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ZnWO 纳米颗粒对绿色微藻新月藻生长、光合作用和生化参数的影响。

Effects of ZnWO nanoparticles on growth, photosynthesis, and biochemical parameters of the green microalga Raphidocelis subcapitata.

机构信息

Center for the Development of Functional Materials (CDMF), Universidade Federal de São Carlos (UFSCar), Rodovia Washington Luís, Km 235, 13565-905, São Carlos, SP, Brazil.

Center for the Development of Functional Materials (CDMF), Universidade Federal de São Carlos (UFSCar), Rodovia Washington Luís, Km 235, 13565-905, São Carlos, SP, Brazil.

出版信息

Chemosphere. 2024 Apr;353:141590. doi: 10.1016/j.chemosphere.2024.141590. Epub 2024 Mar 7.

Abstract

Nanoparticles have applications in many sectors in the society. ZnWO nanoparticles (ZnWO-NPs) have potential in the fabrication of sensors, lasers, and batteries, and in environmental remediation. Thus, these NPs may reach aquatic ecosystems. However, we still do not know their effects on aquatic biota and, to our knowledge, this is the first study that evaluates the toxicity of ZnWO-NPs in a eukaryotic organism. We evaluated the toxicity of ZnWO-NPs on the green microalga Raphidocelis subcapitata for 96 h, in terms of growth, cell parameters, photosynthesis, and biochemical analysis. Results show that most of Zn was presented in its particulate form, with low amounts of Zn, resulting in toxicity at higher levels. The growth was affected from 8.4 mg L, with 96h-IC50 of 23.34 mg L. The chlorophyll a (Chl a) content increased at 30.2 mg L, while the fluorescence of Chl a (FL3-H) decreased at 15.2 mg L. We observed increased ROS levels at 44.4 mg L. Regarding photosynthesis, the NPs affected the oxygen evolving complex (OEC) and the efficiency of the photosystem II at 22.9 mg L. At 44.4 mg L the qP decreased, indicating closure of reaction centers, probably affecting carbon assimilation, which explains the decay of carbohydrates. There was a decrease of qN (non-regulated energy dissipation, not used in photosynthesis), NPQ (regulated energy dissipation) and Y(NPQ) (regulated energy dissipation via heat), indicating damage to the photoprotection system; and an increase in Y(NO), which is the non-regulated energy dissipation via heat and fluorescence. The results showed that ZnWO-NPs can affect the growth and physiological and biochemical parameters of the chlorophycean R. subcapitata. Microalgae are the base of aquatic food chains, the toxicity of emerging contaminants on microalgae can affect entire ecosystems. Therefore, our study can provide some help for better protection of aquatic ecosystems.

摘要

纳米粒子在社会的许多领域都有应用。ZnWO 纳米粒子(ZnWO-NPs)在传感器、激光和电池制造以及环境修复方面具有潜力。因此,这些纳米粒子可能会进入水生生态系统。然而,我们仍然不知道它们对水生生物群的影响,据我们所知,这是第一项评估 ZnWO-NPs 在真核生物中毒性的研究。我们评估了 ZnWO-NPs 对绿藻栅藻的毒性,为期 96 小时,涉及生长、细胞参数、光合作用和生化分析。结果表明,大部分 Zn 以颗粒形式存在,只有少量 Zn 导致高浓度时的毒性。在 8.4mg/L 时,生长受到影响,96 小时的 IC50 为 23.34mg/L。在 30.2mg/L 时叶绿素 a(Chl a)含量增加,而叶绿素 a 的荧光(FL3-H)在 15.2mg/L 时降低。我们观察到 ROS 水平在 44.4mg/L 时增加。关于光合作用,纳米粒子在 22.9mg/L 时影响氧气产生复合物(OEC)和光系统 II 的效率。在 44.4mg/L 时,qP 降低,表明反应中心关闭,可能影响碳同化,这解释了碳水化合物的衰减。qN(非调节能量耗散,不用于光合作用)、NPQ(调节能量耗散)和 Y(NPQ)(通过热调节能量耗散)减少,表明光保护系统受损;Y(NO)增加,这是非调节通过热和荧光耗散的能量。结果表明,ZnWO-NPs 可影响绿藻栅藻的生长和生理生化参数。微藻是水生食物链的基础,新兴污染物对微藻的毒性会影响整个生态系统。因此,我们的研究可以为更好地保护水生生态系统提供一些帮助。

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