Comparative toxicity and environmental impact assessments of sonochemically-synthesized CuO and Zn-doped CuO nanoparticles using zebrafish and LCA tools

IF 4.1 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Beatrice Negrini, Pamela Floris, Christian D’Abramo, Seyed Ahmad Aldaghi, Mattia Costamagna, Massimo Perucca, Melissa Saibene, Ilana Perelshtein, Anita Colombo, Patrizia Bonfanti, Paride Mantecca
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引用次数: 0

Abstract

Nanomaterials (NMs), including nanoparticles (NPs), offer promising potential in achieving the European Commission’s Green Deal goals of climate-neutral, zero-pollution and circular economy. Metal oxide NPs display antimicrobial properties, with efficacy also towards antimicrobial-resistant bacteria. Nevertheless, the increasing manufacture, use and unintended release of NMs particularly in aquatic compartments, raises concerns about their environmental sustainability and safety towards non-target organisms. Within the Safe and Sustainable by Design framework, this study compares toxicity and environmental impacts of sonochemically synthesized water-based CuO and Zn-doped CuO NPs. Zebrafish embryos were exploited in a high-throughput developmental and behavioral screening to investigate nanosafety. The Fish Embryo acute Toxicity test was used to assess the NPs aquatic toxicity potential, while behaviour was addressed by tracking embryos activity. The Life Cycle Assessment (LCA) methodology was implemented through the OpenLCA software to evaluate the environmental footprint of the NPs synthesis. Our findings showed no significative lethality at the tested concentrations (0.01–100 mg/L) (LC50 wCuO >  > 100 mg/L), with the exception of ZnCuO NPs 100 mg/L (LC50 ZnCuO = 123 mg/L). Sub-lethality occurred as delayed hatching, partially recovered by Zn-doping, and embryo development. LCA highlighted the dominant role of electricity (which represented 47 to 98% of the total impacts) and copper acetate (37–94%) consumption in the environmental impacts of the NPs synthesis, emphasizing the importance of optimizing energy and chemical use to minimize environmental burden. This research supports the safe and sustainable design of nano-enabled antimicrobials and underscores the need for an approach comprehensive of both risk assessment and LCA in nanotechnology development.

利用斑马鱼和LCA工具对声化学合成CuO和掺锌CuO纳米颗粒的毒性和环境影响进行比较评估
纳米材料(NMs),包括纳米颗粒(NPs),在实现欧盟委员会的气候中和、零污染和循环经济的绿色协议目标方面提供了有希望的潜力。金属氧化物NPs具有抗菌性能,对抗菌耐药细菌也有功效。然而,越来越多的NMs的制造、使用和意外释放,特别是在水生隔间中,引起了对其环境可持续性和对非目标生物的安全性的关注。在安全和可持续设计的框架下,本研究比较了声化学合成水基CuO和锌掺杂CuO NPs的毒性和环境影响。利用斑马鱼胚胎进行高通量发育和行为筛选以研究纳米安全性。鱼类胚胎急性毒性试验用于评估NPs的水生毒性潜力,而行为是通过跟踪胚胎活动来解决的。生命周期评估(LCA)方法通过OpenLCA软件实施,以评估NPs合成的环境足迹。结果表明,除ZnCuO NPs浓度为100 mg/L (LC50 ZnCuO = 123 mg/L)外,其他浓度(0.01 ~ 100 mg/L) (LC50 wCuO > > 100 mg/L)均无显著致死率。亚致死发生在延迟孵化,通过掺杂锌和胚胎发育部分恢复。LCA强调了电力(占总影响的47 - 98%)和醋酸铜(37-94%)消耗在NPs合成的环境影响中的主导作用,强调了优化能源和化学品使用以尽量减少环境负担的重要性。这项研究支持了纳米抗菌剂的安全和可持续设计,并强调了在纳米技术开发中需要一种综合风险评估和生命周期分析的方法。
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来源期刊
Nanoscale Research Letters
Nanoscale Research Letters 工程技术-材料科学:综合
CiteScore
11.30
自引率
0.00%
发文量
110
审稿时长
48 days
期刊介绍: Nanoscale Research Letters (NRL) provides an interdisciplinary forum for communication of scientific and technological advances in the creation and use of objects at the nanometer scale. NRL is the first nanotechnology journal from a major publisher to be published with Open Access.
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