Department of Civil Engineering, National Taipei University of Technology, Taipei City 106, Taiwan; Department of Biotechnology, National Formosa University, Yunlin 63208, Taiwan.
Department of Environmental Engineering, National Chung Hsing University, Taichung 40227, Taiwan.
J Hazard Mater. 2024 Nov 5;479:135536. doi: 10.1016/j.jhazmat.2024.135536. Epub 2024 Aug 15.
This study investigated the influence of photoaging on a nanoscale metal-organic framework (MOF), truncated rhombic dodecahedron nano-zeolitic imidazolate framework-8 (nZIF-8), focusing on its oxidative stress, inflammation, and implications for pulmonary diseases. We observed significant photodegradation-induced transformations in nZIF-8, characterized by a reduction in particle size from 200.5 to 101.4 nm and notable structural disintegration after prolonged exposure to simulated solar radiation. This alteration resulted in a marked decrease in oxidative cytotoxicity in BEAS-2B cells, which was attributed to changes in surface properties and reduced reactive oxygen species (ROS) production. Gene expression analysis further revealed a decrease in cytotoxic and inflammatory responses, which potentially lowers the risk of chronic obstructive pulmonary disease (COPD). Aged nZIF-8 also showed diminished capacity to induce pro-inflammatory cytokines and influence COPD-related gene expression, reducing its potential to exacerbate COPD pathogenesis. Our findings highlight the critical need for comprehensive safety evaluations of these materials, while considering their long-term environmental and biological impacts. The diminished cytotoxicity and inflammatory potential of aged nZIF-8 highlighted its enhanced suitability for broader applications, indicating that photoaging may lead to safer and more sustainable material utilization.
本研究探讨了光老化对纳米级金属有机骨架(MOF)——截角八面体纳米沸石咪唑酯骨架-8(nZIF-8)的影响,重点关注其氧化应激、炎症反应以及对肺部疾病的影响。我们观察到 nZIF-8 发生了显著的光降解诱导转化,表现为粒径从 200.5nm 减小到 101.4nm,并且在长时间暴露于模拟太阳光后结构明显解体。这种变化导致 BEAS-2B 细胞的氧化细胞毒性明显降低,这归因于表面性质的改变和活性氧(ROS)产生减少。基因表达分析进一步表明,细胞毒性和炎症反应降低,这可能降低慢性阻塞性肺疾病(COPD)的风险。老化的 nZIF-8 也表现出诱导促炎细胞因子和影响 COPD 相关基因表达的能力降低,从而降低其恶化 COPD 发病机制的潜力。我们的研究结果强调了对这些材料进行全面安全评估的迫切需要,同时考虑到它们的长期环境和生物影响。老化的 nZIF-8 的细胞毒性和炎症潜力降低表明其更适合更广泛的应用,表明光老化可能导致更安全和更可持续的材料利用。