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Published on: June 7, 2015
The Hsp27-Mediated IkBα-NFκB Signaling Axis Promotes Radiation-Induced Lung Fibrosis
Jee-Youn Kim1, Seulgi Jeon2, Young Jo Yoo2
1Department of Radiation Oncology, Yonsei University Health System, Seoul, Korea.
Purpose:
Lung fibrosis is a major side effect experienced by patients after lung cancer radiotherapy. However, effective protection strategies and underlying treatment targets remain unclear. In an effort to improve clinical outcomes, pharmacologic treatment of fibrosis is becoming increasingly popular; however, no ideal therapeutic strategy is yet available.
Experimental Design:
We used a mouse model to irradiate high focal (90 or 75 Gy) to 3-mm volume of the left lung. Lung tissues of mice were subjected to microarray, mRNA expression, and immunohistochemical analysis. Correlations of radiation (IR)-induced epithelial-mesenchymal transition (EMT) were validated in lung cell lines using appropriate treatments to activate or inhibit selected pathways.
Results:
The expression of Hsp27 was increased during IR-induced lung fibrosis in a mouse model. Inhibition of functional Hsp27 using shRNA and a synthetic small molecule inhibitor (J2) in lung cells alleviated IR-mediated EMT. The activation of NFkB pathways via direct interaction between Hsp27 and IkBα resulted in increased expressions of Twist, IL-1β, and IL-6 and facilitated IR-mediated EMT, which was identified as an underlying mechanism of Hsp27-mediated fibrosis after IR. J2 also inhibited IR-induced lung fibrosis in an orthotopic lung cancer model, and IR-induced lung fibrotic tissues from patients showed higher expression of Hsp27 than unirradiated lungs.
Conclusions:
Collectively, IkBα-NFkB signaling activation by Hsp27, which resulted in the facilitation of Twist, IL1β, and IL6 expression, is involved in the EMT process that is tightly connected to the development of IR-induced lung fibrosis. Our findings also suggest that inhibition of Hsp27 has the potential to become a valuable therapeutic strategy for IR-induced lung fibrosis.
Insights
Heat shock protein 27 (Hsp27) drives radiation-induced lung fibrosis by activating NFkB signaling. Inhibiting Hsp27 offers a promising therapeutic strategy for preventing lung fibrosis after radiotherapy.
Area of Science:
- Oncology
- Radiotherapy
- Pulmonary Medicine
- Molecular Biology
Background:
- Lung fibrosis is a significant side effect of lung cancer radiotherapy.
- Current strategies for preventing or treating radiation-induced lung fibrosis are limited.
- Identifying novel therapeutic targets is crucial for improving patient outcomes.
Purpose of the Study:
- To investigate the role of heat shock protein 27 (Hsp27) in radiation-induced lung fibrosis.
- To explore Hsp27 as a potential therapeutic target for mitigating lung fibrosis post-radiotherapy.
Main Methods:
- A mouse model was used to induce lung fibrosis via focal irradiation.
- Microarray, mRNA expression, and immunohistochemical analyses were performed on lung tissues.
- The impact of Hsp27 inhibition on radiation-induced epithelial-mesenchymal transition (EMT) was assessed in cell lines and in vivo.
Main Results:
- Hsp27 expression was elevated in radiation-induced lung fibrosis in mice.
- Inhibition of Hsp27 using shRNA or the small molecule inhibitor J2 reduced radiation-mediated EMT.
- Hsp27 activation of the IkBα-NFkB pathway promoted Twist, IL-1β, and IL-6 expression, contributing to fibrosis.
- J2 treatment inhibited lung fibrosis in an orthotopic lung cancer model.
- Human lung fibrotic tissues post-irradiation showed increased Hsp27 expression.
Conclusions:
- Hsp27 facilitates radiation-induced lung fibrosis by activating the IkBα-NFkB signaling pathway, leading to EMT.
- Inhibition of Hsp27 presents a potential therapeutic approach for managing radiation-induced lung fibrosis.
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