Synergistic toxic effects of ball-milled biochar and copper oxide nanoparticles on Streptomyces coelicolor M145

IF 8 1区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Xiaomei Liu , Jingchun Tang , Lan Wang , Rutao Liu
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引用次数: 15

Abstract

The toxic effects of multi-nanomaterial systems are receiving increasing attention owing to their inevitable release of various nanomaterials. Knowledge of the bioavailability of the new carbon material ball-milled biochar (BMB) and its synergistic toxicity with metal oxide nanoparticles in bacteria is currently limited. In this study, the interactions of BMB with copper oxide nanoparticles (CuO NPs) and their synergistic toxicity towards Streptomyces coelicolor M145 were analyzed. Results showed that the cytotoxicity, ROS level and permeability of cells changed greatly with the pyrolysis temperatures of biochar and the concentrations of CuO NPs. The greatest cytotoxicity (up to 63.1%) was achieved by adding 20 mg/L CuO NPs to BMB700. The ROS level and cell permeability of this treatment was also the highest, about 4.2 folds and 2.9 folds greater than that of control, respectively. The combination of 10 mg/L BMB700 with 10 mg/L CuO NPs can maximize production of antibiotics, with the yield of undecylprodigiosin (RED) and actinorhodin (ACT) 3.0 times and 4.2 times higher than that in the control, respectively, and the change trend of related genes was consistent with that of antibiotics production. Mechanism analysis showed that the different adsorption capacity of BMB of different pyrolysis temperatures on copper ions played a vital role in the synergistic toxicity, and the increase in cell membrane permeability caused by cell collisions with particles was also an important reason for cytotoxicity. Overall, the synergistic toxicity of BMB with other NPs varies the pyrolysis temperatures, when considering the synergistic toxicity of these materials, the preparation conditions need to be taken into account so as to assess their environmental risks more accurately. On the other hand, this research may provide a new approach for the antibiotic industry to increase its output.

Abstract Image

球磨生物炭和氧化铜纳米颗粒对铜色链霉菌M145的协同毒性作用
多纳米材料系统由于不可避免地会释放出各种纳米材料,其毒性效应越来越受到人们的关注。关于新型碳材料球磨生物炭(BMB)的生物利用度及其与金属氧化物纳米颗粒在细菌中的协同毒性的知识目前有限。本研究分析了BMB与氧化铜纳米粒子(CuO NPs)的相互作用及其对colicolestreptomyces M145的协同毒性。结果表明,随着生物炭热解温度和CuO NPs浓度的变化,细胞毒性、ROS水平和通透性发生了较大的变化。在BMB700中加入20 mg/L的CuO NPs后,细胞毒性达到最大(63.1%)。该处理的ROS水平和细胞通透性也最高,分别是对照组的4.2倍和2.9倍。10 mg/L BMB700与10 mg/L CuO NPs联合使用可最大限度地提高抗生素的产量,11基芥子红素(RED)和放线菌素(ACT)的产量分别是对照的3.0倍和4.2倍,相关基因的变化趋势与抗生素产量的变化趋势一致。机理分析表明,不同热解温度的BMB对铜离子的吸附能力不同,在协同毒性中起着至关重要的作用,细胞与颗粒碰撞导致细胞膜通透性增加也是产生细胞毒性的重要原因。综上所述,BMB与其他NPs的协同毒性随热解温度的变化而变化,在考虑这些材料的协同毒性时,需要考虑制备条件,以便更准确地评估其环境风险。另一方面,本研究可能为抗生素行业提高产量提供新的途径。
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来源期刊
Science of the Total Environment
Science of the Total Environment 环境科学-环境科学
CiteScore
17.60
自引率
10.20%
发文量
8726
审稿时长
2.4 months
期刊介绍: The Science of the Total Environment is an international journal dedicated to scientific research on the environment and its interaction with humanity. It covers a wide range of disciplines and seeks to publish innovative, hypothesis-driven, and impactful research that explores the entire environment, including the atmosphere, lithosphere, hydrosphere, biosphere, and anthroposphere. The journal's updated Aims & Scope emphasizes the importance of interdisciplinary environmental research with broad impact. Priority is given to studies that advance fundamental understanding and explore the interconnectedness of multiple environmental spheres. Field studies are preferred, while laboratory experiments must demonstrate significant methodological advancements or mechanistic insights with direct relevance to the environment.
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