多壁碳纳米管通过TGF-β介导的Akt/GSK-3β/SNAIL-1信号通路直接诱导人支气管上皮细胞发生上皮-间质转化。

Multi-walled carbon nanotubes directly induce epithelial-mesenchymal transition in human bronchial epithelial cells via the TGF-β-mediated Akt/GSK-3β/SNAIL-1 signalling pathway.

作者信息

Polimeni Manuela, Gulino Giulia Rossana, Gazzano Elena, Kopecka Joanna, Marucco Arianna, Fenoglio Ivana, Cesano Federico, Campagnolo Luisa, Magrini Andrea, Pietroiusti Antonio, Ghigo Dario, Aldieri Elisabetta

机构信息

Department of Oncology, University of Turin, via Santena 5/bis, 10126, Turin, Italy.

Interdepartmental Centre Scansetti for Studies on Asbestos and Other Toxic Particulates, University of Turin, Turin, Italy.

出版信息

Part Fibre Toxicol. 2016 Jun 1;13(1):27. doi: 10.1186/s12989-016-0138-4.

Abstract

BACKGROUND

Multi-walled carbon nanotubes (MWCNT) are currently under intense toxicological investigation due to concern on their potential health effects. Current in vitro and in vivo data indicate that MWCNT exposure is strongly associated with lung toxicity (inflammation, fibrosis, granuloma, cancer and airway injury) and their effects might be comparable to asbestos-induced carcinogenesis. Although fibrosis is a multi-origin disease, epithelial-mesenchymal transition (EMT) is recently recognized as an important pathway in cell transformation. It is known that MWCNT exposure induces EMT through the activation of the TGF-β/Smad signalling pathway thus promoting pulmonary fibrosis, but the molecular mechanisms involved are not fully understood. In the present work we propose a new mechanism involving a TGF-β-mediated signalling pathway.

METHODS

Human bronchial epithelial cells were incubated with two different MWCNT samples at various concentrations for up to 96 h and several markers of EMT were investigated. Quantitative real time PCR, western blot, immunofluorescent staining and gelatin zymographies were performed to detect the marker protein alterations. ELISA was performed to evaluate TGF-β production. Experiments with neutralizing anti-TGF-β antibody, specific inhibitors of GSK-3β and Akt and siRNA were carried out in order to confirm their involvement in MWCNT-induced EMT. In vivo experiments of pharyngeal aspiration in C57BL/6 mice were also performed. Data were analyzed by a one-way ANOVA with Tukey's post-hoc test.

RESULTS

Fully characterized MWCNT (mean length < 5 μm) are able to induce EMT in an in vitro human model (BEAS-2B cells) after long-term incubation at sub-cytotoxic concentrations. MWCNT stimulate TGF-β secretion, Akt activation and GSK-3β inhibition, which induces nuclear accumulation of SNAIL-1 and its transcriptional activity, thus contributing to switch on the EMT program. Moreover, a significant increment of nuclear β-catenin - due to E-cadherin repression and following translocation to nucleus - likely reinforces signalling for EMT promotion. In vivo results supported the occurrence of pulmonary fibrosis following MWCNT exposure.

CONCLUSIONS

We demonstrate a new molecular mechanism of MWCNT-mediated EMT, which is Smad-independent and involves TGF-β and its intracellular effectors Akt/GSK-3β that activate the SNAIL-1 signalling pathway. This finding suggests potential novel targets in the development of therapeutic and preventive approaches.

摘要

背景

由于担心多壁碳纳米管(MWCNT)对健康的潜在影响,目前正在对其进行深入的毒理学研究。目前的体外和体内数据表明,接触MWCNT与肺毒性(炎症、纤维化、肉芽肿、癌症和气道损伤)密切相关,其影响可能与石棉诱导的致癌作用相当。尽管纤维化是一种多源性疾病,但上皮-间质转化(EMT)最近被认为是细胞转化的一条重要途径。已知接触MWCNT通过激活TGF-β/Smad信号通路诱导EMT,从而促进肺纤维化,但其涉及的分子机制尚未完全了解。在本研究中,我们提出了一种涉及TGF-β介导信号通路的新机制。

方法

将人支气管上皮细胞与两种不同的MWCNT样品在不同浓度下孵育长达96小时,并研究EMT的几种标志物。进行定量实时PCR、蛋白质印迹、免疫荧光染色和明胶酶谱分析以检测标志物蛋白的变化。进行ELISA以评估TGF-β的产生。使用中和抗TGF-β抗体、GSK-3β和Akt的特异性抑制剂以及小干扰RNA进行实验,以确认它们参与MWCNT诱导的EMT。还进行了C57BL/6小鼠咽部吸入的体内实验。数据采用单因素方差分析和Tukey事后检验进行分析。

结果

在体外人模型(BEAS-2B细胞)中,在亚细胞毒性浓度下长期孵育后,特征明确的MWCNT(平均长度<5μm)能够诱导EMT。MWCNT刺激TGF-β分泌、Akt激活和GSK-3β抑制,这诱导SNAIL-1的核积累及其转录活性,从而有助于开启EMT程序。此外,由于E-钙黏蛋白的抑制以及随后向细胞核的转位,核β-连环蛋白显著增加,这可能加强了促进EMT的信号传导。体内结果支持接触MWCNT后发生肺纤维化。

结论

我们证明了MWCNT介导的EMT的一种新分子机制,该机制不依赖Smad,涉及TGF-β及其细胞内效应物Akt/GSK-3β,它们激活SNAIL-1信号通路。这一发现提示了治疗和预防方法开发中的潜在新靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9818/4890337/cff0dadc76e0/12989_2016_138_Fig1_HTML.jpg

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