Pun Álvaro, Valimaña-Traverso Jesús, García María Ángeles, Marina María Luisa, Esteve-Núñez Abraham, Boltes Karina
Universidad de Alcalá, Departamento de Química Analítica, Química Física e Ingeniería Química, Ctra. Madrid-Barcelona Km. 33,600, Alcalá de Henares, 28871, Madrid, Spain.
Universidad de Alcalá, Instituto de Investigación Química Andrés M. del Río, Ctra. Madrid-Barcelona Km. 33.600, 28871, Alcalá de Henares, Madrid, Spain.
Environ Sci Ecotechnol. 2024 Oct 22;23:100500. doi: 10.1016/j.ese.2024.100500. eCollection 2025 Jan.
50% of pharmaceuticals and 25% of herbicides used worldwide are chiral. Each enantiomer has a unique toxicity and biodegradation profile, affecting differently to organisms. Chirality plays a key role in the behavior of these emerging contaminants (ECs) in terms of their pharmacological or herbicidal activity, but this peculiarity is often overlooked in environmental research. The complexity of chiral ECs is underestimated, as the varying sensitivity of biological systems to enantiomers is rarely considered. Biofilters can promote the activity of specific microbial communities, facilitating the degradation of ECs, due to the greater interaction between water and microorganisms and their compact design. Here, we show that an electroactive biofilter can alter the chirality of drugs and herbicides in wastewater treatment, impacting their removal and toxicity. The electrochemical biofilter (BioeF) removed 80% of pharmaceuticals and 50-75% of herbicides, outperforming the conventional filter (ConF). BioeF also showed greater chiral alterations and lower ecotoxicity. This work provides the first evidence of a relationship between changes in contaminant chirality and detoxification capacity, enhanced by electroactive systems. The increased microbial activity observed in the BioeF suggests that bioelectrochemical systems offer a valuable advance for ECs removal and ecotoxicity reduction, addressing the environmental challenge posed by ECs.
全球使用的药品中有50%以及除草剂中有25%是手性的。每种对映体都有独特的毒性和生物降解特性,对生物体的影响各不相同。就其药理或除草活性而言,手性在这些新兴污染物(ECs)的行为中起着关键作用,但这种特性在环境研究中常常被忽视。由于生物系统对映体的敏感性差异很少被考虑,手性ECs的复杂性被低估了。生物滤池由于水与微生物之间更强的相互作用及其紧凑的设计,能够促进特定微生物群落的活性,从而有助于ECs的降解。在此,我们表明电活性生物滤池在废水处理中能够改变药物和除草剂的手性,影响它们的去除和毒性。电化学生物滤池(BioeF)去除了80%的药物和50 - 75%的除草剂,性能优于传统滤池(ConF)。BioeF还表现出更大的手性改变和更低的生态毒性。这项工作首次证明了污染物手性变化与解毒能力之间的关系,这种关系通过电活性系统得到增强。在BioeF中观察到的微生物活性增加表明,生物电化学系统为去除ECs和降低生态毒性提供了有价值的进展,应对了ECs带来的环境挑战。