Microplastics exacerbate ferroptosis via mitochondrial reactive oxygen species-mediated autophagy in chronic obstructive pulmonary disease.

IF 14.3 Autophagy Pub Date : 2025-08-01 Epub Date: 2025-04-04 DOI:10.1080/15548627.2025.2481126
Yuan Yuan Wei, Ting Ting Chen, Da Wei Zhang, Ying Zhang, Fang Li, Yi Chuan Ding, Ming Yu Wang, Ling Zhang, Ke Gong Chen, Guang He Fei
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Abstract

Microplastics (MPs) induce mitochondrial dysfunction and iron accumulation, contributing to mitochondrial macroautophagy/autophagy and ferroptosis, which has increased susceptibility to the exacerbation of chronic obstructive pulmonary disease (COPD); however, the underlying mechanism remains unclear. We demonstrated that MPs intensified inflammation in COPD by enhancing autophagy-dependent ferroptosis (ADF) in vitro and in vivo. In the lung tissues of patients with COPD, the concentrations of MPs, especially polystyrene microplastics (PS-MPs), were significantly higher than that of the control group, as detected by pyrolysis gas chromatography mass spectrometry (Py-GCMS), with increased iron accumulation. The exposure to PS-MPs, 2 μm in size, resulted in their being deposited in the lungs of COPD model mice detected by optical in vivo imaging, and observed in bronchial epithelial cells traced by GFP-labeled PS-MPs. There were mitochondrial impairments accompanied by mitochondrial reactive oxygen species (mito-ROS) overproduction and significantly increased levels of lysosome biogenesis and acidification in pDHBE cells with PS-MP stimulation, triggering occurrence of ferritinophagy and enhancing ADF in COPD, which triggered acute exacerbation of COPD (AECOPD). Reestablishing autophagy-dependent ferroptosis via mitochondria-specific ROS scavenging or ferroptosis inhibition alleviated excessive inflammation and ameliorated AECOPD induced by PS-MPs. Collectively, our data initially revealed that MPs exacerbate ferroptosis via mito-ROS-mediated autophagy in COPD, which sheds light on further hazard assessments of MPs on human respiratory health and potential therapeutic agents for patients with COPD.Abbreviations: ADF: autophagy-dependent ferroptosis; AECOPD: acute exacerbation of chronic obstructive pulmonary disease; Cchord: static compliance; COPD: chronic obstructive pulmonary disease; CQ: chloroquine; CS: cigarette smoke; DEGs: differentially expressed genes; Fer-1: ferrostatin-1; FEV 0.1: forced expiratory volume in first 100 ms; FVC: forced vital capacity; GSH: glutathione; HE: hematoxylin and eosin; IL1B/IL-1β: interleukin 1 beta; IL6: interleukin 6; MDA: malondialdehyde; Mito-ROS: mitochondrial reactive oxygen species; MMA: methyl methacrylate; MMF: maximal mid-expiratory flow curve; MMP: mitochondrial membrane potential; MOI: multiplicity of infection; MPs: microplastics; MV: minute volume; PA: polyamide; PBS: phosphate-buffered saline; PC: polycarbonate; pDHBE: primary human bronchial epithelial cell from COPD patients; PET: polyethylene terephthalate; PIF: peak inspiratory flow; PLA: polylactic acid; pNHBE: primary normal human bronchial epithelial cell; PS-MPs: polystyrene microplastics; PVA: polyvinyl acetate; PVC: polyvinyl chloride; Py-GCMS: pyrolysis gas chromatography mass spectrometry; SEM: scanning electron microscopy; Te: expiratory times; Ti: inspiratory times; TNF/TNF-α: tumor necrosis factor.

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在慢性阻塞性肺病中,微塑料通过线粒体活性氧介导的自噬作用加剧铁变态反应。
微塑料(MPs)诱导线粒体功能障碍和铁积累,导致线粒体巨噬/自噬和铁死亡,这增加了慢性阻塞性肺疾病(COPD)恶化的易感性;然而,其潜在机制尚不清楚。我们在体外和体内证明了MPs通过增强自噬依赖性铁下垂(ADF)来加剧COPD的炎症。通过热解气相色谱-质谱法(ppy - gcms)检测,COPD患者肺组织中MPs,尤其是聚苯乙烯微塑料(PS-MPs)的浓度明显高于对照组,铁积累增加。暴露于2 μm大小的PS-MPs后,通过光学体内显像检测其在COPD模型小鼠肺部沉积,并通过gfp标记的PS-MPs追踪支气管上皮细胞。pDHBE细胞在PS-MP刺激下出现线粒体损伤,线粒体活性氧(mito-ROS)过量产生,溶酶体生物生成和酸化水平显著升高,引发慢性阻塞性肺疾病(COPD)中铁蛋白自噬的发生,ADF增强,从而引发慢性阻塞性肺疾病(AECOPD)急性加重。通过线粒体特异性ROS清除或抑制铁下垂重建自噬依赖性铁下垂可减轻过度炎症,改善PS-MPs诱导的AECOPD。总的来说,我们的数据最初显示,MPs通过mitto - ros介导的自噬加剧了COPD患者的铁下沉,这为进一步评估MPs对人类呼吸健康的危害以及COPD患者的潜在治疗药物提供了线索。
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