The impact of nTiO2 and GO (graphene oxide), and their combinations, on freshwater Chlorella sp.: a comparative study in lake water and BG-11 media†

IF 5.4 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Camil Rex M, Abhrajit Debroy and Amitava Mukherjee
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Abstract

Titanium dioxide nanoparticles (nTiO2) and graphene oxide (GO) are extensively used nanomaterials in various products and applications. Freshwater ecosystems are a crucial sink for these pollutants, posing severe threats to aquatic organisms. Although multiple studies have investigated the pristine toxicity of nTiO2 and GO in freshwater organisms, the combined toxicity of these materials remains unexplored. Interaction media is a crucial factor in evaluating toxicity nanomaterial toxicity towards algae. In this study, we have investigated the comparative effect of sterilized and filtered freshwater and BG-11 medium on the pristine and combined toxicity of nTiO2 and GO on freshwater algae Chlorella sp. Results indicated that the combination of nTiO2 and GO showed more toxicity when compared to their respective pristine forms. This could be due to the additive effect exhibited by nTiO2 and GO on Chlorella sp. The enhanced growth inhibition for the combined toxicity was in the order of 1 mg L−1 nTiO2 + 1 mg L−1 GO > 1 mg L−1 nTiO2 + 0.1 mg L−1 GO > 0.1 mg L−1 nTiO2 + 1 mg L−1 GO > 0.1 mg L−1 nTiO2 + 0.1 mg L−1 GO. All test groups that interacted in BG-11 media exhibited less toxicity when compared to corresponding groups in the lake water medium. This could be attributed to the cushioning effect of BG-11 medium, providing supplementary nutrition to the algal cells. This signifies that the environmentally relevant conditions could be more detrimental than the laboratory conditions. This study elucidates valuable insights into the potential detrimental effects associated with the combination of nTiO2 and GO on freshwater algae. Furthermore, we have evaluated the growth inhibition, oxidative stress, and photosynthetic activity of Chlorella sp. in both environmentally relevant interaction medium and well-defined culture medium.

Abstract Image

Abstract Image

nTiO2和GO(氧化石墨烯)及其组合对淡水小球藻的影响:在湖水和BG-11培养基中的比较研究。
纳米二氧化钛(nTiO2)和氧化石墨烯(GO)是各种产品和应用中广泛使用的纳米材料。淡水生态系统是这些污染物的重要汇集地,对水生生物构成严重威胁。虽然已有多项研究调查了 nTiO2 和 GO 在淡水生物体中的原始毒性,但这些材料的综合毒性仍有待探索。在评估纳米材料对藻类的毒性时,相互作用介质是一个关键因素。在这项研究中,我们研究了灭菌和过滤淡水以及 BG-11 培养基对 nTiO2 和 GO 对淡水藻类小球藻的原始毒性和组合毒性的比较效应。结果表明,与各自的原始形式相比,nTiO2 和 GO 的组合毒性更大。组合毒性对生长的抑制增强程度依次为:1 毫克/升-1 nTiO2 + 1 毫克/升-1 GO > 1 毫克/升-1 nTiO2 + 0.1 毫克/升-1GO > 0.1 毫克/升-1 nTiO2 + 1 毫克/升-1GO > 0.1 毫克/升-1 nTiO2 + 0.1 毫克/升-1GO。与在湖水介质中的相应试验组相比,在 BG-11 介质中相互作用的所有试验组都表现出较低的毒性。这可能是由于 BG-11 培养基的缓冲作用为藻类细胞提供了补充营养。这表明环境相关条件可能比实验室条件更有害。这项研究阐明了二氧化钛和 GO 的组合对淡水藻类的潜在有害影响。此外,我们还评估了小球藻在环境相关交互培养基和明确定义的培养基中的生长抑制、氧化应激和光合作用活性。
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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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