Pulmonary hazards of nanoplastic particles: a study using polystyrene in in vitro models of the alveolar and bronchial epithelium.

IF 10.6 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Sara Michelini, Safaa Mawas, Ema Kurešepi, Francesco Barbero, Katarina Šimunović, Dorian Miremont, Stéphanie Devineau, Martin Schicht, Victor Ganin, Øyvind Pernell Haugen, Anani Komlavi Afanou, Charlotte Izabelle, Shan Zienolddiny-Narui, Katharina Jüngert, Neža Repar, Ivana Fenoglio, Barbara Šetina Batić, Friedrich Paulsen, Ines Mandić-Mulec, Sonja Boland, Andreja Erman, Damjana Drobne
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引用次数: 0

Abstract

Background: Nanoplastics (NPs) are released into the environment through the degradation of plastic objects, leading to human exposure. Due to their small size, concerns have been raised about the potential hazards to the respiratory tract, as ultrafine and nanoparticles are known to penetrate till the alveolar regions of the lungs, potentially impairing their functions. Thus, in the present study, we used model polystyrene nanoparticles doped with the fluorescent metal europium (PS-Eu) to enhance the understanding of NPs hazard and investigate adverse outcomes associated with exposure in human lungs using alveolar (A549) and bronchial (Calu-3) cell models grown in 2D and 3D submerged conditions or quasi air-liquid interface (ALI) conditions (3D).

Results: Briefly, after in-dept physicochemical characterization of the particles, we assessed their impact on ROS production, cell viability (AlamarBlue and lactate dehydrogenase assays) and barrier integrity (lucifer yellow assay and TEER measurement), finding no negative effects in either model. However, in alveolar cells, particles increased acidic organelle activity. Transmission electron microscopy and Raman microscopy showed, in both models, a dose- and cell-dependent particle uptake with PS-Eu accumulating in numerous and large endo-lysosomes, which, in transwells-grown A549 cells, often contained also lamellar bodies (LBs), organelles involved in surfactants storage and secretion. After extensively quantifying surfactant proteins (SP) in the pellet and supernatant fractions of treated A549 cells, we observed a significant reduction in several members of this family, including surfactant protein B, which is crucial for lamellar body formation and surface tension regulation in the lungs. In quasi-ALI Calu-3 cultures instead, PS-Eu significantly upregulated interleukin 6 (IL-6) and increased transforming growth factor beta β (TGF-β), zonula occludens 1 (ZO-1), and mucin (MUC) 5B mRNA expressions causing a moderate proinflammatory response.

Conclusion: Our results show that PS-Eu exposure does not induce acute cytotoxicity in these models, but affects cell-specific functions like surfactant, mucin, and cytokine production. This underscores the limitations of relying solely on standard cytotoxicity tests for particle hazard assessment and highlights the importance of investigating cell function-specific signaling pathways. To support researchers in hazard assessment, we propose specific classes of biomarkers to test in in vitro lung models.

纳米塑料颗粒对肺部的危害:聚苯乙烯在肺泡和支气管上皮体外模型中的研究。
背景:纳米塑料(NPs)通过塑料物体的降解释放到环境中,导致人类暴露。由于其体积小,人们担心其对呼吸道的潜在危害,因为已知超细颗粒和纳米颗粒可以穿透肺部的肺泡区,可能损害其功能。因此,在本研究中,我们使用了掺杂荧光金属铕(PS-Eu)的聚苯乙烯纳米颗粒模型来增强对NPs危害的理解,并使用在2D和3D淹没条件或准气液界面(ALI)条件下生长的肺泡(A549)和支气管(Calu-3)细胞模型来研究人体肺部暴露与不良后果相关。结果:简单地说,在对颗粒进行深入的物理化学表征后,我们评估了它们对ROS产生、细胞活力(AlamarBlue和乳酸脱氢酶测定)和屏障完整性(lucifer yellow测定和TEER测定)的影响,发现两种模型都没有负面影响。然而,在肺泡细胞中,颗粒增加了酸性细胞器的活性。透射电镜和拉曼显微镜显示,在这两种模型中,PS-Eu的颗粒摄取与剂量和细胞相关,积聚在大量的内切溶酶体中,在transwell生长的A549细胞中,通常还含有片层体(LBs),这是参与表面活性剂储存和分泌的细胞器。在广泛定量处理过的A549细胞的颗粒和上清部分中的表面活性剂蛋白(SP)后,我们观察到该家族的几个成员显著减少,包括表面活性剂蛋白B,它对板层体形成和肺表面张力调节至关重要。相反,在准ali Calu-3培养中,PS-Eu显著上调白细胞介素6 (IL-6),增加转化生长因子β β (TGF-β)、闭塞带1 (ZO-1)和粘蛋白(MUC) 5B mRNA的表达,引起中度促炎反应。结论:我们的研究结果表明,在这些模型中,PS-Eu暴露不会诱导急性细胞毒性,但会影响细胞特异性功能,如表面活性剂、粘蛋白和细胞因子的产生。这强调了仅依靠标准细胞毒性试验进行颗粒危害评估的局限性,并强调了研究细胞功能特异性信号通路的重要性。为了支持研究人员进行危害评估,我们提出了特定类别的生物标志物在体外肺模型中进行测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Nanobiotechnology
Journal of Nanobiotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
13.90
自引率
4.90%
发文量
493
审稿时长
16 weeks
期刊介绍: Journal of Nanobiotechnology is an open access peer-reviewed journal communicating scientific and technological advances in the fields of medicine and biology, with an emphasis in their interface with nanoscale sciences. The journal provides biomedical scientists and the international biotechnology business community with the latest developments in the growing field of Nanobiotechnology.
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