Tan Bingyu, Wang Yiwen, Gong Zhiwei, Fan Xinpeng, Ni Bing
School of Life Sciences, East China Normal University, Shanghai, China.
School of Physics and Electronic Science, East China Normal University, Shanghai, China.
Front Microbiol. 2022 Mar 23;13:834208. doi: 10.3389/fmicb.2022.834208. eCollection 2022.
Although many reports have demonstrated that nanoparticles can have a negative effect on aquatic organisms, the toxic effects on symbiotic organisms remain poorly understood. The present study conducts ultrastructure, enzyme activity, and transcriptomics to assess the toxic effects to the - symbiotic system from exposure to copper nanoparticles (CuNPs) for 24 h. We found that in both the host and symbiotic algae, CuNP exposure induced high reactive oxygen species level, which leads to oxidative damage and energy metabolism disorder. Moreover, transmission electron micrographs (TEMs) showed that the symbiotic algae in the cytoplasm of were enveloped in the digestive vacuole and digested, and the level of acid phosphatase activity increased significantly within 24 h, which indicated that the stability of the symbiotic system was affected after CuNP exposure. We speculated that the increased energy demand in the host and symbiotic algae resulted from oxidative stress, precipitating the decrease of the photosynthetic products provided to the host, the digestion of the symbiont, and the destruction of the stable symbiotic relationship. The study provides the first insight into the mechanisms of nanoparticles' toxicity to the symbiotic relationship in the ecosystem, which may help to understand the environmental effects and toxicological mechanisms of nanoparticles.
尽管许多报告表明纳米颗粒会对水生生物产生负面影响,但对共生生物的毒性影响仍知之甚少。本研究通过超微结构、酶活性和转录组学来评估暴露于铜纳米颗粒(CuNPs)24小时对共生系统的毒性影响。我们发现,在宿主和共生藻类中,CuNP暴露均诱导了高活性氧水平,这导致氧化损伤和能量代谢紊乱。此外,透射电子显微镜(TEM)显示,宿主体内细胞质中的共生藻类被包裹在消化液泡中并被消化,酸性磷酸酶活性水平在24小时内显著增加,这表明CuNP暴露后共生系统的稳定性受到影响。我们推测,宿主和共生藻类中能量需求的增加是由氧化应激导致的,这促使提供给宿主的光合产物减少、共生体被消化以及稳定的共生关系遭到破坏。该研究首次深入了解了纳米颗粒对生态系统中共生关系的毒性作用机制,这可能有助于理解纳米颗粒的环境影响和毒理学机制。