Chae Yooeun, An Youn-Joo
Department of Environmental Health Science, Konkuk University, 120 Neungdong-ro, Gwangjin-gu, Seoul 05029, Republic of Korea.
Department of Environmental Health Science, Konkuk University, 120 Neungdong-ro, Gwangjin-gu, Seoul 05029, Republic of Korea.
Aquat Toxicol. 2016 Apr;173:94-104. doi: 10.1016/j.aquatox.2016.01.011. Epub 2016 Jan 28.
Nanomaterials of various shapes and dimensions are widely used in the medical, chemical, and electronic industries. Multiple studies have reported the ecotoxicological effects of nanaoparticles when released in aquatic and terrestrial ecosystems; however, information on the toxicity of silver nanowires (AgNWs) to freshwater organisms and their transfer through the food webs is limited. In the present study, we aimed to evaluate the toxicity of 10- and 20-μm-long AgNWs to the alga Chlamydomonas reinhardtii, the water flea Daphnia magna, and the zebrafish and study their movement through this three-species food chain using a variety of qualitative and quantitative methods as well as optical techniques. We found that AgNWs directly inhibited the growth of algae and destroyed the digestive organs of water fleas. The results showed that longer AgNWs (20μm) were more toxic than shorter ones (10μm) to both algae and water fleas, but shorter AgNWs were accumulated more than longer ones in the body of the fish. Overall, this study suggests that AgNWs are transferred through food chains, and that they affect organisms at higher trophic levels, potentially including humans. Therefore, further studies that take into account environmental factors, food web complexity, and differences between nanomaterials are required to gain better understanding of the impact of nanomaterials on natural communities and human health.
各种形状和尺寸的纳米材料广泛应用于医疗、化学和电子行业。多项研究报告了纳米颗粒释放到水生和陆地生态系统中的生态毒理效应;然而,关于银纳米线(AgNWs)对淡水生物的毒性及其在食物网中的转移的信息有限。在本研究中,我们旨在评估10微米和20微米长的银纳米线对莱茵衣藻、大型溞和斑马鱼的毒性,并使用各种定性和定量方法以及光学技术研究它们在这条三物种食物链中的转移情况。我们发现银纳米线直接抑制藻类生长并破坏溞的消化器官。结果表明,较长的银纳米线(20微米)对藻类和溞的毒性比较短的(10微米)更大,但较短的银纳米线在鱼体内的积累量比较长的更多。总体而言,本研究表明银纳米线通过食物链转移,并且它们会影响较高营养级的生物,可能包括人类。因此,需要进一步开展考虑环境因素、食物网复杂性以及纳米材料之间差异的研究,以更好地了解纳米材料对自然群落和人类健康的影响。