Institute of Sciences of Food Production, National Research Council (CNR), Strada Provinciale Lecce-Monteroni, 73100 Lecce, Italy.
Department of Biological and Environmental Sciences and Technologies, University of Salento, Strada Provinciale Lecce-Monteroni, 73100 Lecce, Italy.
Plant Physiol Biochem. 2024 Nov;216:109090. doi: 10.1016/j.plaphy.2024.109090. Epub 2024 Sep 3.
Environmental remediation of heavy metals (HMs) is a crucial aspect of sustainable development, safeguarding natural resources, biodiversity, and the delicate balance of ecosystems, all of which are critical for sustaining life on our planet. The bioremediation of HMs by unicellular phototrophs harnesses their intrinsic detoxification mechanisms, including biosorption, bioaccumulation, and biotransformation. These processes can be remarkably effective in mitigating HMs, particularly at lower contaminant concentrations, surpassing the efficacy of conventional physicochemical methods and offering greater sustainability and cost-effectiveness. Here, we explore the potential of various engineered nanomaterials to further enhance the capacity and efficiency of HM bioremediation based on photosynthetic microorganisms. The critical assessment of the interactions between nanomaterials and unicellular phototrophs emphasised the ability of tailored nanomaterials to sustain photosynthetic metabolism and the defence system of microorganisms, thereby enhancing their growth, biomass accumulation, and overall bioremediation capacity. Key factors that could shape future research efforts toward sustainable nanobioremediation of HM are discussed, and knowledge gaps in the field have been identified. This study sheds light on the potential of nanobioremediation by unicellular phototrophs as an efficient, scalable, and cost-effective solution for HM removal.
重金属(HM)的环境修复是可持续发展的关键方面,它有助于保护自然资源、生物多样性和生态系统的微妙平衡,这些都是维持我们星球生命的关键。利用单细胞光养生物对 HM 进行生物修复利用了它们内在的解毒机制,包括生物吸附、生物积累和生物转化。这些过程在减轻 HM 方面非常有效,特别是在较低的污染物浓度下,其效果超过了传统的物理化学方法,具有更高的可持续性和成本效益。在这里,我们探讨了各种工程纳米材料的潜力,以基于光合微生物进一步提高 HM 生物修复的能力和效率。对纳米材料与单细胞光养生物之间相互作用的关键评估强调了定制纳米材料维持光合作用代谢和微生物防御系统的能力,从而增强了它们的生长、生物量积累和整体生物修复能力。讨论了可能影响未来可持续纳米生物修复 HM 研究工作的关键因素,并确定了该领域的知识空白。本研究揭示了单细胞光养生物的纳米生物修复作为一种高效、可扩展和具有成本效益的 HM 去除解决方案的潜力。