Department of Physics, Earth and Environmental Sciences, University of Siena, Siena, Italy.
Department of Chemical, Biological, Pharmaceutical and Environmental Sciences, University of Messina, Viale F. Stagno d'Alcontres 31, Messina 98166, Italy.
Aquat Toxicol. 2022 Feb;243:106059. doi: 10.1016/j.aquatox.2021.106059. Epub 2021 Dec 21.
Petrochemical industries and oil refineries are sources of hazardous chemicals into the aquatic environments, and often a leading cause of reduced oxygen availability, thus resulting in adverse effects in biota. This study is an expansion of our previous work on the assessment of the BioFilm-Membrane Bioreactor (BF-MBR) to mitigate the impact of oil-polluted wastewater on marine environments. Specifically, this study evaluated the reduction of selected chemical constituents (hydrocarbons and trace metals) and toxicity related to hypoxia and DNA damage to mussels Mytilus galloprovincialis, before and after treatment of oil-polluted wastewater with the BF-MBR. The application of a multidisciplinary approach provided evidence of the efficiency of BF-MBR to significantly reducing the pollutants load from oily contaminated seawaters. As result, the health status of mussels was preserved by a hypoxic condition due to oily pollutants, as evidenced by the modulation in the gene expression of HIF-1α and PHD and changes in the level of hypotaurine and taurine. Moreover, ameliorative effects in the energy metabolism were also found in mussel gills showing increased levels of glycogen, glucose and ATP, as well as a mitigated genotoxicity was revealed by the Micronucleus and Comet assays. Overall, findings from this study support the use of the BF-MBR as a promising treatment biotechnology to avoid or limiting the compromise of marine environments from oil pollution.
石化行业和炼油厂是将有害化学物质排放到水生环境中的源头,往往也是导致氧气供应减少的主要原因,从而对生物群产生不利影响。本研究是对我们之前关于评估生物膜-膜生物反应器 (BF-MBR) 以减轻受污染石油废水对海洋环境影响的工作的扩展。具体来说,本研究评估了在使用 BF-MBR 处理受污染石油废水前后,选定的化学物质成分(碳氢化合物和痕量金属)和与缺氧和 DNA 损伤相关的毒性的减少,以及贻贝 Mytilus galloprovincialis 的毒性。应用多学科方法提供了证据,证明 BF-MBR 能够有效地减少受污染海水中的污染物负荷。因此,由于油污染,贻贝的缺氧状况得以维持,这可以通过 HIF-1α 和 PHD 的基因表达的调节以及hypotaurine 和 taurine 水平的变化来证明。此外,贻贝鳃中的能量代谢也表现出改善的迹象,表现为糖原、葡萄糖和 ATP 水平增加,微核和彗星试验揭示了遗传毒性的减轻。总的来说,本研究的结果支持使用 BF-MBR 作为一种有前途的处理生物技术,以避免或限制石油污染对海洋环境的损害。