Rudi Ludmila, Cepoi Liliana, Chiriac Tatiana, Djur Svetlana
Institute of Microbiology and Biotechnology, Technical University of Moldova, MD 2028 Chisinau, Moldova.
Nanomaterials (Basel). 2024 Dec 30;15(1):46. doi: 10.3390/nano15010046.
(1) Background: The widespread use of nanoparticles (NPs) implies their inevitable contact with living organisms, including aquatic microorganisms, making it essential to understand the effects and consequences of this interaction. Understanding the adaptive responses and biochemical changes in microalgae and cyanobacteria under NP-induced stress is essential for developing biotechnological strategies that optimize biomolecule production while minimizing potential toxicity. This study aimed to evaluate the interactions between various potentially toxic nanoparticles and the cyanobacterial strain , focusing on the biological adaptations and biochemical mechanisms that enable the organism to withstand xenobiotic exposure. (2) Methods: The cyanobacterium CNMN-CB-02 was cultivated under optimal laboratory conditions in the presence of CuNPs, CuONPs, ZnONPs, and TiONPs. Biochemical analyses were performed on the collected biomass. (3) Results: Various interactions between nanoparticles (NPs) and the cyanobacterial culture were identified, ranging from hormetic effects at low concentrations to evident toxic effects at high concentrations. NP toxicity was observed through the reduction in photosynthetic pigments and the disappearance of phycobiliproteins. Notably, NP toxicity was not always accompanied by increased malondialdehyde (MDA) levels. (4) Conclusions: exhibits unique adaptive mechanisms under NP-induced stress, offering the potential for controlled NP applications in biotechnology. Future research should further explore the relationship between nanoparticle types and cyanobacterial responses to optimize biomolecule production.
(1) 背景:纳米颗粒(NPs)的广泛应用意味着它们不可避免地会与包括水生微生物在内的生物有机体接触,因此了解这种相互作用的影响和后果至关重要。了解微藻和蓝细菌在NP诱导的胁迫下的适应性反应和生化变化,对于开发生物技术策略以优化生物分子生产同时将潜在毒性降至最低至关重要。本研究旨在评估各种潜在有毒纳米颗粒与蓝细菌菌株之间的相互作用,重点关注使生物体能够耐受异源物质暴露的生物学适应性和生化机制。(2) 方法:在最佳实验室条件下,在存在铜纳米颗粒(CuNPs)、氧化铜纳米颗粒(CuONPs)、氧化锌纳米颗粒(ZnONPs)和二氧化钛纳米颗粒(TiONPs)的情况下培养蓝细菌CNMN-CB-02。对收集的生物质进行生化分析。(3) 结果:确定了纳米颗粒(NPs)与蓝细菌培养物之间的各种相互作用,范围从低浓度时的刺激效应到高浓度时明显的毒性效应。通过光合色素的减少和藻胆蛋白的消失观察到NP毒性。值得注意的是,NP毒性并不总是伴随着丙二醛(MDA)水平的升高。(4) 结论:在NP诱导的胁迫下表现出独特的适应性机制,为生物技术中可控NP应用提供了潜力。未来的研究应进一步探索纳米颗粒类型与蓝细菌反应之间的关系,以优化生物分子生产。