Unveiling the toxicity of micro-nanoplastics: A systematic exploration of understanding environmental and health implications

Q1 Environmental Science
Saurabh Shukla , Sakshum Khanna , Kushagra Khanna
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引用次数: 0

Abstract

The surge in plastic production has spurred a global crisis as plastic pollution intensifies, with microplastics and nanoplastics emerging as notable environmental threats. Due to their miniature size, these particles are ubiquitous across ecosystems and pose severe hazards as they are ingested and bioaccumulate within organisms. Although global plastic production has reached an alarming 400.3 MTs, recycling efforts remain limited, with only 18.5 MTs being recycled. Currently, out of the total plastic waste, 49.6 % is converted into energy, 27 % is recycled, and 23.5 % is recovered as material, indicating a need for better waste management practices to combat the escalating pollution levels. Research studies on micro-nanoplastics have primarily concentrated on their environmental presence and laboratory-based toxicity studies. This review critically examines the sources and detection methods for micro-nanoplastics, emphasising their toxicological effects and ecological impacts. Organisms like zebrafish and rats serve as key models for studying these particle's bioaccumulative potential, showcasing adverse effects that extend to DNA damage, oxidative stress, and cellular apoptosis. Studies reveal that micro-nanoplastics can permeate biological barriers, including the blood-brain barrier, neurological imbalance, cardiac, respiratory, and dermatological disorders. These health risks, particularly relevant for humans, underscore the urgency for broader, real-world studies beyond controlled laboratory conditions. Additionally, the review discusses innovative energy-harvesting technologies as sustainable alternatives for plastic waste utilisation, particularly valuable for energy-deficient regions. These strategies aim to simultaneously address energy demands and mitigate plastic waste. This approach aligns with global sustainability goals, providing a promising avenue for both pollution reduction and energy generation. The review calls for further research to enhance detection techniques, assess long-term environmental impacts, and explore sustainable solutions that integrate energy recovery with pollution mitigation, especially in regions most affected by both energy shortages and increased plastic waste.
揭示微纳米塑料的毒性:了解环境和健康影响的系统性探索。
随着塑料污染加剧,塑料生产的激增引发了一场全球危机,微塑料和纳米塑料已成为显著的环境威胁。由于它们的尺寸很小,这些颗粒在生态系统中无处不在,当它们被摄入并在生物体中生物积累时,会造成严重的危害。尽管全球塑料产量已达到惊人的400.3 mt,但回收工作仍然有限,只有18.5 mt被回收。目前,在全部塑料废物中,49.6% %被转化为能源,27. %被回收,23.5% %被回收为材料,这表明需要更好的废物管理措施来应对不断升级的污染水平。对微纳米塑料的研究主要集中在其环境存在和实验室毒性研究上。本文综述了微纳米塑料的来源和检测方法,重点介绍了它们的毒理学效应和生态影响。像斑马鱼和老鼠这样的生物作为研究这些颗粒生物累积潜力的关键模型,展示了延伸到DNA损伤、氧化应激和细胞凋亡的不利影响。研究表明,微纳米塑料可以穿透生物屏障,包括血脑屏障、神经失衡、心脏、呼吸和皮肤疾病。这些健康风险,特别是与人类相关的风险,强调了在受控实验室条件之外进行更广泛的现实世界研究的紧迫性。此外,该报告还讨论了创新的能量收集技术作为塑料废物利用的可持续替代品,对能源缺乏地区特别有价值。这些战略旨在同时解决能源需求和减少塑料废物。这种方法与全球可持续发展目标一致,为减少污染和发电提供了一条有希望的途径。该审查报告呼吁进一步开展研究,以加强检测技术,评估长期环境影响,并探索将能源回收与减轻污染结合起来的可持续解决方案,特别是在受能源短缺和塑料废物增加影响最严重的地区。
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
Toxicology Reports
Toxicology Reports Environmental Science-Health, Toxicology and Mutagenesis
CiteScore
7.60
自引率
0.00%
发文量
228
审稿时长
11 weeks
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