible for di-phosphorylation of myosin II in HPMCs. Although TGF-β significantly increased the expression of ZIP kinase protein, the change in ZIP kinase mRNA was marginal, suggesting a posttranscriptional mechanism for the regulation of ZIP kinase expression by TGF-β. ZIPK gene knockdown (KD) also significantly reduced TGF-β-induced upregulation of αSMA expression. This finding suggests that siZIPK attenuates myofibroblast differentiation of HPMCs. siZIPK diminished TGF-β-induced contractility of HPMCs consistent with siZIPK-induced decrease in the di-phosphorylation of myosin II RLC. The present results implicate ZIPK in the regulation of the contractility of HPMC-derived myofibroblasts, phenotype switching, and myofibroblast differentiation of HPMCs.NEW & NOTEWORTHY Here, we highlight that ZIP kinase is responsible for di-phosphorylation of myosin light chain, which facilitates stress fiber formation and actomyosin-based cell contraction during mesothelial to mesenchymal transition in human pleural mesothelial cells. This transition has a significant impact on tissue remodeling and subsequent stiffness of the pleura. This study provides insight into a new therapeutic strategy for the treatment of pleural fibrosis.
Insights
Zipper-interacting kinase (ZIPK) drives pleural fibrosis by promoting myosin II regulatory light chain di-phosphorylation in human pleural mesothelial cells, leading to myofibroblast differentiation and increased cell contraction.
Area of Science:
- Cell Biology
- Pulmonary Medicine
- Biochemistry
Background:
- Pleural fibrosis involves pleural mesothelial cells (PMCs) transitioning to a mesenchymal phenotype (MesoMT).
- Understanding the molecular mechanisms driving this transition is crucial for developing therapeutic strategies.
- Transforming growth factor-beta (TGF-β) is a key stimulus implicated in myofibroblast differentiation.
Purpose of the Study:
- To investigate the role of zipper-interacting kinase (ZIPK) in TGF-β-induced myofibroblast differentiation of human pleural mesothelial cells (HPMCs).
- To elucidate the mechanism by which ZIPK influences cell contractility and phenotype switching during pleural fibrosis development.
Main Methods:
- Stimulation of HPMCs with TGF-β.
- Assessment of myosin II regulatory light chain (RLC) phosphorylation.
- ZIPK gene silencing (siZIPK) and knockdown (KD).
- Measurement of alpha smooth muscle actin (αSMA) expression.
- Evaluation of HPMC contractility.
- Analysis of a carbon black bleomycin (CBB)-induced pleural fibrosis mouse model.
Main Results:
- TGF-β significantly increased di-phosphorylation of RLC in HPMCs, correlating with filamentous localization of RLC and αSMA in a pleural fibrosis mouse model.
- ZIPK expression was upregulated by TGF-β, and ZIPK silencing attenuated RLC di-phosphorylation.
- ZIPK knockdown reduced TGF-β-induced αSMA upregulation and diminished HPMC contractility.
- TGF-β increased ZIP kinase protein but not mRNA, suggesting posttranscriptional regulation.
Conclusions:
- ZIPK is essential for TGF-β-induced di-phosphorylation of myosin II RLC in HPMCs.
- ZIPK plays a critical role in myofibroblast differentiation, cell contractility, and phenotype switching during pleural fibrosis.
- Targeting ZIPK may offer a novel therapeutic strategy for treating pleural fibrosis.
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