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Study of the toxicity of ZnO nanoparticles to Chlorella sorokiniana under the influence of phosphate: spectroscopic quantification, photosynthetic efficiency and gene expression analysis

机译:基于磷酸盐的影响下ZnO纳米粒子毒性的研究:光谱定量,光合效率和基因表达分析

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摘要

Zinc oxide nanoparticles (ZnO NPs) are one of the most abundantly applied nanomaterials in nanotechnology-based industries, and recent research continues to highlight their potential eco-toxicity especially to aquatic environments. When they enter into a water environment, their physicochemical transformations may result in largely unknown end products and induce additional potential toxicity. Although previous studies have documented the transformation of ZnO NPs, there is still a lack of the in-depth understanding of the corresponding variant toxicities of the pristine and transformed ZnO NPs to aquatic organisms, particularly demanding the quantitative analysis of the physicochemical transformations to distinguish their contributions in the toxicity assessment. For this purpose, therefore, we initiated a study of the toxicity of transformed ZnO NPs in phosphate containing water to a model aquatic microalga, i.e., Chlorella sorokiniana, with the aid of spectroscopic tools for characterization and quantification of the physicochemical transformations, and we scrutinized the toxicity variations of ZnO NPs transformed in different P/Zn molar ratios. The possible toxicity mechanisms were investigated, especially those related to the influence of photosynthesis efficiency of the algae cells. As a result, we found that the toxicity of transformed ZnO NPs in phosphate water to the green algae was lower than that of the pristine ZnO NPs. With spectroscopic tools such as XRD and Raman spectroscopy, we made both qualitative and quantitative assessments of the physicochemical changes of the ZnO NPs and revealed that for the pristine ZnO NP group, the toxicity stemmed mainly from the release of zinc ions from the pristine ZnO NPs, while in the presence of phosphate, the neoformation of the nanoparticles played a critical role, leading to the overall reduced toxicity due to the less toxic amorphous zinc phosphate (AZP) and hopeite (Zn-3(PO4)(2)center dot 4H(2)O) in the transformed compounds. Besides, the mechanism of the toxicity of phosphate induced transformations of ZnO NPs to C. sorokiniana was also verified by the analysis of gene expression involved in photosynthesis. Our results showed that the expressions of the photosynthesis associated genes were depressed by the treatment of pristine ZnO NPs, while the expressions of the related genes were up-regulated in the groups of hopeite and AZP, indicating that the soluble phosphate had profound effects on algal photosynthesis, and thus affected the algal toxicity of ZnO NPs in the aqueous environment. These newly acquired results will certainly elaborate our knowledge on the fate and effects of ZnO NP transformation in aquatic environments.
机译:氧化锌纳米粒子(ZnO NPS)是基于纳米技术的行业中最丰富的纳米材料之一,最近的研究继续突出其潜在的生态毒性,尤其是水生环境。当他们进入水环境时,它们的物理化学转化可能导致主要是未知的最低产物,并诱导额外的潜在毒性。虽然之前的研究记录了ZnO NP的转化,但仍然缺乏对丙氨酸和转化的ZnO NPS对水生生物的相应变体毒性的深入理解,特别是要求对物理化学变换进行定量分析以区分其毒性评估的贡献。因此,为了此目的,我们开始研究含水中转化的ZnO NPS的毒性ZnO NPS的毒性,借助于光谱工具,用于表征和定量物理化学转化的光谱工具,并仔细检查不同P / Zn摩尔比转化ZnO NPS的毒性变化。研究了可能的毒性机制,尤其是与藻类细胞光合效率的影响有关的机制。结果,我们发现将转化的ZnO NPS在磷酸盐水中与绿藻的毒性低于原始ZnO NPS。利用诸如XRD和拉曼光谱的光谱工具,我们对ZnO NPS的物理化学变化进行了定性和定量评估,并揭示了对于原始ZnO NP组,毒性主要来自原始ZnO NPS的锌离子的释放而在存在磷酸盐的情况下,纳米颗粒的新涂鸦发挥了关键作用,导致含有毒性无定形磷酸盐(AZP)和希望(Zn-3)(2)中心点4h的毒性较低的整体毒性(2)O)在转化的化合物中。此外,还通过分析光合作用中涉及的基因表达来验证磷酸盐诱导的磷酸盐诱导的ZnO NPS转化的机制。我们的结果表明,通过治疗原始ZnO NPS抑制了光合作用相关基因的表达,而相关基因的表达在希望和AZP组中上调,表明可溶性磷酸盐对藻类产生了深远的影响光合作用,从而影响水环境中ZnO NP的藻类毒性。这些新收购的结果肯定会详细阐述我们对水产环境中Zno NP转化的命运和影响的知识。

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