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Loss of Protein Kinase D2 Activity Protects Against Bleomycin-Induced Dermal Fibrosis in Mice
Liping Chen1, Jinjun Zhao2, Yapeng Chao3
1Department of Cell Biology, School of Basic Medical Sciences, Southern Medical University, Guangzhou, China.
Abstract:
Protein kinase D (PKD) has been linked to inflammatory responses in various pathologic conditions; however, its role in inflammation-induced dermal fibrosis has not been evaluated. In this study, we aimed to investigate the roles and mechanisms of protein kinase D2 (PKD2) in inflammation-induced dermal fibrosis and evaluate the therapeutic potential of PKD inhibitors in this disease. Using homozygous kinase-dead PKD2 knock-in (KI) mice, we examined whether genetic ablation or pharmacologic inhibition of PKD2 activity affected dermal inflammation and fibrosis in a bleomycin (BLM)-induced skin fibrosis model. Our data showed that dermal thickness and collagen fibers were significantly reduced in BLM-treated PKD2 KI mice compared with that in wild-type mice, and so was the expression of α-smooth muscle actin and collagens and the mRNA levels of transforming growth factor-β1 and interleukin-6 in the KI mice. Corroboratively, pharmacologic inhibition of PKD by CRT0066101 also significantly blocked BLM-induced dermal fibrosis and reduced α-smooth muscle actin, collagen, and interleukin-6 expression. Further analyses indicated that loss of PKD2 activity significantly blocked BLM-induced infiltration of monocytes/macrophages and neutrophils in the dermis. Moreover, using bone marrow-derived macrophages, we demonstrated that PKD activity was required for cytokine production and migration of macrophages. We have further identified Akt as a major downstream target of PKD2 in the early inflammatory phase of the fibrotic process. Taken together, our findings indicate that PKD2 promotes dermal fibrosis via regulating immune cell infiltration, cytokine production, and downstream activation of Akt in lesional skin, and targeted inhibition of PKD2 may benefit the treatment of this condition.
Insights
Protein kinase D2 (PKD2) promotes skin fibrosis by regulating immune cell infiltration and cytokine production. Inhibiting PKD2 activity significantly reduced dermal fibrosis in a bleomycin model, suggesting therapeutic potential.
Area of Science:
- Dermatology
- Immunology
- Molecular Biology
Background:
- Protein kinase D (PKD) is implicated in inflammatory responses.
- The specific role of PKD in inflammation-induced dermal fibrosis remains unclear.
- Investigating PKD2's mechanisms in dermal fibrosis is crucial for understanding fibrotic diseases.
Purpose of the Study:
- To elucidate the roles and mechanisms of protein kinase D2 (PKD2) in inflammation-induced dermal fibrosis.
- To evaluate the therapeutic efficacy of PKD inhibitors in a bleomycin-induced skin fibrosis model.
Main Methods:
- Utilized homozygous kinase-dead PKD2 knock-in (KI) mice and a bleomycin (BLM)-induced skin fibrosis model.
- Assessed dermal thickness, collagen deposition, and expression of fibrosis markers (α-smooth muscle actin, collagens, TGF-β1, IL-6).
- Investigated immune cell infiltration (monocytes/macrophages, neutrophils) and macrophage function (cytokine production, migration); identified downstream targets like Akt.
Main Results:
- PKD2 deficiency in KI mice significantly reduced dermal thickness and collagen fiber deposition in BLM-treated skin.
- Genetic ablation or pharmacologic inhibition of PKD2 decreased α-smooth muscle actin, collagen, TGF-β1, and IL-6 expression.
- Loss of PKD2 activity inhibited monocyte/macrophage and neutrophil infiltration and impaired macrophage cytokine production and migration.
Conclusions:
- PKD2 plays a critical role in promoting dermal fibrosis by modulating immune cell infiltration, cytokine production, and Akt activation.
- Targeted inhibition of PKD2 demonstrates therapeutic potential for treating inflammation-induced dermal fibrosis.

