暴露于聚苯乙烯纳米塑料会通过线粒体 ROS 的产生和预分化骨骼肌母细胞的功能障碍促进细胞过早衰老。

IF 4.8 3区 医学 Q1 PHARMACOLOGY & PHARMACY
EunJin Bang , Hyun Hwangbo , Hyesook Lee , Cheol Park , Su Hyun Hong , Hyuk Soon Kim , Youngmi Jung , Young-Min Hyun , Jin Won Hyun , Gi-Young Kim , Yung Hyun Choi
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引用次数: 0

摘要

纳米塑料(NPs)是大气、淡水和水生环境中新出现的环境污染物。NPs 可迅速渗透细胞膜,并在人体组织和器官中积聚,对人体健康造成潜在威胁。随着骨骼肌的老化,肌肉生成逐渐退化,导致肌肉质量下降。虽然之前的研究已经证明了聚苯乙烯(PS)-NPs 的不良和毒性作用,但在了解 PS-NPs 对预分化肌细胞的衰老效应和具体机制方面仍存在差距。在本研究中,我们使用体外模型研究了预分化 C2C12 肌母细胞中 PS-NPs 的细胞内化、聚集和衰老效应。将预分化的 C2C12 肌母细胞暴露于浓度不断增加的 PS-NPs 中,使用流式细胞术和透射电子显微镜(TEM)观察肌母细胞的内化情况。我们进一步研究了亚致死细胞毒性浓度的 PS-NPs 内化是否会导致衰老特征的增加,如 β-半乳糖苷酶活性增加、p16、p21 和衰老相关分泌表型的表达增加以及细胞周期停滞。此外,PS-NP 处理会导致线粒体产生明显的超氧化物并造成损伤,包括线粒体膜去极化、含量损失、破碎和 ATP 生成减少。罗替酮(一种线粒体功能抑制剂)加剧了 PS-NP 诱导的细胞增殖抑制,而线粒体超氧化物清除剂 Mito-TEMPO 则恢复了细胞增殖率并挽救了细胞衰老。因此,我们的研究结果表明,PS-NPs 通过线粒体超氧化物的产生和功能障碍对预分化肌母细胞产生衰老效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exposure to polystyrene nanoplastics promotes premature cellular senescence through mitochondrial ROS production and dysfunction in pre-differentiated skeletal myoblasts
Nanoplastics (NPs) are emerging environmental contaminants present in atmospheric, freshwater, and aquatic environments. NPs can rapidly permeate cell membranes and build up in human tissues and organs, causing a potential threat to human health. As the skeletal muscle undergoes aging, myogenesis gradually deteriorates, leading to loss of muscle mass. While previous studies have demonstrated the adverse and toxic effects of polystyrene (PS)-NPs, gaps remain in understanding aging effects and specific mechanisms by PS-NPs in pre-differentiated myoblasts. In this study, we investigated the cellular internalization, aggregation, and senescent effects of PS-NPs using an in vitro model of pre-differentiated C2C12 myoblasts. Pre-differentiated C2C12 myoblasts were exposed to increasing concentrations of PS-NPs and internalization was observed in myoblasts using flow cytometry and transmission electron microscopy (TEM). We further investigated whether internalization of these PS-NPs at sublethal cytotoxic concentrations led to an increase in senescence hallmarks, such as increased β-galactosidase activity, increased expression of p16, p21 and senescence-related secretory phenotypes, and cell cycle arrest. In addition, PS-NP treatment caused notable mitochondrial superoxide production and damage, including mitochondrial membrane depolarization, content loss, fragmentation, and decreased ATP production. Rotenone, a mitochondrial function inhibitor, and exacerbated PS-NP-induced cell proliferation inhibition, whereas Mito-TEMPO, a mitochondrial superoxide scavenger, restored the cell proliferation rate and rescued cellular senescence. Therefore, our findings indicate the senescent effects of PS-NPs through mitochondrial superoxide production and dysfunction in pre-differentiated myoblasts.
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来源期刊
Toxicology
Toxicology 医学-毒理学
CiteScore
7.80
自引率
4.40%
发文量
222
审稿时长
23 days
期刊介绍: Toxicology is an international, peer-reviewed journal that publishes only the highest quality original scientific research and critical reviews describing hypothesis-based investigations into mechanisms of toxicity associated with exposures to xenobiotic chemicals, particularly as it relates to human health. In this respect "mechanisms" is defined on both the macro (e.g. physiological, biological, kinetic, species, sex, etc.) and molecular (genomic, transcriptomic, metabolic, etc.) scale. Emphasis is placed on findings that identify novel hazards and that can be extrapolated to exposures and mechanisms that are relevant to estimating human risk. Toxicology also publishes brief communications, personal commentaries and opinion articles, as well as concise expert reviews on contemporary topics. All research and review articles published in Toxicology are subject to rigorous peer review. Authors are asked to contact the Editor-in-Chief prior to submitting review articles or commentaries for consideration for publication in Toxicology.
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