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量子点生物效应的最新进展:从环境归趋到基于多种生物学模型的风险评估

An update on the biological effects of quantum dots: From environmental fate to risk assessment based on multiple biological models.

作者信息

Wang Xinyu, Wu Tianshu

机构信息

Key Laboratory of Environmental Medicine and Engineering, Ministry of Education, Nanjing 210009, PR China; School of Public Health, Southeast University, Nanjing 210009, PR China.

Key Laboratory of Environmental Medicine and Engineering, Ministry of Education, Nanjing 210009, PR China; School of Public Health, Southeast University, Nanjing 210009, PR China.

出版信息

Sci Total Environ. 2023 Jun 25;879:163166. doi: 10.1016/j.scitotenv.2023.163166. Epub 2023 Apr 1.

Abstract

Quantum dots (QDs) are zero-dimension nanomaterials with excellent physical and chemical properties, which have been widely used in environmental science and biomedicine. Therefore, QDs are potential to cause toxicity to the environment and enter organisms through migration and bioenrichment effects. This review aims to provide a comprehensive and systematic analysis on the adverse effects of QDs in different organisms based on recently available data. Following PRISMA guidelines, this study searched PubMed database according to the pre-set keywords, and included 206 studies according to the inclusion and elimination criteria. CiteSpace software was firstly used to analyze the keywords of included literatures, search for breaking points of former studies, and summarize the classification, characterization and dosage of QDs. The environment fate of QDs in the ecosystems were then analyzed, followed with comprehensively summarized toxicity outcomes at individual, system, cell, subcellular and molecular levels. After migration and degradation in the environment, aquatic plants, bacteria, fungi as well as invertebrates and vertebrates have been found to be suffered from toxic effects caused by QDs. Aside from systemic effects, toxicity of intrinsic QDs targeting to specific organs, including respiratory system, cardiovascular system, hepatorenal system, nervous system and immune system were confirmed in multiple animal models. Moreover, QDs could be taken up by cells and disturb the organelles, which resulted in cellular inflammation and cell death, including autophagy, apoptosis, necrosis, pyroptosis and ferroptosis. Recently, several innovative technologies, like organoids have been applied in the risk assessment of QDs to promote the surgical interventions of preventing QDs' toxicity. This review not only aimed at updating the research progress on the biological effects of QDs from environmental fate to risk assessment, but also overcame the limitations of available reviews on basic toxicity of nanomaterials by interdisciplinarity and provided new insights for better applications of QDs.

摘要

量子点(QDs)是具有优异物理和化学性质的零维纳米材料,已广泛应用于环境科学和生物医学领域。因此,量子点有可能对环境造成毒性,并通过迁移和生物富集作用进入生物体。本综述旨在根据最近可得的数据,对量子点在不同生物体中的不良影响进行全面系统的分析。按照PRISMA指南,本研究根据预设关键词检索了PubMed数据库,并根据纳入和排除标准纳入了206项研究。首先使用CiteSpace软件分析纳入文献的关键词,寻找先前研究的突破点,并总结量子点的分类、表征和剂量。然后分析了量子点在生态系统中的环境归宿,接着全面总结了在个体、系统、细胞、亚细胞和分子水平上的毒性结果。在环境中迁移和降解后,已发现水生植物、细菌、真菌以及无脊椎动物和脊椎动物受到量子点引起的毒性影响。除了全身影响外,在多个动物模型中证实了内源性量子点对特定器官的毒性,包括呼吸系统、心血管系统、肝肾系统、神经系统和免疫系统。此外,量子点可被细胞摄取并干扰细胞器,导致细胞炎症和细胞死亡,包括自噬、凋亡、坏死、焦亡和铁死亡。最近,一些创新技术,如类器官,已应用于量子点的风险评估,以促进预防量子点毒性的外科干预。本综述不仅旨在更新量子点从环境归宿到风险评估的生物学效应研究进展,还通过跨学科克服了现有纳米材料基本毒性综述的局限性,并为量子点的更好应用提供了新见解。

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