Department of BioNano Technology, Gachon University, 1342 Seongnamdaero, Sujeong-gu, Seongnam-si, Gyeonggi-do, 13120, Republic of Korea.
Department of Beauty Design Management, Hansung University, 116 Samseongyoro-16 gil, Seoul, 02876, Republic of Korea.
Ecotoxicol Environ Saf. 2020 Sep 15;201:110781. doi: 10.1016/j.ecoenv.2020.110781. Epub 2020 Jun 1.
Nowadays, nanotechnology and its related industries are becoming a rapidly explosive industry that offers many benefits to human life. However, along with the increased production and use of nanoparticles (NPs), their presence in the environment creates a high risk of increasing toxic effects on aquatic organisms. Therefore, a large number of studies focusing on the toxicity of these NPs to the aquatic organisms are carried out which used algal species as a common biological model. In this review, the influences of the physio-chemical properties of NPs and the response mechanisms of the algae on the toxicity of the NPs were discussed focusing on the "assay" studies. Besides, the specific algal toxicities of each type of NPs along with the NP-induced changes in algal cells of these NPs are also assessed. Almost all commonly-used NPs exhibit algal toxicity. Although the algae have similarities in the symptoms under NP exposure, the sensitivity and variability of each algae species to the inherent properties of each NPs are quite different. They depend strongly on the concentration, size, characteristics of NPs, and biochemical nature of algae. Through the assessment, the review identifies several gaps that need to be further studied to make an explicit understanding. The findings in the majority of studies are mostly in laboratory conditions and there are still uncertainties and contradictory/inconsistent results about the behavioral effects of NPs under field conditions. Besides, there remains unsureness about NP-uptake pathways of microalgae. Finally, the toxicity mechanisms of NPs need to be thoughtfully understood which is essential in risk assessment.
如今,纳米技术及其相关产业正成为一个快速爆发的行业,为人类生活带来了诸多益处。然而,随着纳米颗粒(NPs)的产量和使用量的增加,它们在环境中的存在增加了对水生生物产生毒性作用的风险。因此,大量研究集中在这些 NPs 对水生生物的毒性上,通常使用藻类物种作为常见的生物模型。在这篇综述中,我们讨论了 NPs 的物理化学性质和藻类的响应机制对 NPs 毒性的影响,重点关注了“检测”研究。此外,还评估了每种类型的 NPs 对藻类的特定毒性以及这些 NPs 引起的藻类细胞变化。几乎所有常用的 NPs 都表现出藻类毒性。尽管藻类在受到 NP 暴露时表现出相似的症状,但每种藻类对每种 NPs 固有特性的敏感性和变异性有很大的不同。它们强烈依赖于 NPs 的浓度、大小、特性和藻类的生化性质。通过评估,本综述确定了一些需要进一步研究的空白点,以明确了解。在大多数研究中,结果主要是在实验室条件下得出的,对于 NPs 在野外条件下的行为效应仍然存在不确定性和矛盾/不一致的结果。此外,微藻对 NPs 的吸收途径仍不确定。最后,需要深入了解 NPs 的毒性机制,这对于风险评估至关重要。